Clumped isotope effects during OH and Cl oxidation of methane

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Standard

Clumped isotope effects during OH and Cl oxidation of methane. / Whitehill, Andrew R.; Joelsson, Lars Magnus T.; Schmidt, Johan Albrecht; Wang, David T.; Johnson, Matthew Stanley; Ono, Shuhei.

I: Geochimica et Cosmochimica Acta. Supplement, Bind 196, 2017, s. 307-325.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Whitehill, AR, Joelsson, LMT, Schmidt, JA, Wang, DT, Johnson, MS & Ono, S 2017, 'Clumped isotope effects during OH and Cl oxidation of methane', Geochimica et Cosmochimica Acta. Supplement, bind 196, s. 307-325. https://doi.org/10.1016/j.gca.2016.09.012

APA

Whitehill, A. R., Joelsson, L. M. T., Schmidt, J. A., Wang, D. T., Johnson, M. S., & Ono, S. (2017). Clumped isotope effects during OH and Cl oxidation of methane. Geochimica et Cosmochimica Acta. Supplement, 196, 307-325. https://doi.org/10.1016/j.gca.2016.09.012

Vancouver

Whitehill AR, Joelsson LMT, Schmidt JA, Wang DT, Johnson MS, Ono S. Clumped isotope effects during OH and Cl oxidation of methane. Geochimica et Cosmochimica Acta. Supplement. 2017;196:307-325. https://doi.org/10.1016/j.gca.2016.09.012

Author

Whitehill, Andrew R. ; Joelsson, Lars Magnus T. ; Schmidt, Johan Albrecht ; Wang, David T. ; Johnson, Matthew Stanley ; Ono, Shuhei. / Clumped isotope effects during OH and Cl oxidation of methane. I: Geochimica et Cosmochimica Acta. Supplement. 2017 ; Bind 196. s. 307-325.

Bibtex

@article{d0fdf48c41eb4095a3072849101fe947,
title = "Clumped isotope effects during OH and Cl oxidation of methane",
abstract = "A series of experiments were carried out to determine the clumped (13CH3D) methane kinetic isotope effects during oxidation of methane by OH and Cl radicals, the major sink reactions for atmospheric methane. Experiments were performed in a 100 L quartz photochemical reactor, in which OH was produced from the reaction of O(1D) (from O3 photolysis) with H2O, and Cl was from photolysis of Cl2. Samples were taken from the reaction cell and analyzed for methane (12CH4, 12CH3D, 13CH4, 13CH3D) isotopologue ratios using tunable infrared laser direct absorption spectroscopy. Measured kinetic isotope effects for singly substituted species were consistent with previous experimental studies. For doubly substituted methane, 13CH3D, the observed kinetic isotope effects closely follow the product of the kinetic isotope effects for the 13C and deuterium substituted species (i.e., 13,2KIE = 13KIE × 2KIE). The deviation from this relationship is 0.3‰ ± 1.2‰ and 3.5‰ ± 0.7‰ for OH and Cl oxidation, respectively. This is consistent with model calculations performed using quantum chemistry and transition state theory. The OH and Cl reactions enrich the residual methane in the clumped isotopologue in open system reactions. In a closed system, however, this effect is overtaken by the large D/H isotope effect, which causes the residual methane to become anti-clumped relative to the initial methane. Based on these results, we demonstrate that oxidation of methane by OH, the predominant oxidant for tropospheric methane, will only have a minor (∼0.3‰) impact on the clumped isotope signature (Δ13CH3D, measured as a deviation from a stochastic distribution of isotopes) of tropospheric methane. This paper shows that Δ13CH3D will provide constraints on methane source strengths, and predicts that Δ12CH2D2 can provide information on methane sink strengths",
keywords = "Clumped isotopes, Kinetic isotope effect, Methane",
author = "Whitehill, {Andrew R.} and Joelsson, {Lars Magnus T.} and Schmidt, {Johan Albrecht} and Wang, {David T.} and Johnson, {Matthew Stanley} and Shuhei Ono",
year = "2017",
doi = "10.1016/j.gca.2016.09.012",
language = "English",
volume = "196",
pages = "307--325",
journal = "Geochimica et Cosmochimica Acta. Supplement",
issn = "0046-564X",
publisher = "Pergamon Press",

}

RIS

TY - JOUR

T1 - Clumped isotope effects during OH and Cl oxidation of methane

AU - Whitehill, Andrew R.

AU - Joelsson, Lars Magnus T.

AU - Schmidt, Johan Albrecht

AU - Wang, David T.

AU - Johnson, Matthew Stanley

AU - Ono, Shuhei

PY - 2017

Y1 - 2017

N2 - A series of experiments were carried out to determine the clumped (13CH3D) methane kinetic isotope effects during oxidation of methane by OH and Cl radicals, the major sink reactions for atmospheric methane. Experiments were performed in a 100 L quartz photochemical reactor, in which OH was produced from the reaction of O(1D) (from O3 photolysis) with H2O, and Cl was from photolysis of Cl2. Samples were taken from the reaction cell and analyzed for methane (12CH4, 12CH3D, 13CH4, 13CH3D) isotopologue ratios using tunable infrared laser direct absorption spectroscopy. Measured kinetic isotope effects for singly substituted species were consistent with previous experimental studies. For doubly substituted methane, 13CH3D, the observed kinetic isotope effects closely follow the product of the kinetic isotope effects for the 13C and deuterium substituted species (i.e., 13,2KIE = 13KIE × 2KIE). The deviation from this relationship is 0.3‰ ± 1.2‰ and 3.5‰ ± 0.7‰ for OH and Cl oxidation, respectively. This is consistent with model calculations performed using quantum chemistry and transition state theory. The OH and Cl reactions enrich the residual methane in the clumped isotopologue in open system reactions. In a closed system, however, this effect is overtaken by the large D/H isotope effect, which causes the residual methane to become anti-clumped relative to the initial methane. Based on these results, we demonstrate that oxidation of methane by OH, the predominant oxidant for tropospheric methane, will only have a minor (∼0.3‰) impact on the clumped isotope signature (Δ13CH3D, measured as a deviation from a stochastic distribution of isotopes) of tropospheric methane. This paper shows that Δ13CH3D will provide constraints on methane source strengths, and predicts that Δ12CH2D2 can provide information on methane sink strengths

AB - A series of experiments were carried out to determine the clumped (13CH3D) methane kinetic isotope effects during oxidation of methane by OH and Cl radicals, the major sink reactions for atmospheric methane. Experiments were performed in a 100 L quartz photochemical reactor, in which OH was produced from the reaction of O(1D) (from O3 photolysis) with H2O, and Cl was from photolysis of Cl2. Samples were taken from the reaction cell and analyzed for methane (12CH4, 12CH3D, 13CH4, 13CH3D) isotopologue ratios using tunable infrared laser direct absorption spectroscopy. Measured kinetic isotope effects for singly substituted species were consistent with previous experimental studies. For doubly substituted methane, 13CH3D, the observed kinetic isotope effects closely follow the product of the kinetic isotope effects for the 13C and deuterium substituted species (i.e., 13,2KIE = 13KIE × 2KIE). The deviation from this relationship is 0.3‰ ± 1.2‰ and 3.5‰ ± 0.7‰ for OH and Cl oxidation, respectively. This is consistent with model calculations performed using quantum chemistry and transition state theory. The OH and Cl reactions enrich the residual methane in the clumped isotopologue in open system reactions. In a closed system, however, this effect is overtaken by the large D/H isotope effect, which causes the residual methane to become anti-clumped relative to the initial methane. Based on these results, we demonstrate that oxidation of methane by OH, the predominant oxidant for tropospheric methane, will only have a minor (∼0.3‰) impact on the clumped isotope signature (Δ13CH3D, measured as a deviation from a stochastic distribution of isotopes) of tropospheric methane. This paper shows that Δ13CH3D will provide constraints on methane source strengths, and predicts that Δ12CH2D2 can provide information on methane sink strengths

KW - Clumped isotopes

KW - Kinetic isotope effect

KW - Methane

U2 - 10.1016/j.gca.2016.09.012

DO - 10.1016/j.gca.2016.09.012

M3 - Journal article

VL - 196

SP - 307

EP - 325

JO - Geochimica et Cosmochimica Acta. Supplement

JF - Geochimica et Cosmochimica Acta. Supplement

SN - 0046-564X

ER -

ID: 176368445