Literature DB >> 16671686

Mechanisms of glycerol dehydration.

Mark R Nimlos1, Stephen J Blanksby, Xianghong Qian, Michael E Himmel, David K Johnson.   

Abstract

Dehydration of neutral and protonated glycerol was investigated using quantum mechanical calculations (CBS-QB3). Calculations on neutral glycerol show that there is a high barrier for simple 1,2-dehydration, E(a)=70.9 kcal mol(-1), which is lowered to 65.2 kcal mol(-1) for pericyclic 1,3-dehydration. In contrast, the barriers for dehydration of protonated glycerol are much lower. Dehydration mechanisms involving hydride transfer, pinacol rearrangement, or substitution reactions have barriers between 20 and 25 kcal mol(-1). Loss of water from glycerol via substitution results in either oxirane or oxetane intermediates, which can inter-convert over a low barrier. Subsequent decomposition of these intermediates proceeds via either a second dehydration step or loss of formaldehyde. The computed mechanisms for decomposition of protonated glycerol are supported by the gas-phase fragmentation of protonated glycerol observed using a triple--quadrupole mass spectrometer.

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Year:  2006        PMID: 16671686     DOI: 10.1021/jp060597q

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  13 in total

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2.  Levels of selected carcinogens and toxicants in vapour from electronic cigarettes.

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3.  Hydroxymethylfurfural as an Intermediate of Cellulose Carbonization.

Authors:  Takashi Nomura; Eiji Minami; Haruo Kawamoto
Journal:  ChemistryOpen       Date:  2021-05-01       Impact factor: 2.630

Review 4.  Renewable chemicals: dehydroxylation of glycerol and polyols.

Authors:  Jeroen ten Dam; Ulf Hanefeld
Journal:  ChemSusChem       Date:  2011-08-22       Impact factor: 8.928

5.  A Device-Independent Evaluation of Carbonyl Emissions from Heated Electronic Cigarette Solvents.

Authors:  Ping Wang; Wenhao Chen; Jiawen Liao; Toshiki Matsuo; Kazuhide Ito; Jeff Fowles; Dennis Shusterman; Mark Mendell; Kazukiyo Kumagai
Journal:  PLoS One       Date:  2017-01-11       Impact factor: 3.240

6.  Solvent Chemistry in the Electronic Cigarette Reaction Vessel.

Authors:  R Paul Jensen; Robert M Strongin; David H Peyton
Journal:  Sci Rep       Date:  2017-02-14       Impact factor: 4.379

7.  Initial pyrolysis mechanism and product formation of cellulose: An Experimental and Density functional theory(DFT) study.

Authors:  Qing Wang; Hao Song; Shuo Pan; Nanhang Dong; Xinmin Wang; Shipeng Sun
Journal:  Sci Rep       Date:  2020-02-27       Impact factor: 4.379

8.  Formaldehyde Vapor Concentration in Electronic Cigarettes and Health Complaints of Electronic Cigarettes Smokers in Indonesia.

Authors:  Kusuma S Lestari; Mika Vernicia Humairo; Ukik Agustina
Journal:  J Environ Public Health       Date:  2018-07-11

9.  Triacetin Enhances Levels of Acrolein, Formaldehyde Hemiacetals, and Acetaldehyde in Electronic Cigarette Aerosols.

Authors:  Shawna Vreeke; David H Peyton; Robert M Strongin
Journal:  ACS Omega       Date:  2018-07-02

10.  Impact of Vaping Regimens on Electronic Cigarette Efficiency.

Authors:  Sébastien Soulet; Marie Duquesne; Jean Toutain; Charly Pairaud; Maud Mercury
Journal:  Int J Environ Res Public Health       Date:  2019-11-27       Impact factor: 3.390

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