Literature DB >> 22146013

Atmospheric chemistry of isoflurane, desflurane, and sevoflurane: kinetics and mechanisms of reactions with chlorine atoms and OH radicals and global warming potentials.

Mads P Sulbaek Andersen1, Ole J Nielsen, Boris Karpichev, Timothy J Wallington, Stanley P Sander.   

Abstract

The smog chamber/Fourier-transform infrared spectroscopy (FTIR) technique was used to measure the rate coefficients k(Cl + CF(3)CHClOCHF(2), isoflurane) = (4.5 ± 0.8) × 10(-15), k(Cl + CF(3)CHFOCHF(2), desflurane) = (1.0 ± 0.3) × 10(-15), k(Cl + (CF(3))(2)CHOCH(2)F, sevoflurane) = (1.1 ± 0.1) × 10(-13), and k(OH + (CF(3))(2)CHOCH(2)F) = (3.5 ± 0.7) × 10(-14) cm(3) molecule(-1) in 700 Torr of N(2)/air diluent at 295 ± 2 K. An upper limit of 6 × 10(-17) cm(3) molecule(-1) was established for k(Cl + (CF(3))(2)CHOC(O)F). The laser photolysis/laser-induced fluorescence (LP/LIF) technique was employed to determine hydroxyl radical rate coefficients as a function of temperature (241-298 K): k(OH + CF(3)CHFOCHF(2)) = (7.05 ± 1.80) × 10(-13) exp[-(1551 ± 72)/T] cm(3) molecule(-1); k(296 ± 1 K) = (3.73 ± 0.08) × 10(-15) cm(3) molecule(-1), and k(OH + (CF(3))(2)CHOCH(2)F) = (9.98 ± 3.24) × 10(-13) exp[-(969 ± 82)/T] cm(3) molecule(-1); k(298 ± 1 K) = (3.94 ± 0.30) × 10(-14) cm(3) molecule(-1). The rate coefficient of k(OH + CF(3)CHClOCHF(2), 296 ± 1 K) = (1.45 ± 0.16) × 10(-14) cm(3) molecule(-1) was also determined. Chlorine atoms react with CF(3)CHFOCHF(2) via H-abstraction to give CF(3)CFOCHF(2) and CF(3)CHFOCF(2) radicals in yields of approximately 83% and 17%. The major atmospheric fate of the CF(3)C(O)FOCHF(2) alkoxy radical is decomposition via elimination of CF(3) to give FC(O)OCHF(2) and is unaffected by the method used to generate the CF(3)C(O)FOCHF(2) radicals. CF(3)CHFOCF(2) radicals add O(2) and are converted by subsequent reactions into CF(3)CHFOCF(2)O alkoxy radicals, which decompose to give COF(2) and CF(3)CHFO radicals. In 700 Torr of air 82% of CF(3)CHFO radicals undergo C-C scission to yield HC(O)F and CF(3) radicals with the remaining 18% reacting with O(2) to give CF(3)C(O)F. Atmospheric oxidation of (CF(3))(2)CHOCH(2)F gives (CF(3))(2)CHOC(O)F in a molar yield of 93 ± 6% with CF(3)C(O)CF(3) and HCOF as minor products. The IR spectra of (CF(3))(2)CHOC(O)F and FC(O)OCHF(2) are reported for the first time. The atmospheric lifetimes of CF(3)CHClOCHF(2), CF(3)CHFOCHF(2), and (CF(3))(2)CHOCH(2)F (sevoflurane) are estimated at 3.2, 14, and 1.1 years, respectively. The 100 year time horizon global warming potentials of isoflurane, desflurane, and sevoflurane are 510, 2540, and 130, respectively. The atmospheric degradation products of these anesthetics are not of environmental concern.

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Year:  2011        PMID: 22146013     DOI: 10.1021/jp2077598

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


  9 in total

1.  Theoretical investigation on the kinetics and branching ratio of the gas phase reaction of sevoflurane with Cl atom.

Authors:  Hari Ji Singh; Nand Kishor Gour; Pradeep Kumar Rao; Laxmi Tiwari
Journal:  J Mol Model       Date:  2013-11       Impact factor: 1.810

2.  Increases in Trifluoroacetate Concentrations in Surface Waters over Two Decades.

Authors:  Thomas M Cahill
Journal:  Environ Sci Technol       Date:  2022-06-23       Impact factor: 11.357

3.  Reduction of greenhouse gases emission through the use of tiletamine and zolazepam.

Authors:  Sonia Lachowska; Agnieszka Antończyk; Joanna Tunikowska; Martyna Godniak; Zdzisław Kiełbowicz
Journal:  Sci Rep       Date:  2022-06-09       Impact factor: 4.996

4.  Theoretical studies of the interaction between enflurane and water.

Authors:  Wiktor Zierkiewicz; Danuta Michalska; Thérèse Zeegers-Huyskens
Journal:  J Mol Model       Date:  2012-12-05       Impact factor: 1.810

5.  Theoretical insight into OH- and Cl-initiated oxidation of CF3OCH(CF3)2 and CF3OCF2CF2H &fate of CF3OC(X•)(CF3)2 and CF3OCF2CF2X• radicals (X=O, O2).

Authors:  Feng-Yang Bai; Yuan Ma; Shuang Lv; Xiu-Mei Pan; Xiu-Juan Jia
Journal:  Sci Rep       Date:  2017-01-09       Impact factor: 4.379

6.  Health care's response to climate change: a carbon footprint assessment of the NHS in England.

Authors:  Imogen Tennison; Sonia Roschnik; Ben Ashby; Richard Boyd; Ian Hamilton; Tadj Oreszczyn; Anne Owen; Marina Romanello; Paul Ruyssevelt; Jodi D Sherman; Andrew Z P Smith; Kristian Steele; Nicholas Watts; Matthew J Eckelman
Journal:  Lancet Planet Health       Date:  2021-02

7.  Atmospheric pollution in cardiac operating rooms.

Authors:  Mukul Chandra Kapoor
Journal:  Ann Card Anaesth       Date:  2017 Oct-Dec

Review 8.  Environmental sustainability in anaesthesia and critical care.

Authors:  Forbes McGain; Jane Muret; Cathy Lawson; Jodi D Sherman
Journal:  Br J Anaesth       Date:  2020-08-12       Impact factor: 9.166

9.  Modern Anesthetic Ethers Demonstrate Quantum Interactions with Entangled Photons.

Authors:  Ryan K Burdick; Juan P Villabona-Monsalve; George A Mashour; Theodore Goodson
Journal:  Sci Rep       Date:  2019-08-05       Impact factor: 4.379

  9 in total

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