Literature DB >> 20715882

Rate constants for the thermal decomposition of ethanol and its bimolecular reactions with OH and D: reflected shock tube and theoretical studies.

R Sivaramakrishnan1, M-C Su, J V Michael, S J Klippenstein, L B Harding, B Ruscic.   

Abstract

The thermal decomposition of ethanol and its reactions with OH and D have been studied with both shock tube experiments and ab initio transition state theory-based master equation calculations. Dissociation rate constants for ethanol have been measured at high T in reflected shock waves using OH optical absorption and high-sensitivity H-atom ARAS detection. The three dissociation processes that are dominant at high T are C2H5OH--> C2H4+H2O (A) -->CH3+CH2OH (B) -->C2H5+OH (C).The rate coefficient for reaction C was measured directly with high sensitivity at 308 nm using a multipass optical White cell. Meanwhile, H-atom ARAS measurements yield the overall rate coefficient and that for the sum of reactions B and C , since H-atoms are instantaneously formed from the decompositions of CH(2)OH and C(2)H(5) into CH(2)O + H and C(2)H(4) + H, respectively. By difference, rate constants for reaction 1 could be obtained. One potential complication is the scavenging of OH by unreacted ethanol in the OH experiments, and therefore, rate constants for OH+C2H5OH-->products (D)were measured using tert-butyl hydroperoxide (tBH) as the thermal source for OH. The present experiments can be represented by the Arrhenius expression k=(2.5+/-0.43) x 10(-11) exp(-911+/-191 K/T) cm3 molecule(-1) s(-1) over the T range 857-1297 K. For completeness, we have also measured the rate coefficient for the reaction of D atoms with ethanol D+C2H5OH-->products (E) whose H analogue is another key reaction in the combustion of ethanol. Over the T range 1054-1359 K, the rate constants from the present experiments can be represented by the Arrhenius expression, k=(3.98+/-0.76) x10(-10) exp(-4494+/-235 K/T) cm3 molecule(-1) s(-1). The high-pressure rate coefficients for reactions B and C were studied with variable reaction coordinate transition state theory employing directly determined CASPT2/cc-pvdz interaction energies. Reactions A , D , and E were studied with conventional transition state theory employing QCISD(T)/CBS energies. For the saddle point in reaction A , additional high-level corrections are evaluated. The predicted reaction exo- and endothermicities are in good agreement with the current Active Thermochemical Tables values. The transition state theory predictions for the microcanonical rate coefficients in ethanol decomposition are incorporated in master equation calculations to yield predictions for the temperature and pressure dependences of reactions A - C . With modest adjustments (<1 kcal/mol) to a few key barrier heights, the present experimental and adjusted theoretical results yield a consistent description of both the decomposition (1-3) and abstraction kinetics (4 and 5). The present results are compared with earlier experimental and theoretical work.

Entities:  

Year:  2010        PMID: 20715882     DOI: 10.1021/jp104759d

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


  7 in total

1.  The effect of carbon-chain oxygenation in the carbon-carbon dissociation.

Authors:  Lisandra Paulino Dos Santos; Leonardo Baptista
Journal:  J Mol Model       Date:  2018-06-01       Impact factor: 1.810

2.  Thermal Decomposition Mechanism for Ethanethiol.

Authors:  AnGayle K Vasiliou; Daniel E Anderson; Thomas W Cowell; Jessica Kong; William F Melhado; Margaret D Phillips; Jared C Whitman
Journal:  J Phys Chem A       Date:  2017-06-23       Impact factor: 2.781

3.  Solvent-particles interactions during composite particles formation by pulsed laser melting of α-Fe2O3.

Authors:  M S Shakeri; O Polit; B Grabowska-Polanowska; A Pyatenko; K Suchanek; M Dulski; J Gurgul; Z Swiatkowska-Warkocka
Journal:  Sci Rep       Date:  2022-07-13       Impact factor: 4.996

4.  One-Step Reforming of CO2 and CH4 into High-Value Liquid Chemicals and Fuels at Room Temperature by Plasma-Driven Catalysis.

Authors:  Li Wang; Yanhui Yi; Chunfei Wu; Hongchen Guo; Xin Tu
Journal:  Angew Chem Int Ed Engl       Date:  2017-09-19       Impact factor: 15.336

5.  Laser wavelength modulated pulsed laser ablation for selective and efficient production of graphene quantum dots.

Authors:  Sukhyun Kang; Jeong Ho Ryu; Byoungsoo Lee; Kyung Hwan Jung; Kwang Bo Shim; Hyuksu Han; Kang Min Kim
Journal:  RSC Adv       Date:  2019-05-03       Impact factor: 3.361

6.  Gas phase kinetics of the OH + CH3CH2OH reaction at temperatures of the interstellar medium (T = 21-107 K).

Authors:  A J Ocaña; S Blázquez; B Ballesteros; A Canosa; M Antiñolo; J Albaladejo; E Jiménez
Journal:  Phys Chem Chem Phys       Date:  2018-02-21       Impact factor: 3.676

7.  EXPERIMENTAL AND MODELING STUDY OF PREMIXED LAMINAR FLAMES OF ETHANOL AND METHANE.

Authors:  Luc-Sy Tran; Pierre-Alexandre Glaude; René Fournet; Frédérique Battin-Leclerc
Journal:  Energy Fuels       Date:  2013-04-18       Impact factor: 3.605

  7 in total

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