Chemical Analysis of Gunpowder and Gunshot Residues

Author:

Serol Miguel1ORCID,Ahmad Samir Marcos12ORCID,Quintas Alexandre12ORCID,Família Carlos12ORCID

Affiliation:

1. Molecular Pathology and Forensic Biochemistry Laboratory, Centro de Investigação Interdisciplinar Egas Moniz (CiiEM), Instituto Universitário Egas Moniz (IUEM), Campus Universitário—Quinta da Granja, Monte da Caparica, 2829-511 Caparica, Portugal

2. Forensic and Psychological Sciences Laboratory Egas Moniz, Campus Universitário—Quinta da Granja, Monte da Caparica, 2829-511 Caparica, Portugal

Abstract

The identification of firearms is of paramount importance for investigating crimes involving firearms, as it establishes the link between a particular firearm and firearm-related elements found at a crime scene, such as projectiles and cartridge cases. This identification relies on the visual comparison of such elements against reference samples from suspect firearms or those existing in databases. Whenever this approach is not possible, the chemical analysis of the gunpowder and gunshot residue can provide additional information that may assist in establishing a link between samples retrieved at a crime scene and those from a suspect or in the identification of the corresponding model and manufacturer of the ammunition used. The most commonly used method for the chemical analysis of gunshot residue is scanning electron microscopy with energy dispersive X-ray, which focuses on the inorganic elements present in ammunition formulation, particularly heavy metals. However, a change in the legal paradigm is pushing changes in these formulations to remove heavy metals due to their potential for environmental contamination and the health hazards they represent. For this reason, the importance of the analysis of organic compounds is leading to the adoption of a different set of analytical methodologies, mostly based on spectroscopy and chromatography. This manuscript reviews the constitution of primer and gunpowder formulations and the analytical methods currently used for detecting, characterising, and identifying their compounds. In addition, this contribution also explores how the information provided by these methodologies can be used in ammunition identification and how it is driving the development of novel applications within forensic ballistics.

Funder

FCT—Foundation for Science and Technology

Publisher

MDPI AG

Subject

Chemistry (miscellaneous),Analytical Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Molecular Medicine,Drug Discovery,Pharmaceutical Science

Reference152 articles.

1. UNODC (2023, February 20). Global Firearms Programme. Available online: https://www.unodc.org/unodc/en/firearms-protocol/index.html.

2. Krüsselmann, K., Aarten, P., and Liem, M. (2021). Firearms and Violence in Europe—A Systematic Review. PLoS ONE, 16.

3. European Parliament, and Council of the European Union Directive (EU) (2021). 2021/555 of the European Parliament and of the Council of 24 March 2021 on Control of the Acquisition and Possession of Weapons (Codification), EU. L 115/1.

4. Institute for Health Metrics and Evaluation (IHME) (2022, April 06). GBD Results. Available online: https://vizhub.healthdata.org/gbd-results/.

5. Heard, B.J. (2008). Handbook of Firearms and Ballistics: Examining and Interpreting Forensic Evidence, John Wiley & Sons, Ltd.. [2nd ed.].

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