Literature DB >> 20188946

Recoveries of trace pseudoephedrine and methamphetamine residues from impermeable household surfaces: implications for sampling methods used during remediation of clandestine methamphetamine laboratories.

A F Lim Abdullah1, Gordon M Miskelly.   

Abstract

Evaluation of the risk posed by contaminants present during and after decontamination of clandestine methamphetamine laboratories requires a connection between the levels of contaminants measured and those actually present at the scene. The recoveries of pseudoephedrine and methamphetamine from glass, stainless steel, and a range of impermeable surfaces likely to be found in a clandestine laboratory were examined, using GC-MS of derivatized samples as the analytical method. When surfaces had been cleaned prior to drug deposition, wiping with water-dampened filter paper can recover 60-80% of pseudoephedrine immediately after deposition, and at least 50% of the pseudoephedrine still present on a surface after 2 days when deposited at a surface concentration of 2.5 microg/100 cm(2). Wiping with methanol-dampened filter paper could recover 60-90% of the methamphetamine immediately after deposition, and could recover at least 50-60% of the methamphetamine still present after 2 days when 0.6 microg/100 cm(2) was initially deposited on the surface. Recoveries were lower for surfaces that had not been pre-cleaned. Methamphetamine and pseudoephedrine showed significant volatility in both the free base and hydrochloride forms, with experiments in an enclosed format showing up to half the recovered drug being present on a glass plate held about 4mm above a substrate contaminated with one of the drugs at the above surface concentrations after 2 days. It is therefore important to remove any visible bulk contaminants and remove obvious pseudoephedrine or methamphetamine-contaminated surfaces prior to heating, ventilation or sealing of a clandestine laboratory to avoid redistribution of material around the site. A revised method for pseudoephedrine analysis was developed that could also detect the pseudoephedrine-formaldehyde adduct that can form from trace pseudoephedrine present at clandestine laboratories. (c) 2009 Elsevier B.V. All rights reserved.

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Year:  2009        PMID: 20188946     DOI: 10.1016/j.talanta.2009.12.025

Source DB:  PubMed          Journal:  Talanta        ISSN: 0039-9140            Impact factor:   6.057


  6 in total

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Review 4.  Household Contamination with Methamphetamine: Knowledge and Uncertainties.

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Journal:  Int J Environ Res Public Health       Date:  2019-11-23       Impact factor: 3.390

5.  Public health challenges facing Environmental Health Officers during COVID-19: methamphetamine contamination of properties.

Authors:  Emma J Kuhn; G Stewart Walker; Jackie Wright; Harriet Whiley; Kirstin E Ross
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6.  Electrochemical Sensor for Methamphetamine Detection Using Laser-Induced Porous Graphene Electrode.

Authors:  Kasrin Saisahas; Asamee Soleh; Sunita Somsiri; Patthamaporn Senglan; Kiattisak Promsuwan; Jenjira Saichanapan; Proespichaya Kanatharana; Panote Thavarungkul; Khai Lee; Kah Haw Chang; Ahmad Fahmi Lim Abdullah; Kunanunt Tayayuth; Warakorn Limbut
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  6 in total

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