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Solvent Chemistry in the Electronic Cigarette Reaction Vessel

Overview
Journal Sci Rep
Specialty Science
Date 2017 Feb 15
PMID 28195231
Citations 97
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Abstract

Knowledge of the mechanism of formation, levels and toxicological profiles of the chemical products in the aerosols (i.e., vapor plus particulate phases) of e-cigarettes is needed in order to better inform basic research as well as the general public, regulators, and industry. To date, studies of e-cigarette emissions have mainly focused on chromatographic techniques for quantifying and comparing the levels of selected e-cigarette aerosol components to those found in traditional cigarettes. E-cigarettes heat and aerosolize the solvents propylene glycol (PG) and glycerol (GLY), thereby affording unique product profiles as compared to traditional cigarettes. The chemical literature strongly suggests that there should be more compounds produced by PG and GLY than have been reported in e-cigarette aerosols to date. Herein we report an extensive investigation of the products derived from vaporizing PG and GLY under mild, single puff conditions. This has led to the discovery of several new compounds produced under vaping conditions. Prior reports on e-cigarette toxin production have emphasized temperature as the primary variable in solvent degradation. In the current study, the molecular pathways leading to enhanced PG/GLY reactivity are described, along with the most impactful chemical conditions promoting byproduct production.

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References
1.
Tuma C, Laino T, Martin E, Stolz S, Curioni A . Modeling the impact of solid surfaces in thermal degradation processes. Chemphyschem. 2012; 14(1):88-91. DOI: 10.1002/cphc.201200921. View

2.
Orellana-Barrios M, Payne D, Mulkey Z, Nugent K . Electronic Cigarettes—A Narrative Review for Clinicians. Am J Med. 2015; 128(7):674-81. DOI: 10.1016/j.amjmed.2015.01.033. View

3.
Goniewicz M, Knysak J, Gawron M, Kosmider L, Sobczak A, Kurek J . Levels of selected carcinogens and toxicants in vapour from electronic cigarettes. Tob Control. 2013; 23(2):133-9. PMC: 4154473. DOI: 10.1136/tobaccocontrol-2012-050859. View

4.
El Ramy R, Ould Elhkim M, Lezmi S, Poul J . Evaluation of the genotoxic potential of 3-monochloropropane-1,2-diol (3-MCPD) and its metabolites, glycidol and beta-chlorolactic acid, using the single cell gel/comet assay. Food Chem Toxicol. 2006; 45(1):41-8. DOI: 10.1016/j.fct.2006.07.014. View

5.
Geiss O, Bianchi I, Barrero-Moreno J . Correlation of volatile carbonyl yields emitted by e-cigarettes with the temperature of the heating coil and the perceived sensorial quality of the generated vapours. Int J Hyg Environ Health. 2016; 219(3):268-77. DOI: 10.1016/j.ijheh.2016.01.004. View