MIT Libraries logoDSpace@MIT

MIT
View Item 
  • DSpace@MIT Home
  • MIT Open Access Articles
  • MIT Open Access Articles
  • View Item
  • DSpace@MIT Home
  • MIT Open Access Articles
  • MIT Open Access Articles
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.

Measurement of a Doubly Substituted Methane Isotopologue, [superscript 13]CH[subscript 3]D, by Tunable Infrared Laser Direct Absorption Spectroscopy

Author(s)
Ono, Shuhei; Wang, David T.; Sherwood Lollar, Barbara; Zahniser, Mark S.; McManus, Barry J.; Nelson, David D.; Gruen, Danielle Sarah; ... Show more Show less
Thumbnail
DownloadOno - Measurement of a Doubly Substituted Methane Isotopologue... (2.681Mb)
PUBLISHER_POLICY

Publisher Policy

Article is made available in accordance with the publisher's policy and may be subject to US copyright law. Please refer to the publisher's site for terms of use.

Terms of use
Article is made available in accordance with the publisher's policy and may be subject to US copyright law. Please refer to the publisher's site for terms of use.
Metadata
Show full item record
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, [superscript 13]CH[subscript 3]D, 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 [superscript 13]CH[subscript 3]D 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 [superscript 13]CH[subscript 3]D, [superscript 12]CH[subscript 3]D, and [superscript 12]CH[subscript 4], and the other at 7.5 μm to measure [superscript 13]CH[subscript 4]. 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 [superscript 13]CH[subscript 3]D 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[superscript 13]CH[subscript 3]D 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 [superscript 13]CH[subscript 3]D in natural methane samples to distinguish geological and biological sources of methane in the atmosphere, hydrosphere, and lithosphere.
Date issued
2014-06
URI
http://hdl.handle.net/1721.1/98875
Department
Massachusetts Institute of Technology. Department of Earth, Atmospheric, and Planetary Sciences
Journal
Analytical Chemistry
Publisher
American Chemical Society (ACS)
Citation
Ono, Shuhei, David T. Wang, Danielle S. Gruen, Barbara Sherwood Lollar, Mark S. Zahniser, Barry J. McManus, and David D. Nelson. “Measurement of a Doubly Substituted Methane Isotopologue, [superscript 13]CH[subscript 3]D, by Tunable Infrared Laser Direct Absorption Spectroscopy.” Anal. Chem. 86, no. 13 (July 2014): 6487–6494.
Version: Author's final manuscript
ISSN
0003-2700
1520-6882

Collections
  • MIT Open Access Articles

Browse

All of DSpaceCommunities & CollectionsBy Issue DateAuthorsTitlesSubjectsThis CollectionBy Issue DateAuthorsTitlesSubjects

My Account

Login

Statistics

OA StatisticsStatistics by CountryStatistics by Department
MIT Libraries
PrivacyPermissionsAccessibilityContact us
MIT
Content created by the MIT Libraries, CC BY-NC unless otherwise noted. Notify us about copyright concerns.