Ciências Forenses: Aplicações Científicas na Criminalística


Resumo

Este livro, editado por Samara Testoni, Claudio Pereira e Rafael Ortiz, consiste em uma abordagem de diversas áreas muito importantes nas ciências forenses. Utiliza exemplos das áreas de geociências forenses, investigação de drogas, obras de arte, crimes ambientais e outros. Esta publicação ilustra como a excelente ciência estratégica aplicada em muitas disciplinas científicas pode auxiliar tanto na investigação de crimes quanto seu uso como prova em tribunal pode tornar nossos sistemas de justiça criminal mais seguros, não importa em qual jurisdição legal ou em que parte do mundo vivemos. 

A obra apresenta uma discussão ampla e diversificada que se baseia em aplicações de ´técnicas analíticas, estudos de caso e revisões bibliográficas, possibilitando ao leitor uma abordagem integrada. Esperamos que esta obra seja leitura de profissionais da a´rea da criminalística, assim como pesquisadores, professores, estudantes, e outros interessados de forma geral.


Palavras-chave


Referências

  1. CAPÍTULO 1: GEOCIÊNCIAS FORENSES
  2. Amri S, Akchiche M, Bennabi A, Hamzaoui R. Geotechnical and mineralogical properties of treated clayey soil with dune sand. J African Earth Sci. 2019;152:140-50. https://doi.org/10.1016/j.jafrearsci.2019.01.010
  3. Bull P, Morgan R. Forensic Geoscience: Principles, Techniques and Applications. 2005. https://doi.org/10.1016/s1355-0306(05)71658-0
  4. Chakraborty S, Man T, Paulette L, Deb S, Li B, Weindorf DC, Frazier M. Rapid assessment of smelter/mining soil contamination via portable X-ray fluorescence spectrometry and indicator kriging. Geoderma. 2017;306:108-19. https://doi.org/10.1016/j.geoderma.2017.07.003
  5. Chazottes V, Brocard C, Peyrot B. Particle size analysis of soils under simulated scene of crime conditions: The interest of multivariate analyses. Forensic Sci Int. 2004;140:159-66. https://doi.org/10.1016/j.forsciint.2003.11.032
  6. Cheshire K, Morgan RM, Holmes J. The potential for geochemical discrimination of single- and mixed-source soil samples from close proximity urban parkland locations. Aust J Forensic Sci. 2017;49:161-74. https://doi.org/10.1080/00450618.2016.1144789
  7. Commonwealth Scientific and Industrial Research Organisation - CSIRO Fitzpatrick RW, Raven MD. Guidelines for Conducting Criminal and Environmental Soil Forensic Investigations : Version 7 . 0. Adelaide: 2016.
  8. Corrêa RS, Melo VF, Abreu GGF, Sousa MH, Chaker JA, Gomes JA. Soil forensics: How far can soil clay analysis distinguish between soil vestiges? Sci Justice. 2017:0-1. https://doi.org/10.1016/j.scijus.2017.09.003
  9. Dawson LA. Soil Forensic Services: Methods used in soil analysis. Aberdeen, Scotland: 2013.
  10. Dawson LA, Hillier S. Measurement of soil characteristics for forensic applications. Surf Interface Anal. 2010;42:363-77. https://doi.org/10.1002/sia.3315
  11. Dawson LA, Towers W, Mayes RW, Craig J, Väisänen RK, Waterhouse EC. The use of plant hydrocarbon signatures in characterizing soil organic matters. Geol Soc Spec Publ. 2004;232:269-76. https://doi.org/10.1144/GSL.SP.2004.232.01.24
  12. Delmont TO, Robe P, Cecillon S, Clark IM, Constancias F, Simonet P, Hirsch PR, Vogel TM. Accessing the soil metagenome for studies of microbial diversity. Appl Environ Microbiol. 2011;77:1315-24. https://doi.org/10.1128/AEM.01526-10
  13. Fitzpatrick R, Raven M, Self P. The role of pedology and mineralogy in providing evidence for 5 crime investigations involving a wide range of earth materials. Episodes. 2017;40:148-56. https://doi.org/10.18814/epiiugs/2017/v40i2/017017
  14. Fitzpatrick R. W. Soil : Forensic Analysis. In: Jamieson A, Moenssens AA, editors. Wiley Encyclopedia of Forensic Science. Chichester: John Wiley; 2013. p. 18. . https://doi.org/10.1002/9780470061589.fsa096.pub2.Published
  15. Fitzpatrick R.W. Encyclopedia of Forensic Sciences. 2nd. ed. Glen Osmond: Elsevier; 2013. https://doi.org/10.1016/B978-0-12-382165-2.00113-6
  16. Fitzpatrick RW. Soil: Forensic Analysis. Wiley Encycl Forensic Sci. 2009:2377-88. https://doi.org/10.1002/9780470061589
  17. Fitzpatrick RW. Nature, Distribution, and Origin of Soil Materials in the Forensic Comparison of Soils. In: Tibbett M, Carter DO, editors. Soil Analysis in Forensic Taphonomy: Chemical and Biological Effects of Buried Human Remains. New York: Taylor & Francis Group; 2008. p. 366. . https://doi.org/10.1111/j.1556-4029.2008.00886.x
  18. Fitzpatrick RW, Raven MD. How Pedology and Mineralogy Helped Solve a Double Murder Case: Using Forensics to Inspire Future Generations of Soil Scientists. Soil Horizons. 2012;53:14. https://doi.org/10.2136/sh12-05-0016
  19. Gibson AB. The Nature of Scientific Knowledge. 2018. https://doi.org/10.4324/9781315468099-5
  20. Makarushka M. Got a Crime to Solve? Call in the Soil Scientists. Soil Horizons. 2012;53:3. https://doi.org/10.2136/sh2012-53-5-lf
  21. Mazzetto JML, Melo VF, Bonfleur EJ, Vidal-Torrado P, Dieckow J. Potential of soil organic matter molecular chemistry determined by pyrolysis-gas chromatography/mass spectrometry for forensic investigations. Sci Justice. 2019. https://doi.org/10.1016/j.scijus.2019.07.003
  22. Melo VF, Barbar LC, Zamora PGP, Schaefer CE, Cordeiro GA. Chemical , physical and mineralogical characterization of soils from the Curitiba Metropolitan Region for forensic purpose. Forensic Sci Int. 2008;179:123-34. https://doi.org/10.1016/j.forsciint.2008.04.028
  23. Melo VF, Mazzetto JML, Dieckow J, Bonfleur EJ. Factor analysis of organic soils for site discrimination in a forensic setting. Forensic Sci Int. 2018;290:244-50. https://doi.org/10.1016/j.forsciint.2018.07.005
  24. Melo VF, Testoni SA, Dawson LA, Salvador FA da S. Sand fraction is not suitable for forensic investigations in subtropical soils. Rev Bras Cienc Do Solo. 2020;44:1-15
  25. Melo VFVF, Testoni SASA, Dawson L, de Lara AGAG, da Silva Salvador FAFA. Can analysis of a small clod of soil help to solve a murder case? Sci Justice. 2019;59:667-77. https://doi.org/10.1016/j.scijus.2019.06.008
  26. Morgan R, Bull P. The philosophy, nature and practice of forensic sediment analysis. Prog Phys Geogr. 2007;31:43-58. https://doi.org/10.1177/0309133307073881
  27. Murray KR, Fitzpatrick RW, Bottrill RS, Berry R, Kobus H. Soil transference patterns on bras: Image processing and laboratory dragging experiments. Forensic Sci Int. 2016;258:88-100. https://doi.org/10.1016/j.forsciint.2015.10.009
  28. Nakai I, Furuya S, Bong W, Abe Y, Osaka K, Matsumoto T, Itou M, Ohta A, Ninomiya T. Quantitative analysis of heavy elements and semi-quantitative evaluation of heavy mineral compositions of sediments in Japan for construction of a forensic soil database using synchrotron radiation X-ray analyses. X-Ray Spectrom. 2014;43:38-48. https://doi.org/10.1002/xrs.2496
  29. Olaoye RA, Afolayan OD, Adeyemi KA, Ajisope LO, Adekunle OS. Adsorption of selected metals from cassava processing wastewater using cow-bone ash. Sci African. 2020;10:e00653. https://doi.org/10.1016/j.sciaf.2020.e00653
  30. Pereira M. The forensic potential of a pedological spatial database in predicting the provenance of soil evidences : building dynamic probabilistic models based on multidisciplinary data. 2019:0-4
  31. Pirrie D, Rollinson GK, Power MR, Webb J. Automated forensic soil mineral analysis; testing the potential of lithotyping. Geol Soc Spec Publ. 2013;384:47-64. https://doi.org/10.1144/SP384.17
  32. Prandel L V., Melo V de F, Brinatti AM, Saab S da C, Salvador FAS. X-ray Diffraction and Rietveld Refinement in Deferrified Clays for Forensic Science. J Forensic Sci. 2017:1-7. https://doi.org/10.1111/1556-4029.13476
  33. Prandel L V., Saab SC, Brinatti AM, Giarola NFB, Leite WC, Cassaro FAM. Mineralogical analysis of clays in hardsetting soil horizons, by X-ray fluorescence and X-ray diffraction using Rietveld method. Radiat Phys Chem. 2014;95:65-8. https://doi.org/10.1016/j.radphyschem.2012.12.017
  34. Prandel LVLV, Melo VFVF, Testoni SASA, Brinatti AMAM, Saab SDCSDC, Dawson LALA. Spectroscopic techniques applied to discriminate soils for forensic purposes. Soil Res. 2020;58:151-60. https://doi.org/10.1071/SR19066
  35. Pye K, Blott SJ. Particle size analysis of sediments, soils and related particulate materials for forensic purposes using laser granulometry. Forensic Sci Int. 2004;144:19-27. https://doi.org/10.1016/j.forsciint.2004.02.028
  36. Rawlins BG, Kemp SJ, Hodgkinson EH, Riding JB, Vane CH, Poulton C, Freeborough K. Potential and pitfalls in establishing the provenance of earth-related samples in forensic investigations. J Forensic Sci. 2006;51:832-45. https://doi.org/10.1111/j.1556-4029.2006.00152.x
  37. Ruffell A. Forensic pedology, forensic geology, forensic geoscience, geoforensics and soil forensics. Forensic Sci Int. 2010;202:9-12. https://doi.org/10.1016/j.forsciint.2010.03.044
  38. Shand CA, Wendler R, Dawson L, Yates K, Stephenson H. Multivariate analysis of Scotch whisky by total reflection x-ray fluorescence and chemometric methods: A potential tool in the identification of counterfeits. Anal Chim Acta. 2017;976:14-24. https://doi.org/10.1016/j.aca.2017.04.041
  39. Stam M. Soil as significant evidence in a sexual assault/attempted homicide case. Geol Soc London, Spec Publ. 2004;232:295-9. https://doi.org/10.1144/GSL.SP.2004.232.01.28
  40. Testoni SA, Melo VF, Dawson LA, Salvador FA da S, Prandel LV. Evaluation of forensic soil traces from a crime scene: robbery of a safety deposit box in Brazil. Geol Soc London, Spec Publ. 2019a;35:SP492-2019-35. https://doi.org/10.1144/sp492-2019-35
  41. Testoni SA, Melo VF, Dawson LA, da Silva Salvador FA. Pedologia e Mineralogia do Solo Aplicadas às Ciências Forenses. UFPR; 2019b.
  42. Testoni SA, Melo VF, Salvador FAS, Prandel L V. Evaluation of soil vestiges in a real crime scene: robbery of a safety deposit box. 2017:1-22
  43. Testoni SASA, Melo VFVF, Dawson LALA, Salvador FA da S, Kunii PAPA, Da Silva Salvador FA, Kunii PAPA. Validation of a Standard Operating Procedure (SOP) for Forensic Soils Investigation in Brazil. Rev Bras Ciência Do Solo. 2019;43:1-18. https://doi.org/10.1590/18069657rbcs20190010
  44. Tighe M, Forster N, Guppy C, Savage D, Grave P, Young IM. Georeferenced soil provenancing with digital signatures. Sci Rep. 2018;8:1-9. https://doi.org/10.1038/s41598-018-21530-7
  45. Tóth G, Hermann T, Szatmári G, Pásztor L. Maps of heavy metals in the soils of the European Union and proposed priority areas for detailed assessment. Sci Total Environ. 2016;565:1054-62. https://doi.org/10.1016/j.scitotenv.2016.05.115
  46. Tranchida MC, Centeno ND, Cabello MN. Soil fungi: Their potential use as a forensic tool. J Forensic Sci. 2014;59. https://doi.org/10.1111/1556-4029.12391
  47. Woods B, Lennard C, Kirkbride KP, Robertson J. Soil examination for a forensic trace evidence laboratory-Part 1: Spectroscopic techniques. Forensic Sci Int. 2014;245:187-94. https://doi.org/10.1016/j.forsciint.2014.08.009
  48. Young JM, Weyrich LS, Breen J, Macdonald LM, Cooper A. Predicting the origin of soil evidence: High throughput eukaryote sequencing and MIR spectroscopy applied to a crime scene scenario. Forensic Sci Int. 2015;251:22-31. https://doi.org/10.1016/j.forsciint.2015.03.008
  49. Young JM, Weyrich LS, Cooper A. Forensic soil DNA analysis using high-throughput sequencing: A comparison of four molecular markers. Forensic Sci Int Genet. 2014;13:176-84. https://doi.org/10.1016/j.fsigen.2014.07.014
  50. CAPÍTULO 2: ESTEROIDES ANABOLIZANTES ANDROGÊNICOS: ASPECTOS TOXICOLÓGICOS E ANALÍTICOS PARA A ANÁLISE DE FORMULAÇÕES
  51. BARCELOUX, D.G.; PALMER, R.B. Anabolic-androgenicsteroids. Disease-a-month: DM, v. 59, n. 6, p. 226-248, 2013.
  52. BARREIRO, R.; REGAL, P.; DÍAZ-BAO, M.; FENTE, C.; CEPEDA, A. Analysis of Naturally Occurring Steroid Hormones in Infant Formulas by HPLC-MS/MS and Contribution to Dietary Intake. Foods, v. 4, p. 605–621, 2015.
  53. BASILE, J.R; BINMADI, N.O.; ZHOU, H.; YANG, A.; PROIA, P. Supraphysiological doses of performance enhancing anabolic-androgenic steroids exert direct toxic effects on neuron-like cells. Frontiers in Cellular Neuroscience, v.7, p.1–10, 2013.
  54. BERNEIRA, L. M., FREITAS, S. C., SILVA, C. C., MACHADO, A., PEREIRA, C. M. P., SANTOS, M. A. Z. Application of differential scanning calorimetry in the analysis of apprehended formulations of anabolic androgenic steroids. Forensic science international, v. 296, p. 15-21, 2019.
  55. BERNEIRA, L.M.; SILVA, C.C.; PASSOS, L.F.; POLETTI, T.; SANTOS, M.A.Z.; PEREIRA, C.M.P. Analytical approaches applied to the analysis of apprehended formulations of anabolic androgenic steroids. Drug Testing and Analysis, v.12, p.1264–1273, 2020.
  56. BERNEIRA, L.M.; POLETTI, T.; SILVA, C.C.; FREITAS, S.C.; ORTIZ, R.S.; PEREIRA, C.M.P. Extraction and analytical approaches in the forensic evaluation of anabolic androgenic steroids formulations. WIREs Forensic Science, 2021.
  57. BUTTNER, A.; THIEME, D. Doping in Sport, Springer, v. 1, 2009.
  58. CARACI, F.; PISTARÀ, V.; CORSARO, A.; TOMASELLO, F.; GIUFFRIDA, M.L.; SORTINO, M.A.; NICOLETTI, F.; COPANI, A. Neurotoxic properties of the anabolic androgenic steroids nandrolone and methandrostenolone in primary neuronal cultures. Journal of Neuroscience Research, v. 89, 2011.
  59. COOPMAN, V.; CORDONNIER, J. Counterfeit drugs and pharmaceutical preparations seized from the black market among bodybuilders. Annales de ToxicologiesAnalitique, v.24, p. 73–80, 2012.
  60. CHIONG, D. M.; CONSUEGRA-RODRIGUEZ, E.; ALMIRALL, J. R. The analysis and identification of steroids. Journal of Forensic Science, v. 37, n. 2, p. 488-502, 1992.
  61. CHO, S. H.; PARK, H. J.; LEE, J. H.; DO, J. A.; HEO, S.; JO, J. H.; CHO, S. Determination of Anabolic-Androgenic Steroid Adulterants in Counterfeit Drugs by UHPLC-MS/MS. Journal of Pharmaceutical and Biomedical Analysis, v. 111, p. 138–146, 2015.
  62. DECONINCK, E.; SACRE, P.; COURSELLE, P.; BEER, J. O. Chromatography in the Detection and Characterization of Illegal Pharmaceutical Preparations. Journal of Chromatography Science, v. 51,p. 791–806, 2013.
  63. DE FREITAS, S. C.; SANTOS, M.A.Z.; BERNEIRA, L.M.; ORTIZ, R.S.; PEREIRA, C.M.P. Microwave-assisted extraction and differential scanning calorimetry in the chemical identification of sliming agents apprehended in the south region of Brazil. Science & Justice, v. 59, n. 2, p. 190-198, 2019.
  64. DOUÉ, D.; DERVILLY-PINEL, G.; GICQUIAU, A.; POUPONNEAU, K. MONTEAU, F.; LE BIZEC, B. High throughput identification and quantification of anabolic steroid esters by atmospheric solids analysis probe mass spectrometry for efficient screening of drug preparations. Analytical Chemitry, v. 86, p 5649–5655, 2014.
  65. EVANS, N. A. Current Concepts in Anabolic-Androgenic Steroids. The American Journal of Sports Medicine, v. 32, n.2, p. 534–542, 2004.
  66. FAVRETTO, D.; CASTAGNA, F.; MAIETTI, S.; BOSCOLO-BERTO, R.; FERRARA, S. D. When color fails: Illicit blue tablets containing anabolic androgen steroids. Journal of Pharmaceutical and Biomedical Analysis, v.83, p. 260-264, 2013.
  67. GALESIO, M.; MAZZARINO, M.; DE LA TORRE, X.; BOTRE, F.; CAPELO, J. L. Accelerated sample treatment for screening of banned doping substances by GC–MS: ultrasonication versus microwave energy. Analytical and Bioanalytical chemistry, v.399, n.2, p. 861-875, 2011.
  68. HULLSTEIN, I.R.; MALEROD-FJELD, H.; DEHNES, Y.; HEMMERSBACH, P. Black market products confiscated in Norway 2011-2014 compared to analytical findings in urine samples. Drug Testing and Analysis, v.7, p.1025–1029, 2015.
  69. KAUPPILA, T.J.; FLINK, A.; HAAPALA, M.; LAAKKONEN, U.M.; AALBERG, L.; KETOLA, R.A.; KOSTIAINEN R. Desorption atmospheric pressure photoionization-mass spectrometry in routine analysis of confiscated drugs. Forensic Science International, v. 210, p. 206–212, 2011.
  70. KICMAN, A. T. Pharmacology of Anabolic Steroids. British Journal of Pharmacology, v.154, n.3, p.502–521, 2008.
  71. KOVACS, S.; HAWES, S.E.; MALEY, S.N.; MOSITES, E.; WONG, L.; STERGACHIS, A. Technologies for detecting falsified and substandard drugs in low and middle-income countries. PLoS One, v. 9, 2014.
  72. KRUG, O.A.; O. THOMAS, K.; WALPURGIS, T.K.; PIPER, G.; SIGMUND, W.; SHANZER, T.; LAUSSMAN, M.; THEVIS, M. Identification of black market products and potential doping agents in Germany 2010-2013. European Journal of Clinical Pharmacology, v. 70, p. 1303–1311, 2015.
  73. LLOMPART, M.; CELEIRO, M.; GARCÍA-JARES, C.; DAGNAC, T. Environmental applications of solid-phase microextraction. TrAC Trends in Analytical Chemistry, v.112, p.1-12, 2019.
  74. MEIRELES, J.R.C.; OLIVEIRA, S.V.; COSTA-NETO, A.O.; CERQUEIRA, E.M.M. Genotoxic and cytotoxic effects of testosterone cypionate (Deposteron®). Mutation Research - Genetic Toxicology and Environmental Mutagenesis, v. 753, p. 72–75, 2013.
  75. MUSHARRAF, S.G.; ARFEEN, Q.U.; MAZHAR, W.; KANWAL, N. A validated stability-indicating TLC-densitometric method for the determination of stanozolol in pharmaceutical formulations. Chemistry Central, v.7, p1–8, 2013.
  76. MUSSHOFF, F.; DALDRUP, T.; RITSCH, M. Black market in anabolic steroids - Analysis of illegally distributed products. Journal of Forensic Sciences, v.42 p.1119–1125, 1997.
  77. NEVES, D.B.J.; MARCHETI, R.G.A.; CALDAS, E.D. Incidence of anabolic steroid counterfeiting in Brazil.Forensic Science International, v. 228, p. 81–83, 2013.
  78. NEVES, D.B.J.; TALHAVINI, J.; BRAGA, J.W.; ZACCA, J.; CALDAS, E.D. Detection of Counterfeit Durateston® Using Fourier Transform Infrared Spectroscopy and Partial Least Squares - Discriminant Analysis. Journal of the Brazilian Chemical Society, v.28, p. 1288–1296, 2016.
  79. NEVES, D. B. J.; CALDAS, E. D. GC–MS Quantitative Analysis of Black Market Pharmaceutical Products Containing Anabolic Androgenic Steroids Seized by the Brazilian Federal Police. Forensic Science International, v. 275, p. 272–281, 2017.
  80. O'LEARY, J. Drugs & doping in sports.Routledge-Cavendis, 2013.
  81. PROKUDINA, E.A.; PRACHALOVÁ, E.; VYSATOVÁ, M.; KURCHER, A.; RAJCHL, B.; LAPCIK, O. Analysis of anabolic androgenic steroids by direct analysis in real time ionization with time-of-flight mass spectrometry. International Journal of Mass Spectrometry, v.392, p. 28–33, 2015.
  82. REBIERE, H.; GHYSELINCK, C.; LEMPEREUR, L.; BRENIER, C. Investigation of the composition of anabolic tablets using near infrared spectroscopy and Raman chemical imaging, Drug Testing and Analysis, v. 8, p. 370–377, 2016.
  83. RIBEIRO, M.V.; BORALLE, F.G.; FELIPPE, H.R.; PEZZA, L.; M.V. de M. Ribeiro, N. Boralle, L.G. Felippe, H.R. Pezza, L. Pezza. NMR determination of adulteration of anabolic steroids in seized drugs. Steroids, v. 138, p.47–56, 2018.
  84. SHI, Y. Q.; YAO, J.; LIU, F.; HU, C.; YUAN, J.; ZHANG, Q.M.; JIN, S.H. Establishment of an HPLC identification system for detection of counterfeit steroidal drugs. Journal of Pharmaceutical and Biomedical Analysis, v. 46, p. 663-669, 2008.
  85. THEVIS, M.; SCHRADER, M.; THOMAS, A.; SIGMUND, H.; GEYER, W; SHANZER, W. Analysis of confiscated black market drugs using chromatographic and mass spectrometric approaches. Journal of Analytical Toxicology, v.32, p. 232–240, 2008.
  86. VINATORU, M.; MASON, T.J.; CALINESCU, I. Ultrasonically assisted extraction (UAE) and microwave assisted extraction (MAE) of functional compounds from plant materials. Trends Analytical Chemistry, v. 97, p. 159–178, 2017.
  87. WEBER, C.; KRUG, O.; KAMBER, M.; THEVIS, M. Qualitative and Semiquantitative Analysis of Doping Products Seized at the Swiss Border. Substance Use and Misuse, v.52, p.742–753, 2017.
  88. ZELLEROTH, S.; NYLANDER, E.; NYBERG, F.; GRÖNBLADH, A.; HALLBERG, M.Toxic Impact of Anabolic Androgenic Steroids in Primary Rat Cortical Cell Cultures. Neuroscience, v.397, p.172–183, 2019.
  89. CAPÍTULO 3: CRIMES AMBIENTAIS
  90. ABNT Associação Brasileira de Normas Técnicas - ABNT Avaliação de bens. Parte 6: Recursos naturais e ambientais. NBR 14653-6:2008 2009.
  91. ALMEIDA, Rodrigo de. Perícia em local de extração mineral. In: CORRÊA, Rodrigo Studart; BAPTISTA, Gustavo Macedo de Melo (orgs.) Mineração e áreas degradadas no Cerrado. Brasília: Editora Universa p. 105-122, 2004.
  92. ANTUNES, Paulo de Bessa. Direito Ambiental. São Paulo: Editora Atlas, 2012.
  93. BRAGA, Anthony A.; WEISBURD, David L. The effects of focused deterrence strategies on crime: A systematic review and meta-analysis of the empirical evidence. Journal of Research in Crime and Delinquency. Doi: 10.1177/0022427811419368, September 2011.
  94. CORRÊA, Rodrigo Studart; ABREU, Guilherme Rocha de Almeida. O dano a Unidades de Conservação nos termos do artigo 40 da Lei de Crimes Ambientais. Revista Brasileira de Criminalística, v. 3, n. 2, p. 23-28, Doi: 10.15260/rbc.v3i2.75, 2014.
  95. CORRÊA, Rodrigo Studart; SOUZA, Álvaro Nogueira de. Valoração de danos indiretos em perícias ambientais. Revista Brasileira de Criminalística, v. 2, n. 1, p. 7-15. Doi: 10.15260/rbc.v2i1.23, 2013.
  96. DURKHEIM, Émile. Da divisão do trabalho social. São Paulo: WMF Martins Fontes, 2010.
  97. FELSON, Marcus e ECKERT, Mary A. Crime and everyday life. Los Angeles: Sage Publications, 2015.
  98. FREITAS, Valdimir Passos e FREITAS, Gilberto Passos. Crimes contra a natureza. São Paulo: Editora Revista dos Tribunais, 2012.
  99. COLQUHOUN, Ian. Design out crime: Creating safe and sustainable communities. Crime Prevention and Community Safety, v. 6, p. 57 - 70. Doi: 10.1057/palgrave.cpcs.8140201, 2004.
  100. HARIDASAN, Mundayatan. Solos de matas de galeria e nutrição mineral de espécies arbóreas em condições naturais.In: RIBEIRO, José Felipe (Org.). Cerrado: Matas de Galeria. Planaltina, DF: EMBRAPA-CPAC, p. 19-28,1998.
  101. JESUS, Damásio de. Direito Penal. Parte geral. São Paulo: Editora Saraiva, 2010.
  102. JUSTI JÚNIOR, Jorge; ANDREOLI, Cleverson Vitório.Uso de dados climáticos e hidrológicos como subsídio na determinação do regime de fluxo de canais de drenagem. Revista Brasileira de Geomorfologia, v. 16, n. 1, p. 177- 189, 2015.
  103. KELLING, George L e WILSON, James Q Broken windows: The police and neighborhood safety. Atlantic, p. 29-38, March 1982.
  104. KOHLER, Kevin E; DODGE, Richard E. Visual-HEA: Habitat Equivalency Analysis software to calculate compensatory restoration following natural resource injury. In: Marine & Environmental Sciences Faculty Proceedings, Presentations, Speeches, Lectures. 37. Fort Lauderdale, Nova Southeastern University, p. 1611-1616, 2006.
  105. MILARÉ, Édis. Direito do meio ambiente: a gestão ambiental em foco. São Paulo: Editora Revista dos Tribunais, 2014.
  106. MOLINA, Antônio Garcia-Pablos.; GOMES, Luiz Flávio. Criminologia: una introducción a sus fundamentos teóricos. São Paulo: Editorial Tirant Lo Blanch, 2016.
  107. MOTA, José Aroudo. O valor da natureza: economia e política dos recursos naturais, Brasília: Garamond, 2001.
  108. NOGUEIRA, Jorge Madeira. Curso valoração econômica e compensação ambiental: conflitos e complementaridades. Mimeo. Brasília: Centro integrado de Ordenamento Territorial - CIORD, Universidade de Brasília, 2010.
  109. NOGUEIRA, Jorge Madeira; MEDEIROS, Marcelino Antônio Asano de. Quanto vale aquilo que não tem valor? Valor de existência, economia e meio ambiente. Brasília: Cadernos de Ciência & Tecnologia, v.16, p. 59-83, 1999.
  110. NOGUEIRA, Jorge Madeira; MEDEIROS, Marcelino Antônio Asano de; ARRUDA, Flávia Silva Tavares de. Valoração econômica do meio ambiente: Ciência ou empiricismo? Cadernos de Ciência & Tecnologia, v. 17, p. 81-115, 2000.
  111. LOURES, Sérgio Lopes; MIRANDA, Marcos Paulo de Souza; OLIVEIRA, Ana Raquel Cardoso de. Considerações acerca da nova Lei de Crimes Ambientais. Jus Navigandi, Teresina, ano 3, n. 27, 1998. Disponível em: <http://jus.com.br/revista/texto/1705>. Acesso em: 8 abr. 2021.
  112. NORONHA, Edgard Magalhães. Direito Penal. São Paulo: Editora Saraiva, 1992.
  113. PARKER, Robert Nash; SMITH, M. Dwayne. Deterrence, Poverty, and Type of Homicide. American Journal of Sociology, v. 85, n. 3, p. 614-624, 1979.
  114. PEIXOTO JÚNIOR, Vilberto da.Cunha. Dessemelhança das sanções de multa nas infrações e crimes contra o meio ambiente Conteúdo Jurídico, Direito Ambiental, 25/3/2014. In: <http://conteudojuridico.com.br/consulta/Artigos/38801/a-dessemelhanca-das-sancoes-de-multa-nas-infracoes-e-crimes-contra-o-meio-ambiente> Acesso em 28 jun. 2021.
  115. PENTEADO FILHO, Nestor Sampaio. Manual esquemático de criminologia. São Paulo: Editora Saraiva, 2020.
  116. PRADO, Luiz Régis. Direito penal do ambiente. São Paulo: Editora Revista dos Tribunais, 2012.
  117. RIBEIRO, Renata Esteves. Criminologia verde: crimes ambientais no Distrito Federal. Dissertação (Mestrado em Ciências Ambientais). Programa de Pós-Graduação em Ciências Ambientais, Universidade de Brasília. Planaltina/DF, 80p. 2018.
  118. RIBEIRO, Renata Esteves; CORRÊA, Rodrigo Studart Influência de fatores socioeconômicos sobre os crimes ambientais no Distrito Federal. Dema - Desenvolvimento e Meio Ambiente, v. 50, p. 290-305, 2019. Doi: 10.5380/dma.v50i0.57692
  119. SANTOS, Jéssica Taynara Oliveira e OLIVEIRA, Aderlan Messias. Teoria da anomia e a aparente desorganização social nas ruas da cidade de Barreiras, oeste da Bahia: uma análise dos fatores criminógenos. Campo Jurídico, v. 5, n. 2, p. 97 - 120, 2017.
  120. SHAW, Clifford R.; MCKAY, Henry D. Juvenile delinquency and urban areas. Chicago: University of Chicago Press, 1942.
  121. SHERMAN, Lawrence W., GARTIN, Patrick R. e BUERGER, Michael E. Hot spots of predatory crime: routine activities and the criminology of place. Criminology, v. 27, p. 27 - 55, Doi: 10.1111/j.1745-9125.1989.tb00862.x, 1989.
  122. SILVA, Maria Beatriz Oliveira da; PALAR, Juliana Vargas; DAVID, Thomaz Delgado de A constitucionalização da proteção ambiental frente à exploração capitalista da natureza: um balanço nos 30 anos da Constituição Federal de 1988. Revista Culturas Jurídicas, v. 5, n. 12, p. 242 - 270. Doi: https://doi.org/10.22409/rcj.v0i0.632, 2018.
  123. SILVA, Thais Brasil Barros da; CORRÊA, Rodrigo Studart. Comparação entre métodos de valoração de danos ambientais para fins periciais. Revista Brasileira de Criminalística, v. 4, n. 3, p. 7-14. Doi: 10.15260/rbc.v4i3.101, 2015.
  124. SUTHERLAND, Edwin H. Principles of Criminology. Chicago: University of Chicago Press, 1947.
  125. TAYLOR, Ian; WALTON, Paul; YOUNG, Jock. Criminologia crítica. São Paulo: Editora Graal, 1980.
  126. TOLEDO, Francisco de Assis. Princípios básicos do Direito Penal. São Paulo: Editora Saraiva, 1994.
  127. WELZEL, Hans. O novo sistema jurídico-penal: uma introdução à doutrina da ação finalista. São Paulo: Editora Revista dos Tribunais, 2015.
  128. WHITE, Rob. Crimes against nature: Environmental criminology and ecological justice. Devon: Willan Publishing, 2013.
  129. WHITE, Rob; HECKENBERG, Diane. Green Criminology: An introduction to the study of environmental harm. London: Routledge/ Taylor & Francis, 2014.
  130. CAPÍTULO 4: ESPECTROSCOPIA RAMAN NA INVESTIGAÇÃO E AUTENTICAÇÃO DE BENS CULTURAIS
  131. ANDREWS, D. et al. Analytical method development using transmission Raman spectroscopy for pharmaceutical assays and compliance with regulatory guidelines—part I: transmission Raman spectroscopy and method development. Journal of Pharmaceutical Innovation, v. 13, n. 2, p. 121-132, 2018.
  132. ANGELIN, E. M. et al. The identification of synthetic organic red pigments in historical plastics: Developing an in situ analytical protocol based on Raman microscopy. Journal of Raman Spectroscopy, v. 52, n. 1, p. 145-158, 2021.
  133. ARROYO-CEREZO, A. et al. Deep (offset) non-invasive Raman spectroscopy for the evaluation of food and beverages–A review. LWT, p. 111822, 2021.
  134. BAGLIONI, M. et al. Advanced Materials in Cultural Heritage Conservation. Molecules, v. 26, n. 13, p. 3967, 2021.
  135. BUCKLEY, K.; MATOUSEK, P. Recent advances in the application of transmission Raman spectroscopy to pharmaceutical analysis. Journal of pharmaceutical and biomedical analysis, v. 55, n. 4, p. 645-652, 2011.
  136. BURGIO, L. et al. Pigment identification by spectroscopic means: evidence consistent with the attribution of the painting Young Woman Seated at a Virginal to Vermeer. Analytical chemistry, v. 77, n. 5, p. 1261-1267, 2005.
  137. CASADIO, F. et al. Identification of organic colorants in fibers, paints, and glazes by surface enhanced Raman spectroscopy. Accounts of chemical research, v. 43, n. 6, p. 782-791, 2010.
  138. CASADIO, F.; DAHER, C.; BELLOT-GURLET, L. Raman spectroscopy of cultural heritage materials: overview of applications and new frontiers in instrumentation, sampling modalities, and data processing. Analytical Chemistry for Cultural Heritage, p. 161-211, 2017.
  139. CHELAZZI, D.; GIORGI, R.; BAGLIONI, P. Microemulsions, micelles, and functional gels: how colloids and soft matter preserve works of art. Angewandte Chemie International Edition, v. 57, n. 25, p. 7296-7303, 2018.
  140. CLARK, R. J. H. Raman microscopy: application to the identification of pigments on medieval manuscripts. Chemical Society Reviews, v. 24, n. 3, p. 187-196, 1995.
  141. CLARK, R. J. H.; DINES, T. J. Resonance Raman spectroscopy, and its application to inorganic chemistry. New analytical methods (27). Angewandte Chemie International Edition in English, v. 25, n. 2, p. 131-158, 1986.
  142. CONTI, C. et al. Advances in Raman spectroscopy for the non-destructive subsurface analysis of artworks: Micro-SORS. Journal of Cultural Heritage, v. 43, p. 319-328, 2020.
  143. CONTI, C. et al. Subsurface analysis of painted sculptures and plasters using micrometre‐scale spatially offset Raman spectroscopy (micro‐SORS). Journal of Raman Spectroscopy, v. 46, n. 5, p. 476-482, 2015.
  144. COTTE, M. et al. Applications of synchrotron X-ray nano-probes in the field of cultural heritage. Comptes Rendus Physique, v. 19, n. 7, p. 575-588, 2018.
  145. CRADDOCK, P. Scientific investigation of copies, fakes and forgeries. Routledge, 2009.
  146. DE FARIA, D. L. A. Espectroscopia Raman em perícia criminal: estado da arte e perspectivas futuras. In: BRANCO, R. P. O. (Coord.). Química Forense: ampliando o horizonte da perícia. Campinas: Millennium Editora Ltda., 2012, v. II, p. 101-140.
  147. DE FARIA, D. L. A. Espectroscopia Raman. In: MARTINIS, B. S.; OLIVEIRA, M. F. (Org.). Química Forense Experimental. 1ed.São Paulo: Cengage Learning, 2016, p. 158-181.
  148. DE FARIA, D. L. A.; PUGLIERI, T. S. Diferenciando reproduções e pinturas verdadeiras: um interessante estudo de caso. Química Nova, v. 39, p. 542-547, 2016.
  149. DE FARIA, D. L. A.; PUGLIERI, T. S. Um exemplo de aplicação da Microscopia Raman na autenticação de obras de arte. Química Nova, v. 34, p. 1323-1327, 2011.
  150. EDWARDS, H. G. M.; MUNSHI, T. Diagnostic Raman spectroscopy for the forensic detection of biomaterials and the preservation of cultural heritage. Analytical and bioanalytical chemistry, v. 382, n. 6, p. 1398-1406, 2005.
  151. EFREMOV, E. V.; ARIESE, F.; GOOIJER, C. Achievements in resonance Raman spectroscopy: Review of a technique with a distinct analytical chemistry potential. Analytica chimica acta, v. 606, n. 2, p. 119-134, 2008.
  152. JANSSENS, K.; VAN GRIEKEN, R. (Editores) Non-Destructive Microanalysis of Cultural Heritage Materials. Elsevier, 2004.
  153. KELLOWAY, S. et al. Discrimination of Contraband Ivories Using Long Wavelength Portable Raman Instrumentation. In: VANDENABEELE, P.; EDWARDS, H. (Ed.). Raman Spectroscopy in Archaeology and Art History. Volume 2. Royal Society of Chemistry, 2019.
  154. LA RUSSA, M. F. et al. The colors of the Fontana di Trevi: an analytical approach. International Journal of Architectural Heritage, v. 12, n. 1, p. 114-124, 2018.
  155. LI, J.-F. et al. Dielectric shell isolated and graphene shell isolated nanoparticle enhanced Raman spectroscopies and their applications. Chemical Society Reviews, v. 44, n. 23, p. 8399-8409, 2015.
  156. MAGDY, M. Analytical Techniques for the Preservation of Cultural Heritage: Frontiers in Knowledge and Application. Critical Reviews in Analytical Chemistry, p. 1-26, 2020.
  157. MCNAY, G. et al. Surface-enhanced Raman scattering (SERS) and surface-enhanced resonance Raman scattering (SERRS): a review of applications. Applied spectroscopy, v. 65, n. 8, p. 825-837, 2011.
  158. MELCHER, M.; WIESINGER, R.; SCHREINER, M. Degradation of glass artifacts: application of modern surface analytical techniques. Accounts of chemical research, v. 43, n. 6, p. 916-926, 2010.
  159. MIGUEL, C.; CANDEIAS, A. Raman Spectroscopy as a Cultural Heritage Forensic Tool. In: VANDENABEELE, P.; EDWARDS, H. (Ed.). Raman Spectroscopy in Archaeology and Art History. Volume 2. Royal Society of Chemistry, 2019.
  160. MOSCA, S. et al. Spatially offset Raman spectroscopy. Nature Reviews Methods Primers, v. 1, n. 1, p. 1-16, 2021.
  161. POZZI, F.; LEONA, M. Surface‐enhanced Raman spectroscopy in art and archaeology. Journal of Raman Spectroscopy, v. 47, n. 1, p. 67-77, 2016.
  162. PUGLIERI, T. S.; MADDEN, O.; ANDRADE, G. F. S. SHINERS in cultural heritage: Can SHINERS spectra always be compared with normal Raman spectra? A study of alizarin and its adsorption in the silicon dioxide shell. Journal of Raman Spectroscopy, v. 52, n. 8, p. 1406-1417, 2021.
  163. ROUSAKI, A.; VANDENABEELE, P. In situ Raman spectroscopy for cultural heritage studies. Journal of Raman Spectroscopy, 2021.
  164. SALA, O. Fundamentos de Espectroscopia Raman e no Infravermelho. 2ª. ed. Editora da Unesp, 2012.
  165. SMITH, E.; DENT, G. Modern Raman spectroscopy: A practical approach. John Wiley & Sons, 2019.
  166. SMITH, G. D.; CLARK, R. J. H. Raman microscopy in archaeological science. Journal of archaeological science, v. 31, n. 8, p. 1137-1160, 2004.
  167. SOTIROPOULOU, S. et al. Advanced analytical investigation on degradation markers in wall paintings. Microchemical Journal, v. 139, p. 278-294, 2018.
  168. YU, J.; BUTLER, I. S. Recent applications of infrared and Raman spectroscopy in art forensics: A brief overview. Applied Spectroscopy Reviews, v. 50, n. 2, p. 152-157, 2015.
  169. CAPÍTULO 5: ANÁLISE DE RESÍDUOS DE DISPARO DE ARMA DE FOGO
  170. ALISTE, M.; ARRANZ, S.; SÁNCHEZ-ORTEGA, A.; SAMPEDRO, M.C.; UNCETA, N.; GÓMEZ-CABALLERO, A.; VALLEJO, A.; GOICOLEA, M.A.; BARRIO, R.J.Particle Analysis for the Detection of Gunshot Residue (GSR) in Nasal Samples Using Scanning Laser Ablation and Inductively Coupled Plasma-Mass Spectrometry (SLA-ICPMS). Journal of Forensic Sciences, v. 65, n. 4, p. 1094–1101, 2020.
  171. ARNDT, J.; BELL, S.; CROOKSHANKS, L.; LOVEJOY, M.; OLESKA, C.; TULLEY, T.; WOLFE, D.Preliminary evaluation of the persistence of organic gunshot residue.Forensic Science International, v. 222, n. 1–3, p. 137–145, 2012.
  172. BELL, S.; FEENEY, W. Single shot, single sample, single instrument detection of IGSR and OGSR using LC/MS/MS. Forensic Science International, v. 299, p. 215–222, 2019.
  173. BLAKEY, L.S.; SHARPLES, G.P.; CHANA, K.; BIRKETT, J.W.Fate and Behavior of Gunshot Residue—A Review.Journal of Forensic Sciences, v. 63, n. 1, p. 9–19, 2018.
  174. BONNAR, C.; MOULE, E. C.; LUCAS, N.; SEYFANG, K. E.; DUNSMORE, R.P.; POPELKA-FILCOFF., RACHEL S.; REDMAN, K.; PAUL KIRKBRIDE, K.Tandem detection of organic and inorganic gunshot residues using LC–MS and SEM-EDS. Forensic Science International, v. 314, p. 110389, 2020.
  175. CABRAL, A.B.; JUNIOR, B.P. Curso de Manuseio e Utilização de Arma de Fogo. Receita Federal, 2007.
  176. CHEMELLO, E. Ciência Forense: balística. Química Virtual, fevereiro, 2007.
  177. COSTA, R.A.; DOS SANTOS, N.A.; CORRÊA, T.S.M.; WYATT, N.L.P.; CHAMOUN, C. A.; CARNEIRO, M.T.W.D.; ROMÃO, W.DetectionofPb, Ba, and Sb in Cadaveric Maggots and Pupae by ICP-MS. Journal of forensic sciences, v. 65, n. 6, p. 2188–2193, 2020.
  178. COSTA, R.A.; MOTTA, L.C.; DESTEFANI, C.A.; RODRIGUES, R.; SANTO, K.; AQUIJE, G.; BOLDRINI, R.; ATHAYDE, G.; CARNEIRO, M.T.; ROMÃO, W. Gunshot residue (GSR) analysis of clean range ammunition using SEM/EDX, colorimetric test and ICP-MS: A comparative approach between the analytical techniques. Microchemical Journal. V. 129, Pg. 339-347, 2016.
  179. DALBY, O.; BUTLER, D.; BIRKETT, J.W. Analysis of Gunshot Residue and Associated Materials-A Review. Journal of Forensic Sciences, v. 55, n. 4, p. 924–943, 2010.
  180. DONG, M.W. HPLC and UHPLC for practicing scientists.Wiley, 2019.
  181. DOS REIS, E.L.T.; SARKIS, E. S.; RODRIGUES, C. Identificação de Resíduos de Disparo de Armas de Fogo por meio da Técnica de Espectrometria de Massas de Alta Resolução com Fonte de Plasma Indutivo. Química Nova, Vol. 27, No. 3, 409 – 413, 2004.
  182. DUARTE, A. Caracterização Elementar de Resíduos de disparo de Armas de Fogo Gerados por Munição de Fabricação Brasileira. Programa de Pós-graduação em Ciências dos Materiais, Universidade do Rio Grande do Sul, 2014.
  183. EKSINITKUN, G. The Collection and Identification of Gunshot Residues to Distinguishing 4 Types of Bullets by ICP-MS. Journal of Physics: Conference Series, v. 1144, n. 1, 2018.
  184. FEENEY, W.; VANDER, C.; BELL, S.; TREJOS, T. Trends in composition, collection, persistence, and analysis of IGSR and OGSR: A review. ForensicChemistry, v. 19, n. May, p. 100250, 2020.
  185. Forum Brasileiro de Segurança Pública. Anuário Brasileiro de Segurança Pública, 2021. Acessado em 27 set. 2021. Online. Disponível em: https://forumseguranca.org.br/wp-content/uploads/2021/07/anuario-2021-completo-v6-bx.pdf
  186. Forum Brasileiro de Segurança Pública. Atlas de Violência, 2021. Acessado em 27 set. 2021. Online. Disponível em:https://www.ipea.gov.br/atlasviolencia/arquivos/artigos/1375-atlasdaviolencia2021completo.pdf
  187. FREITAS, J.C.D. Identificação de Assinaturas Químicas em Resíduos de Disparo de Arma de Fogo em Diferentes Alvos. Autarquia Associada à Universidade de São Paulo, Mestrado em Tecnologia Nuclear de Materiais. São Paulo, 2010.
  188. GALLIDABINO, M.D.; WEYERMANN, C. Time since last discharge of firearms and spent ammunition elements: state of the art and perspectives. Forensic Science International, v. 311, 2020.
  189. GANDY, L.; NAJJAR, K.; TERRY, M.; BRIDGE, C.A novel protocol for the combined detection of organic, inorganic gunshot residue.Forensic Chemistry, v. 8, p. 1–10, 2018.
  190. GASSNER, A.L.; WEYERMANN, C. LC-MS method development and comparison of sampling materials for the analysis of organic gunshot residues.Forensic Science International, v. 264, p. 47–55, 2016.
  191. GEORG, N.J.; KELNER, L.; JUNIOR, J.B.S. Armas de Fogo: Aspectos Técnicos Periciais, Revista Jurídica, v.15, nº 30, 137-156, 2011.
  192. GOUDSMITS, E.; BLAKEY, L.S.; CHANA, K.; SHARPLES, G.P.; BIRKETT, J.W.The analysis of organic and inorganic gunshot residue from a single sample.Forensic Science International, v. 299, p. 168–173, 2019.
  193. HARRIS, D.C. Análise Química Quantitativa. 8ªEd. Livros Técnicos e Científicos Editora Ltda. Pg. 512-533, 2012.
  194. HONDROGIANNIS, E.; ANDERSEN, D.; MIZIOLEK, A.The Evaluation of a New Technology for Gunshot Residue (GSR) Analysis in the Field.Next-Generation Spectroscopic Technologies, 2013.
  195. LAGOO, L.; SCHAEFFER, L.; DAVID, M.; SZYMANSKI, D.; SMITH, R. Detection of Gunshot Residue in Blowfly Larvae and Decomposing Porcine Tissue Using Inductively Coupled Plasma Mass Epectrometry (ICP-MS). Journal of Forensic Science. V. 55, nº 3, Pg. 624-632, 2010.
  196. MAITRE M., KIRKBRIDE K.P., HORDER M., ROUX C., BEAVIS A. Current perspectives in the interpretation of gunshot residues in forensic science: A review. Forensic Science International. V. 270, Pg. 1-11, 2017.
  197. MAITRE, M.; HORDER, M.; KIRKBRIDE, K.P.; GASSNER, A.L.; WEYERMANN, C.; ROUX, C.; BEAVIS, A.A forensic investigation on the persistence of organic gunshot residues.Forensic Science International, v. 292, p. 1–10, 2018.
  198. Manual de armamento e manuseio seguro de armas de fogo. Poder Judiciário. Tribunal de justiça do estado do amazonas. Diretoria do Fórum Ministro Henoch Reis, Manaus, 2012.
  199. MARTINS, B. S.; DE OLIVEIRA, M. F. Química Forense Experimental 1ª Edição, Cengage Learning Edições Ltda. Pg. 63 – 77, 2016.
  200. MENG, H.; CADDY, B. Gunshot Residue Analysis—A Review.Journal of Forensic Sciences, v. 42, n. 4, p. 14167J, 1997.
  201. MENKING-HOGGATT, K.; ARROYO, L.; CURRAN, J.; TREJOS, T.Novel LIBS method for micro-spatial chemical analysis of inorganic gunshot residues.Journal of Chemometrics, v. 35, n. 1, p. 1–13, 2021.
  202. MOTTA, L.C.; VANINI, G.; CHAMOUN, C.; COSTA, R.; VAZ, B.; COSTA, H.; BASSANE, J.; CARNEIRO, M.T.; ROMÃO, W. Detection of Pb, Ba, and Sb in Blowfly Larvae of Porcine Tissue Contaminated with Gunshot Residue by ICP-OES. Journal of Chemistry, 2015.
  203. POOLE, C.F. Gas chromatography second edition.Elsevier, 2021.
  204. PUN, K.M.; GALLUSSER, A. Macroscopic observation of the morphological characteristics of the ammunition gunpowder.Forensic Science International, v. 175, n. 2–3, p. 179–185, 2008.
  205. Revista Perícia Federal, Os novos rumos da Balística Forense. Associação Nacional dos Peritos Criminais Federais. Ano VI, nº 22, 2005.
  206. Revista Perícia Federal, Sistema nacional de análise balística (SINAB). AnoXVl, nº46, 2020.
  207. SANTOS, A; RAMOS, P.; FERNANDES, L.; MAGALHÃES, T.; ALMEIDA, A.; SOUSA, A. Firing distance estimation based on the analysis of GSR distribution on the target surfasse using ICP-MS- Na experimental study with a 7.65mm x 17mm Browning Pistol (.32ACP). Forensic Science International, V. 247, Pg. 62-68, 2015.
  208. SANTOS, L.S. Avaliação de Parâmetros que Afetam a Efetividade da Comparação Balística Automatizada. Programa de Pós-Graduação em Ciências Mecânicas, Universidade de Brasília, 2015.
  209. SANTOS, P.C. A Utilização do Estudo da Balística na Prática da Medicina Forense. Faculdade de Direito, Universidade Federal do Rio Grande do Sul, 2010.
  210. SCHWOEBLE A.J.; EXLINE David L. Current Methods in Forensic Gunshot Residue Analysis.CRC Press LLC Editora. 2000.
  211. SKOOG, D. A.; HOLLER, F. J.; WEST, T. A., Princípios de Análise Instrumental, 8ª ed., Norte-Americana, Thomson Learning, 2006.
  212. STEVENS B.; BELL, S.; ADAMS, K. Initial evaluation of inlet thermal desorption GC–MS analysis for organic gunshot residue collected from the hands of known shooters. Forensic Chemistry, v. 2, p. 55–62, 2016.
  213. TARIFA, A.; ALMIRALL, J. Fast detection and characterization of organiz and inorganic gunshot residues on the hands of suspects by CMV-GC-MS and LIBS.Science and justice. V. 55, Pg. 168-175, 2015.
  214. VANINI, G. Análise de Resíduos de Disparo de Arma de Fogo usando ICP OES: desenvolvimento de uma metodologia analítica. Dissertação de Mestrado em Química. Universidade Federal do Espírito Santo, 2014.
  215. VANINI, G.; DESTEFANI, C.A.; MERLO, B.B.; CARNEIRO, M.T.; FILGUEIRAS, P.R.; POPPI, R.J.; ROMÃO, W. Forensic ballistics by inductively coupled plasma-optical emission spectroscopy: Quantification of gunshot residues and predition of the number of shots using diferente firearms. Microchemical Journal. V. 118, Pg. 19-25, 2015.
  216. VANINI, G.; SOUZA, R.M.; DESTEFANI, C.A.; MERLO, B.B.; PIOROTTI, T.M.; DE CASTRO, E.V.; CARNEIRO, M.T.; ROMÃO, W. Analysis of gunshot residues produced by .38 caliber handguns using inductively coupled plasma-optical emission spectroscopy (ICP-OES). MicrochemicalJournal. V. 115, Pg. 106-112, 2014.
  217. VELHO, J.A.; GEISER, G.C.; ESPINDULA, A. Ciências Forenses – Uma Introdução à Principais Áreas da Criminalística Moderna. Millennium Editora, 2013.
  218. WAISELFISZ, J.J. Mapa da Violência, Homicídios por armas de fogo no Brasil, FLACSO BRASIL, 2016.
  219. CAPÍTULO 6: SUBSTÂNCIAS PSICOATIVAS
  220. ADAY, J.S. et al. Long-term effects of psychedelic drugs: A systematic review. Neuroscience and Biobehavioral Reviews, v. 113, p. 179-189, 2020.
  221. ADF. Alcohol and Drug Foundation. Medicinal cannabis. 2021. Disponível em: <https://adf.org.au/drug-facts/medicinal-cannabis/>. Acesso: Ago. 2021.
  222. ALEXANDRIDOU, A. et al. GC-MS analysis of underivatised new psychoactive substances in whole blood and urine. Journal of Chromatography B, v. 1156, p. 122308, 2020.
  223. ARAÚJO, A.M. et al. The hallucinogenic world of tryptamines: an updated review. Archives of Toxicology, v. 89, n. 8, p.1151-1173, 2015.
  224. ARES-FUENTES, A.M. et al. An analytical strategy for designer benzodiazepines and Z-hypnotics determination in plasma samples using ultra-high performance liquid chromatography/tandem mass spectrometry after microextraction by packed sorbent. Journal of Pharmaceutical and Biomedical Analysis, v. 194, p. 113779, 2021.
  225. ASTRAND A. et al. Activation of the μ-opioid receptor by alicyclic fentanyls: changes from high potency full agonists to low potency partial agonists with increasing alicyclic substructure. Drug Testing and Analysis, v. 13, p. 169-174, 2021.
  226. BADE, R. et al. Investigating the appearance of new psychoactive substances in south Australia using wastewater and forensic data. Drug Testing and Analysis, v. 11, n. 2, p. 250-256, 2019.
  227. BATES, M. L. S.; TRUJILLO, K.A. Use and abuse of dissociative and psychedelic drugs in adolescence. Pharmacology, Biochemistry and Behaviour, v. 203, p. 1731129, 2021.
  228. BERGERET, J.; LEBLANC, J. Toxicomanias – uma visão multidisciplinar. Porto Alegre: Artes Médicas, 1991.
  229. BINETTE, M.J.; PILON, P. Detecting Black Cocaine Using Various Presumptive Drug Tests. Microgram Journal, v. 10, n.1, p. 8-11, 2013.
  230. BUSARDÒ, F.P. et al. Drug-facilitated sexual assaults (DFSA): a serious underestimated issue. European Review for Medical and Pharmacological Sciences, v. 23, p. 10577-10587, 2019.
  231. CARTISER, N. et al. Fatal intoxication involving 4-methylpentedrone (4-MPD) in a context of chemsex. Forensic Science International, v. 319, p. 110659, 2021.
  232. CHEN, L.; ZHU, D.; XIANG, P. Recent advances in chiral analysis for biosamples in clinical research and forensic toxicology. Bioanalysis, v.13, n. 6, p. 493-511, 2021.
  233. CNN. Cocaine disguised as charcoal worth up to $41 million seized by police. 15/07/2021. Disponível em: <https://edition.cnn.com/2021/07/15/europe/ireland-cocaine-charcoal-seizure-scli-intl/index.html>. Acesso: Ago. 2021.
  234. COSTA, Y.R.S. et al. Violence against women and drug-facilitated sexual assault (DFSA): A review of the main drugs. Journal of Forensic and Legal Medicine, v. 74, p. 102020, 2020.
  235. DARKE, S. et al. Characteristics and circumstances of synthetic cannabinoid-related death. Clinical Toxicology, v. 58, n. 5, p. 368-374, 2020.
  236. DeROUX, S.J.; DUNN, W.A. “Bath Salts” the New York city medical examiner experience: A 3-year retrospective review. Journal Forensic Science, v. 62, n. 3, p. 695-699, 2017.
  237. DOSS, M. K. et al. The Acute Efects of the Atypical Dissociative Hallucinogen Salvinorin A on Functional Connectivity in the Human Brain. Scientific Reports, v.10, p. 16392, 2020.
  238. ELIAERTES, J. et al. Challenges for cocaine detection in smuggling samples. Forensic Science International, v. 319, p. 110534, 2021.
  239. ESTRELLA-PARRA, E.A. et al. Ayahuasca: Uses, Phytochemical and Biological Activities. Natural Products and Bioprospecting, v.9, p.251-265, 2019.
  240. FARRÉ, M. et al. Addiction of Hallucinogens, Dissociatives, Designer Drugs and “Legal Highs”: Update on Potential Therapeutic Use. Em: EL-GUEBALY, N. et al. Textbook of Addiction Treatment: International Perspectives. 2 ed. Springer, 2021.
  241. FARRELL, M et al. Responding to global stimulant use: challenges and opportunities. Lancet, v. 394, n. 10209, p. 1652-1667, 2019.
  242. FATUR, K. Peculiar plants and fantastic fungi: An ethnobotanical study of the use of hallucinogenic plants and mushrooms in Slovenia. PLoS ONE, v. 16, n.1, p. e0245022, 2021.
  243. FATUR, K; KREFT, S. Nixing the nightshades: Traditional knowledge of intoxicating members of the Solanaceae among hallucinogenic plant and mushroom users in Slovenia. PLoS ONE, v. 16, n.2, p. e0247688, 2021.
  244. FETT, M. S. Métodos aplicados à rastreabilidade de Cannabis sativa L. (maconha) em território brasileiro. 2017. 82 f. Tese (Doutorado em Ciência do Solo) - Faculdade de Agronomia, Universidade Federal do Rio Grande do Sul, Porto Alegre, 2017.
  245. FLAMENT, E. et al. Human Poisoning from Poisonous Higher Fungi: Focus on Analytical Toxicology and Case Reports in Forensic Toxicology. Pharmaceuticals, v.13, p.454, 2020.
  246. FOGGER, S. A. Methamphetamine Use: A New Wave in the Opioid Crisis? Journal of Addictions Nursing, v. 30, n.3, p. 219-223, 2019.
  247. FRANCK, M.C. et al. Development and validation of a LC-ESI-MS/MS method for simultaneous whole blood analysis of 51 new psychoactive substances. Drug Analytical Research, v. 3, n. 2, p. 36-45, 2019.
  248. FRANCK, M.C. Suicídios no Rio Grande do Sul, Brasil: desenvolvimento e validação de método analítico para detecção de novas substâncias psicoativas em amostras forenses de sangue, aplicação nas vítimas jovens e perfil de todos os casos entre 2017 e 2019. Tese: Universidade Federal do Rio Grande do Sul, Faculdade de Farmácia, 2021.
  249. G1 RS. Cocaína preta é apreendida em pacotes de açaí em pó no RS; polícia diz que nova droga é rara. 03/02/2021. Disponível em: <https://g1.globo.com/rs/rio-grande-do-sul/noticia/2021/02/03/cocaina-preta-e-apreendida-em-pacotes-de-acai-em-po-no-rs-policia-diz-que-nova-droga-e-rara.ghtml>. Acesso em: Ago. 2021.
  250. GARNEAU, B. et al. A comprehensive analytical process, from NPS threat identification to systematic screening: Method validation and one-year prevalence study. Forensic Science International, v. 318, p. 110595, 2021.
  251. GIORGETTI, A. et al. Molecular mechanisms of action of novel psychoactive substances (NPS). A new threat for young drug users with forensic-toxicological implications. Life, v.11, p.440, 2021.
  252. GRAEFF, F.G. Drogas psicotrópicas e seu modo de ação. 2º edição. São Paulo: EPU, 2005.
  253. GRAFINGER, K.E. et al. In vitro phase I metabolism of three phenethylamines 25D-NBOMe, 25E-NBOMe and 25N-NBOMe using microsomal and microbial models. Drug Testing and Analysis, v.10, n.10, p. 1607-1626, 2018.
  254. GREENE, S.L. Tryptamines. Em: DARGAN, P.I.; WOOD, D.M. Novel psychoactive substances: classification, pharmacology and toxicology. Academic Press, 2013.
  255. GRELA, A. et al. A multifactorial critical appraisal of substances found in Drug Facilitated Sexual Assault cases. Forensic Science International, n. 292, p. 50-60, 2018.
  256. HALBERSTADT, A.; GEYER, M. A. Neuropharmacology of Lysergic Acid Diethylamide (LSD) and Other Hallucinogens. Em: MILLER, P. M. Biological Research on Addiction, Vol. 2. Elsevier, 2013
  257. HALBERSTADT, A.L., et. al. Comparison of the behavioral responses induced by phenylalkylamine hallucinogens and their tetrahydrobenzodifuran (“FLY”) and benzodifuran (“DragonFLY”) analogs, Neuropharmacology, v.144, p. 368-378, 2019.
  258. HASCHIMI, B. et al. New synthetic cannabinoids carrying a cyclobutyl methyl side chain: human phase I metabolism and data on human cannabinoid receptor 1 binding and activation of cumyl-CBMICA and Cumyl-CBMINACA. Drug Testing and Analysis, v.13. n.8, p. 1499-1515, 2021.
  259. HOLZE, F. et al. Distinct acute effects of LSD, MDMA, and D-amphetamine in healthy subjects. Neuropsychopharmacology, v. 45, p. 462-471, 2020.
  260. INSTITÓRIS, L. et al. Clinical symptoms and blood concentration of new psychoactive substances (NPS) in intoxicated and hospitalized patients in the Budapest region of Hungary (2018-19). Clinical Toxicology, v. 3, p. 1-7, 2021.
  261. JBRJ. Flora do Brasil 2020. Jardim Botânico do Rio de Janeiro (JBRJ). 2020. Disponível em: <http://floradobrasil.jbrj.gov.br>. Acesso em: Jun., 2021
  262. KIRLA, K.T. et al. Zebrafish early life stages as alternative model to study ‘designer drugs’: Concordance with mammals in response to opioids. Toxicology and Applied Pharmacology, v.419, p.115483, 2021.
  263. KLEIS, J. et al. Sensitive screening of new psychoactive substances in serum using liquid-chromatography quadrupole time-of-flight mass spectrometry. Journal of Analytical Toxicology, v. bkab072, 2021.
  264. KREUTZWISER, D.; TAWFIC, Q.A. Expanding Role of NMDA Receptor Antagonists in the Management of Pain. CNS Drugs, v. 33, p.347-374, 2019.
  265. KROTULSKI, A.J. et al. Brorphine—Investigation and quantitation of a new potent synthetic opioid in forensic toxicology casework using liquid chromatography-mass spectrometry. Journal of Forensic Sciences, v. 66, n.2, p.664-676, 2021.
  266. KROTULSKI, A.J. et al. Evaluation of synthetic cannabinoid metabolites in human blood in the absence of parent compounds—A stability assessment. Journal of Analytical Toxicology, v.45, n.1, p.60-68, 2021b.
  267. KROTULSKI, A.J. et al. Metonitazene in the United States – Forensic toxicology assessment of a potent new synthetic opioid using liquid chromatography mass spectrometry. Drug Testing and Analysis, v. 13, n.10, 1697-1711, 2021c.
  268. KROTULSKI, A.J. et al. The next generation of synthetic cannabinoids: Detection, activity, and potential toxicity of pent-4en and but-3en analogues including MDMB-4en-PINACA. Drug Testing and Analysis, v.13, n.2, p.427-438, 2021a.
  269. KÜTING, T. et al. Methyl-4-hydroxybutyrate and ethyl-4-hydroxybutyrate as potential markers for simultaneous consumption of GHB/GBL and alcohol: preliminary investigations. Journal of Analytical Toxicology, v.44, n.8, p. 818-828, 2020.
  270. KUYPERS, K. P. C. The therapeutic potential of microdosing psychedelics in depression. Therapeutic Advances in Psychopharmacology, v.10, p. 1-15, 2020.
  271. LAPPIN, J.M; SARA, G.E. Psychostimulant use and the brain. Addiction, v.114, n.11, p. 2065-2077, 2019.
  272. LAUSSMANN, T. et al. Copper thiocyanato complexes and cocaine – a case of ‘black cocaine’. Drug Testing and Analysis, v.7, n.1, 2015, 56-64.
  273. LIU, W. et al. A comprehensive description of GluN2B-selective N-methyl-D-aspartate (NMDA) receptor antagonists. European Journal of Medicinal Chemistry, v.200, p. 112447, 2020.
  274. MALACA, S. et al. Advances in forensic toxicology. Current Pharmaceutical Design, v.26, n.31, p. 3779-3780, 2020.
  275. MALDANER, A.O.; BOTELHO, E.D. PeQui em Ação. Revista Perícia Federal, v.39, p.22-23, 2017.
  276. MARTA, R. F. L. O. Metabolism of lysergic acid diethylamide (LSD): an update. Drug Metabolism Reviews, v.51, n.3, 378-387, 2019.
  277. MARTON, R. et al. Perfil epidemiológico das vítimas de violência sexual envolvendo Drogas Facilitadoras de Crime (DFCs). Revista Brasileira de Criminalística, v.8, n.2, p-63-67, 2019.
  278. MARTZ, W. et al. Variation of intraindividual levels of endogenous GHB in segmented hair samples. Forensic Science International, v.302, p. 1-9, 2019.
  279. MESTRIA, S. et al. Method development for the identification of methoxpropamine, 2-fluoro-deschloroketamine and deschloroketamine and their main metabolites in blood and hair and forensic application. Forensic Science International, v.323, p.110817, 2021.
  280. MILHORN, H.T. Dissociative Drug Dependence. Em: MILHORN, H.T. Substance Use Disorders. Springer, 2018.
  281. MIRANDA, O.F.; et al. Assessment of environmental condition and drying process of the plants on the concentration of alkaloids and cytotoxicity of traditional Ayahuasca Tea. World Journal of Advanced Research and Reviews, v.10, n.2, p.75-89, 2021.
  282. MOFFAT, A.C. et al. Clarke’s analysis of drugs and poisons in pharmaceuticals, body fluids and post-mortem material. Fourth edition. London (UK): Pharmaceutical Press, 2011. 2609p.
  283. MORBIATO, E. et al. Potential of the zebrafish model for the forensic toxicology screening of NPS: A comparative study of the effects of APINAC and methiopropamine on the behavior of zebrafish larvae and mice. Neurotoxicology, v.78, p. 36-46, 2020.
  284. MORELLI, M; TOGNOTTI, E. Brief history of the medical and non-medical use of amphetamine-like psychostimulants. Experimental Neurology, v. 342, p.113754, 2021.
  285. MOUSTAFA, R.E et al. Designer benzodiazepines versus prescription benzodiazepines: can structural relation predict the next step? Critical Reviews in Toxicology, v.51, n.3, p.249-263, 2021.
  286. NASCIMENTO, A.G.T.P.; DALCIN, M.F. Uso terapêutico da Cannabis sativa: uma breve revisão. Brazilian Journal of Surgery and Clinical Research, v.27, n.2, p. 164-169, 2019.
  287. NETO, A.G.C. et al. Cocaine and Its Variations in Forms of Presentation and Addiction. Em: WOOLFOLK, R. et al. Psychopathology - An International and Interdisciplinary Perspective. IntechOpen, 2020.
  288. NETO, O.B. Traficantes lançam a cocaína colorida. Revista Perícia Federal, v.1, p.14-15, 1999.
  289. NICHOLS, D. E. Chemistry and Structure–Activity Relationships of Psychedelics. Current Topics in Behavioral Neurosciences, v.36, p.1-43, 2017.
  290. NORMAN, C. et al. A transnational perspective on the evolution of the synthetic cannabinoid receptor agonists market: comparing prison and general populations. Drug Testing and Analysis, v.13, n.4, p. 841-852, 2021.
  291. NUTT D. Psychedelic drugs - a new era in psychiatry? Dialogues in Clinical Neuroscience, v. 21, n.2, p. 139-147, 2019.
  292. ODOARDI, S. et al. Metabolism study and toxicological determination of mephtetramine in biological samples by liquid chromatography coupled with high-resolution mass spectrometry. Drug Testing and Analysis, v.13, n.8, p.1516-1526, 2021.
  293. OEDT. Observatório Europeu da Droga e da Toxicodependência. Hallucinogenic mushrooms drug profile, 2013. Disponível em: . Acesso em: Jun. 2021.
  294. OEDT. Observatório Europeu da Droga e da Toxicodependência. Relatório Europeu sobre Drogas: Tendências e Evoluções. Serviço das Publicações da União Europeia, Luxemburgo, 2021. Disponível em: <https://www.emcdda.europa.eu/system/files/publications/13838/2021.2256_PT_03.pdf>. Acesso: Jul. 2021.
  295. OGA, S. Fundamentos de toxicologia. São Paulo: Atheneu, 1996.
  296. OMARE, M.O. et al. Current Trends in the Use of Cannabis sativa: Beyond Recreational and Medicinal Applications. Open Access Library Journal, v.8, p. e7132, 2021.
  297. PAPASEIT, E. et al. Acute pharmacological effects of oral and intranasal mephedrone: an observational study in humans. Pharmaceuticals, v.14, p.100, 2021).
  298. PELLETTI, G. et al. Safe drugs in drug facilitated crimes and acute intoxications in Northern Italy. Forensic Science, Medicine and Pathology, v.14, n.4, p. 442-449, 2018.
  299. POULSEN, H. et al. Toxicological assessment of the role of alcohol and drugs in drug facilitated sexual assault cases in New Zealand. Journal of Analytical Toxicology, v.45, p.44-52, 2021.
  300. RADWAN, M.M. et al. Cannabinoids, Phenolics, Terpenes and Alkaloids of Cannabis. Molecules, v.26, p.2774, 2021.
  301. REITH, M.E.A.; GNEGY, M.E. Molecular Mechanisms of Amphetamines. Em: NADER, M.; HURD, Y. (eds) Substance Use Disorders: From Etiology to Treatment. Springer, 2019.
  302. RENSBURG, R.V. et al. Medical cannabis: What practitioners need to know. SAMJ, v. 110, n.3, p. 192-196, 2020.
  303. RIBEIRO, L.O.P. Identificação e rastreabilidade de Cannabis sativa por meio de sistema multiplex de microssatélite (STR). 2019. 50 f. Dissertação (Mestrado em Biologia Celular e Molecular) - Escola de Ciências da Saúde e da Vida, Pontifícia Universidade Católica do Rio Grande do Sul, Porto Alegre, 2019.
  304. RIBEIRO, M. et al. Adulterants in crack cocaine in Brazil. Trends Psychiatry Psychother, v.41, n.2, p.186-190, 2019.
  305. RYAN, S.A. Cocaine Use in Adolescents and Young Adults. Pediatric Clinics of North America, v.66, p. 1135-1147, 2019.
  306. SALAS, J.R. et al. Concentrations of para-fluorofuranylfentanyl (FFF) in paired central and peripheral blood collected during post-mortem death investigations. Journal of Analytical Toxicology, p. 1-16, 2021.
  307. SANDAL, C. Drug-facilitated sexual assault. Workplace Health & Safety, v. 68, n.3, p. 1, 2020.
  308. SANTOS, N.A. et al. Analysis of Isomeric Cannabinoid Standards and Cannabis Products by UPLC ESI TWIM-MS: a Comparison with GC MS and GC × GC-QMS. Journal of the Brazilian Chemical Society, v. 30, n.1, p.60-70, 2019,
  309. SANTOS, RG; HALLAK, JEC. Therapeutic use of serotoninergic hallucinogens: a review of the evidence and of the biological and psychological mechanisms, Neuroscience and Biobehavioral Reviews, v.108, p.423-434, 2019.
  310. SCHWELM, H.M. et al. Application of a chiral HPLC-MS/MS method for the determination of 13 related amphetamine-type stimulants to forensic samples: Interpretative hypotheses. Drug Testing and Analysis, v.12, n.9, p. 1354-1365, 2020.
  311. SHI, Y. et al. UHPLC-MS/MS method for simultaneously detecting 16 tryptamines and their metabolites in human hair and applications to real forensics cases. Journal of Chromatography B, v.1159, p. 122392, 2020.
  312. SHI, Y. Heterogeneities in administration methods among cannabis users by use purpose and state legalization status: findings from a nationally representative survey in the United States, 2020. Addiction, v. 116, n.7, p.1782-1793, 2021.
  313. SIEFRIED, K.J. et al. Pharmacological Treatment of Methamphetamine / Amphetamine Dependence: A Systematic Review. CNS Drugs, v. 34, p. 337-365, 2020.
  314. SOLBECK, P. et al. Strategic decision – making by a forensic toxicology laboratory in response to an emerging NPS: detection, quantitation, and interpretation of carfentanil in death investigations in Ontario, Canada, July 2017 to June 2018. Journal of Analytical Toxicology, (2021);doi:10.1093/jat/bkab079.
  315. SOUZA, G.L.S et al. O uso da espécie Brugmansia suaveolens (Solanaceae) como ornamental e na medicina popular. Scientia Naturalis, v.1, n.1, p.171-180, 2019.
  316. TACKETT, B. DMT Drug Abuse. American Addiction Centers Drug. Disponível em: <https://drugabuse.com/drugs/hallucinogens/dimethyltryptamine/>. Acesso em: Ago. 2021.
  317. TANG, M.H.Y. et al. Emergence of new psychoactive substance 2-fluorodeschloroketamine: toxicology and urinary analysis in a cluster of patients exposed to ketamine and multiple analogues. Forensic Science International, v.312, p. 110327, 2020.
  318. THE GUARDIAN. Police in Spain seize 860 kilos of black and odourless cocaine. 02/06/2021. Disponível em: <https://www.theguardian.com/world/2021/jun/02/police-in-spain-seize-860-kilos-of-black-and-odourless-cocaine>. Acesso: Ago. 2021.
  319. THEUNISSEN, E.L. et al. Psychotomimetic symptoms after a moderate dose of a synthetic cannabinoid (JWH-018): implications for psychosis. Psychopharmacology (2021);doi:10.1007/s00213-021-05768-0.
  320. UNODC. United Nations Office on Drugs and Crime. Guidelines for the forensic analysis of drugs facilitating sexual assault and other criminal acts.2011. Disponível em: <https://www.unodc.org/unodc/en/scientists/guidelines-for-the-forensic-analysis-of-drugs-facilitating-sexual-assault-and-other-criminal-acts_new.html> (acesso em 14/08/2021).
  321. UNODC. United Nations Office on Drugs and Crime. Terminology and Information on Drugs. 2016. Disponível em: <https://www.unodc.org/documents/scientific/Terminology_and_Information_on_Drugs-E_3rd_edition.pdf> (acesso em 04/11/2020).
  322. UNODC. United Nations Office on Drugs and Crime. World Drug Report 2021 – Booklet 1 – Executive summary / Policy implications. United Nations publication, Sales No. E.21.XI.8. 2021a. Disponível em: <https://www.unodc.org/unodc/en/data-and-analysis/wdr-2021_booklet-1.html> Acesso em: Jul. 2021.
  323. UNODC. United Nations Office on Drugs and Crime. World Drug Report 2021 – Booklet 3 – Drug market trends: Cannabis, Opioids. United Nations publication, Sales No. E.21.XI.8. 2021b. Disponível em: <https://www.unodc.org/unodc/en/data-and-analysis/wdr-2021_booklet-3.html>. Acesso em: Jul. 2021.
  324. UNODC. United Nations Office on Drugs and Crime. World Drug Report 2021 – Booklet 4 – Drug market trends: Cocaine, Amphetamine-Type Stimulants.United Nations publication, Sales No. E.21.XI.8. 2021c. Disponível em: <https://www.unodc.org/unodc/en/data-and-analysis/wdr-2021_booklet-4.html>. Acesso em: Jul. 2021.
  325. UNODC. United Nations Office on Drugs and Crime. World Drug Report. 2020a. Disponível em: <https://wdr.unodc.org/wdr2020/field/WDR20_BOOKLET_4.pdf> (acesso em 03/10/2020).
  326. UNODC. United Nations Office on Drugs and Crime. Current NPS Threats Volume III. 2020b. Disponível em: <https://www.unodc.org/documents/scientific/Current_NPS_Threats_Vol.3.pdf> (acesso em 28/10/2020).
  327. VANDEPUTTE, M.M. et al. Synthesis, chemical characterization, and u-opioid receptor activity assessment of the emerging group of “nitazene” 2-benzylbenzimidazole synthetic opioids. ACS Chemical Neuroscience, v.12, n.7, p. 1241-1251, 2021
  328. VOLGIN, A. D. et al. Acute behavioral effects of deliriant hallucinogens atropine and scopolamine in adult zebrafish. Behavioural Brain Research, v. 359, p. 274-280, 2019a.
  329. VOLGIN, A. D., et al. Understanding Central Nervous System Effects of Deliriant Hallucinogenic Drugs through Experimental Animal Models. ACS Chemical Neuroscience, v. 10, p. 143-154, 2019b.
  330. WAGMANN, L. et al. Can the intake of a synthetic tryptamine be detected only by blood plasma analysis? A clinical toxicology case involving 4-OH-Met. Journal of Analytical Toxicology (2021a);doi:10.1093/jat/bkab062.
  331. WAGMANN, L. et al. Recent trends in drugs of abuse metabolism studies for mass spectrometry-based analytical screening procedures. Analytical and Bioanalytical Chemistry (2021b);doi:10.1007/s00216-021-03311.
  332. WALLACH, J.; BRANDT, S.D. Phencyclidine-Based New Psychoactive Substances. Handbook of Experimental Pharmacology, v. 252, p. 261-303, 2018.
  333. WATERS, K. Pharmacologic Similarities and Differences Among Hallucinogens. The Journal of Clinical Pharmacology, v.202161, n.2, p.100-113, 2021.
  334. WENG, T. et al. Characteristics of analytically confirmed illicit substance-using patients in the Emergency Department. Journal of the Formosan Medical Association, v. 119, p. 1827-1834, 2020
  335. WHITMORE, C.A.; HOPFER, C. Youth club, prescription, and over-the-counter drug use. Em: KAMINER, Y. WINTERS, K.C. (editors) Clinical Manual of Youth Addictive Disorders. 1ª Edição. American Psychiatric Association Publishing, 2020. 632 p.
  336. WILLS, S. Drugs of abuse. Second edition. London: PhP, 2005.
  337. YUE, L. et al. Metabolism of 4F-MDMB-Bica in zebrafish by liquid chromatography-high resolution mass spectrometry. Drug Testing and Analysis, v. 13, n.6, p.1223-1229, 2021.
  338. Referências sugeridas como leitura complementar
  339. ALLARD, S. et al. Application of a molecular networking approach for clinical and forensic toxicology exemplified in three cases involving 3-MeO-PCP, doxylamine, and chlormequat. Drug Testing and Analysis, v.11, n.5, p.669-677, 2019.
  340. AUCKLOO, M.B.K.M. and DAVIES, B.B. Post-mortem toxicology in violent fatalities in Cape Town, South Africa: A preliminary investigation. Journal of Forensic and Legal Medicine, v. 63, p. 18-25, 2019.
  341. BERTOL, E. et al. Proactive drugs in DFSA cases: toxicological findings in an eight-years study. Forensic Science International, v. 291, p. 207-215, 2018.
  342. BRANDT, S.D.et al. Syntheses and analytical characterizations of novel (2-aminopropyl)benzo[b]thiophene (APBT) based stimulants. Drug Testing and Analysis, v. 12, n. 8, p. 1109-1125, 2020.
  343. CUNHA, K.F.Estudo da estabilidade de novas substâncias psicoativas (NPS) em amostras de sangue seco em papel (DBS), e sua aplicação em toxicologia forense. Dissertação: Universidade Estadual de Campinas, Faculdade de Ciências Médicas, 2018.
  344. CUNHA, K.F. and COSTA, J.L. Prevalence of new psychoactive substances (NPS) in Brazil based on oral fluid analysis of samples collected at electronic music festivals and parties. Drug and Alcohol Dependence, vol. 227, p. 108962, 2021.
  345. DAVIES, C. et al. Variability associated with interpreting drugs within forensic hair analysis: A three-stage interpretation. Journal of Applied Toxicology, vol. 40, n.7, p. 868-888, 2020.
  346. ENA, M.D.M.B. et al. Ambient ionization mass spectrometry applied to new psychoactive substance analysis. Mass Spectrometry Reviews, (2021);doi:10.1002/mas.21695.
  347. FABREGAT-SAFONT, D. et al. Direct and fast screening of new psychoactive substances using medical swabs and atmospheric solids analysis probe triple quadrupole with data-dependent acquisition. Journal of the American Society for Mass Spectrometry, vol. 31, p.1610-1614, 2020.
  348. GALLARDO, E. et al. Editorial: Current analytical trends in drug testing in clinical and forensic toxicology. Frontiers in Chemistry, v.9, p. 673397, 2021.
  349. GARCIA, M.G. et al. Drug-facilitated sexual assault and other crimes: A systematic review by countries. Journal of Forensic and Legal Medicine, v. 79, p.102151, 2021.
  350. GIANNANTONIO, M. et al. Prescription drug misuse in “clubbers” and disco goers in Ibiza. Frontiers in Psychiatry, v.11, p. 592594, 2020.
  351. GRAFINGER, K.E. et al. Systematic evaluation of a panel of 30 synthetic cannabinoid receptor agonists structurally related to MMB-4en-PICA, MDMB-4en-PINACA, ADB-4en-PINACA, and MMB-4CN-BUTINACA using a combination of binding and different CB1 receptor activation assays—Part II: Structure activity relationship assessment via a β-arrestin recruitment assay. Drug Testing and Analysis, v.13, n.7, p.1402-1411, 2021.
  352. HALTER, S. et al. Cumyl-CBMICA: A new SCRA containing a cyclobutyl methyl side chain. Drug Testing and Analysis, v.13, n.1, p. 208-216, 2021.
  353. JARSIAH, P. et al. GHB related acids are useful in routine casework of suspected GHB intoxication cases. Forensic Science International, v.324, p. 110833, 2021.
  354. LIN, H. and KUO, F. Determination of the R- and S-enantiomers of methylone and ethylone in seized drugs by enantioselective liquid chromatography tandem mass spectrometry analysis. Forensic Science International, v. 317, p. 110528, 2020.
  355. MARCHEI, E. et al. Ultra-high performance liquid chromatography-high resolution mass spectrometry and high-sensitivity gas chromatography-mass spectrometry screening of classic drugs and new psychoactive substances and metabolites in urine of consumers. International Journal of Molecular Sciences, v. 22, p. 4000, 2021.
  356. MESIHÄÄ, S. et al. Purity estimation of seized stimulant-type new psychoactive substances without reference standards by nitrogen chemiluminescence detection combined with GC-APCI-QTOFMS. Forensic Science International, v. 312, p.110304, 2020.
  357. MOHR, A.L.A. et al. Evaluating trends in novel psychoactive substances using a sentinel population of electronic dance music festival attendees. Journal of Analytical Toxicology, v. 45, n.5, 490–497, 2021.
  358. MUSILE, G. et al. A simple and robust method for broad range screening of hair samples for drugs of abuse using a high-throughput UHPLC-Ion Trap MS instrument. Journal of Chromatography B, v.1152, p.122263, 2020.
  359. PELLETIER, R. et al. New psychoactive substance cocktail in an intensive care intoxication case elucidated by molecular networking. Clinical toxicology, (2021);doi:10.1080/15563650.2021.1931693.
  360. PIKE, E. et al. Systematic evaluation of a panel of 30 synthetic cannabinoid receptor agonists structurally related to MMB-4en-Pica, MDMB-4en-Pinaca, ADB-4en-Pinaca, and MMB-4CN-Butinaca using a combination of binding and different CB1 receptor activation assays: part I – synthesis, analytical characterization, and binding affinity for human CB1 receptors. Drug Testing and Analysis, v.13, n.7, p.1383-1401, 2021.
  361. PREGO-MELEIRO, P. et al. Increasing awareness of the severity of female victimization by opportunistic drug-facilitated sexual assault: A new viewpoint. Forensic Science International, v. 315, p.110460, 2020.
  362. SIMONSEN, K.W. et al. Fatal poisoning in drug addicts in the Nordic countries in 2017. Forensic Science International, v.313, p.110343, 2020.
  363. SOFALVI, S. et al. Development and validation of an LC–MS-MS method for the detection of 40 benzodiazepines and three Z-drugs in blood and urine by solid-phase extraction. Journal of Analytical Toxicology, v. 44, n.7, p. 708-717, 2020.
  364. STEUER, A.E. et al. Comparative untargeted metabolomics analysis of the psychostimulants 3,4-methylenedioxyMethamphetamine (MDMA), amphetamine, and the novel psychoactive substance mephedrone after controlled drug administration to humans. Metabolites, v.10, p.10306, 2020.
  365. WILLE, S.M.R. et al.The interest of a systematic toxicological analysis combined with forensic advice to improve the judicial investigation and final judgment in drug facilitated sexual assault cases. Pharmaceuticals, v.14, p.432, 2021.
  366. ZHU, B. et al. Simultaneous determination of 10 new psychoactive piperazine derivatives in urine using ultrasound-assisted low-density solvent dispersive liquid-liquid microextraction combined with gas chromatography-tandem mass spectrometry. Journal of Forensic Sciences, v.66, n.2, p.748-757, 2021.

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