Literature DB >> 24895840

Measurement of a doubly substituted methane isotopologue, ¹³CH₃D, by tunable infrared laser direct absorption spectroscopy.

Shuhei Ono1, David T Wang, Danielle S Gruen, Barbara Sherwood Lollar, Mark S Zahniser, Barry J McManus, David D Nelson.   

Abstract

Methane is an important energy resource and significant long-lived greenhouse gas. Carbon and hydrogen isotope ratios have been used to better constrain the sources of methane but interpretations based on these two parameters alone can often be inconclusive. The precise measurement of a doubly substituted methane isotopologue, (13)CH3D, is expected to add a critical new dimension to source signatures by providing the apparent temperature at which methane was formed or thermally equilibrated. We have developed a new method to precisely determine the relative abundance of (13)CH3D by using tunable infrared laser direct absorption spectroscopy (TILDAS). The TILDAS instrument houses two continuous wave quantum cascade lasers; one tuned at 8.6 μm to measure (13)CH3D, (12)CH3D, and (12)CH4, and the other at 7.5 μm to measure (13)CH4. With the use of an astigmatic Herriott cell with an effective path length of 76 m, a precision of 0.2‰ (2σ) was achieved for the measurement of (13)CH3D abundance in ca. 10 mL STP (i.e., 0.42 mmol) pure methane samples. Smaller quantity samples (ca. 0.5 mL STP) can be measured at lower precision. The accuracy of the Δ(13)CH3D measurement is 0.7‰ (2σ), evaluated by thermally equilibrating methane with a range of δD values. The precision of ±0.2‰ corresponds to uncertainties of ±7 °C at 25 °C and ±20 °C at 200 °C for estimates of apparent equilibrium temperatures. The TILDAS instrument offers a simple and precise method to determine (13)CH3D in natural methane samples to distinguish geological and biological sources of methane in the atmosphere, hydrosphere, and lithosphere.

Entities:  

Year:  2014        PMID: 24895840     DOI: 10.1021/ac5010579

Source DB:  PubMed          Journal:  Anal Chem        ISSN: 0003-2700            Impact factor:   6.986


  5 in total

1.  High-Precision Simultaneous 18O/16O, 13C/12C, and 17O/16O Analyses for Microgram Quantities of CaCO3 by Tunable Infrared Laser Absorption Spectroscopy.

Authors:  Saburo Sakai; Shinichi Matsuda; Toshihide Hikida; Akio Shimono; J Barry McManus; Mark Zahniser; David Nelson; David L Dettman; Danzhou Yang; Naohiko Ohkouchi
Journal:  Anal Chem       Date:  2017-10-18       Impact factor: 6.986

2.  Statistical clumped isotope signatures.

Authors:  T Röckmann; M E Popa; M C Krol; M E G Hofmann
Journal:  Sci Rep       Date:  2016-08-18       Impact factor: 4.379

3.  A Robust Distributed Multipoint Fiber Optic Gas Sensor System Based on AGC Amplifier Structure.

Authors:  Cunguang Zhu; Rende Wang; Xuechen Tao; Guangwei Wang; Pengpeng Wang
Journal:  Sensors (Basel)       Date:  2016-07-28       Impact factor: 3.576

4.  Deep-biosphere methane production stimulated by geofluids in the Nankai accretionary complex.

Authors:  Akira Ijiri; Fumio Inagaki; Yusuke Kubo; Rishi R Adhikari; Shohei Hattori; Tatsuhiko Hoshino; Hiroyuki Imachi; Shinsuke Kawagucci; Yuki Morono; Yoko Ohtomo; Shuhei Ono; Sanae Sakai; Ken Takai; Tomohiro Toki; David T Wang; Marcos Y Yoshinaga; Gail L Arnold; Juichiro Ashi; David H Case; Tomas Feseker; Kai-Uwe Hinrichs; Yojiro Ikegawa; Minoru Ikehara; Jens Kallmeyer; Hidenori Kumagai; Mark A Lever; Sumito Morita; Ko-Ichi Nakamura; Yuki Nakamura; Manabu Nishizawa; Victoria J Orphan; Hans Røy; Frauke Schmidt; Atsushi Tani; Wataru Tanikawa; Takeshi Terada; Hitoshi Tomaru; Takeshi Tsuji; Urumu Tsunogai; Yasuhiko T Yamaguchi; Naohiro Yoshida
Journal:  Sci Adv       Date:  2018-06-13       Impact factor: 14.136

5.  Optical clumped isotope thermometry of carbon dioxide.

Authors:  Ivan Prokhorov; Tobias Kluge; Christof Janssen
Journal:  Sci Rep       Date:  2019-03-18       Impact factor: 4.379

  5 in total

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