Determination of dissolved methane in natural waters using headspace analysis with cavity ring-down spectroscopy

被引:21
|
作者
Roberts, Hannah M. [1 ]
Shiller, Alan M. [1 ]
机构
[1] Univ So Mississippi, Dept Marine Sci, Stennis Space Ctr, MS 39529 USA
关键词
Methane; Cavity ringdown spectroscopy; Deepwater Horizon; Orca Basin; Gulf of Mexico; Headspace equilibration; ABSORPTION; SEA;
D O I
10.1016/j.aca.2014.10.058
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Methane (CH4) is the third most abundant greenhouse gas (GHG) but is vastly understudied in comparison to carbon dioxide. Sources and sinks to the atmosphere vary considerably in estimation, including sources such as fresh and marine water systems. A new method to determine dissolved methane concentrations in discrete water samples has been evaluated. By analyzing an equilibrated headspace using laser cavity ring-down spectroscopy (CRDS), low nanomolar dissolved methane concentrations can be determined with high reproducibility (i.e., 0.13 nM detection limit and typical 4% RSD). While CRDS instruments cost roughly twice that of gas chromatographs (GC) usually used for methane determination, the process presented herein is substantially simpler, faster, and requires fewer materials than GC methods. Typically, 70-mL water samples are equilibrated with an equivalent amount of zero air in plastic syringes. The equilibrated headspace is transferred to a clean, dry syringe and then drawn into a Picarro G2301 CRDS analyzer via the instrument's pump. We demonstrate that this instrument holds a linear calibration into the sub-ppmv methane concentration range and holds a stable calibration for at least two years. Application of the method to shipboard dissolved methane determination in the northern Gulf of Mexico as well as river water is shown. Concentrations spanning nearly six orders of magnitude have been determined with this method. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:68 / 73
页数:6
相关论文
共 50 条
  • [21] Cavity ring-down spectroscopy of the benzyl radical
    Tonokura, K
    Koshi, M
    JOURNAL OF PHYSICAL CHEMISTRY A, 2003, 107 (22): : 4457 - 4461
  • [22] The superposition principle and cavity ring-down spectroscopy
    Lehmann, KK
    Romanini, D
    JOURNAL OF CHEMICAL PHYSICS, 1996, 105 (23): : 10263 - 10277
  • [23] Towards Supercontinuum Cavity Ring-Down Spectroscopy
    Stelmaszczyk, K.
    Fechner, M.
    Rohwetter, P.
    Queisser, M.
    Czyzewski, A.
    Stacewicz, T.
    Woeste, L.
    APPLIED PHYSICS B-LASERS AND OPTICS, 2009, 94 (03): : 369 - 373
  • [24] Cavity ring-down spectroscopy with diode array
    Nikolaev, Igor V.
    Ochkin, Vladimir N.
    Spiridonov, Maxim V.
    Tskhai, Sergei N.
    15TH SYMPOSIUM ON HIGH-RESOLUTION MOLECULAR SPECTROSCOPY, 2006, 6580
  • [25] Measuring pressure with cavity ring-down spectroscopy
    van Zee, RD
    Looney, JP
    Hodges, JT
    ADVANCED SENSORS AND MONITORS FOR PROCESS INDUSTRIES AND THE ENVIRONMENT, 1999, 3535 : 46 - 56
  • [26] Cavity-locked ring-down spectroscopy
    Paldus, BA
    Harb, CC
    Spence, TG
    Wilke, B
    Xie, J
    Harris, JS
    Zare, RN
    JOURNAL OF APPLIED PHYSICS, 1998, 83 (08) : 3991 - 3997
  • [27] Comparison of photoacoustic spectroscopy and cavity ring-down spectroscopy for ambient methane monitoring at Hohenpeißenberg
    Mueller, Max
    Weigl, Stefan
    Mueller-Williams, Jennifer
    Lindauer, Matthias
    Rueck, Thomas
    Jobst, Simon
    Bierl, Rudolf
    Matysik, Frank-Michael
    ATMOSPHERIC MEASUREMENT TECHNIQUES, 2023, 16 (18) : 4263 - 4270
  • [28] Aligning an optical cavity: with reference to cavity ring-down spectroscopy
    Telfah, Hamzeh
    Paul, Anam C.
    Liu, Jinjun
    APPLIED OPTICS, 2020, 59 (30) : 9464 - 9468
  • [30] Trace gas analysis by diode laser cavity ring-down spectroscopy
    Yan, WB
    LEOS 2001: 14TH ANNUAL MEETING OF THE IEEE LASERS & ELECTRO-OPTICS SOCIETY, VOLS 1 AND 2, PROCEEDINGS, 2001, : 873 - 874