甲烷
生物地球化学循环
甲烷厌氧氧化
自行车
冷泉
环境科学
原位
碳循环
焊剂(冶金)
环境化学
深海
稳定同位素比值
化学
生态系统
地质学
海洋学
生态学
历史
生物
物理
量子力学
考古
有机化学
作者
Scott D. Wankel,Y. Huang,Manish Gupta,R. A. Provençal,J. B. Leen,Andrew Fahrland,Charles Vidoudez,Peter R. Girguis
摘要
The capacity to make in situ geo-referenced measurements of methane concentration and stable isotopic composition (δ(13)C(CH4)) would greatly improve our understanding of the distribution and type of methane sources in the environment, allow refined determination of the extent to which microbial production and consumption contributes to methane cycling, and enable the testing of hypotheses about the sensitivity of methane cycling to changes in environmental conditions. In particular, characterizing biogeochemical methane cycling dynamics in the deep ocean is hampered by a number of challenges, especially in environments where high methane concentrations preclude intact recovery of undisturbed samples. To that end, we have developed an in situ analyzer capable of δ(13)C(CH4) measurements in the deep ocean. Here we present data from laboratory and field studies in which we characterize the instrument's analytical capabilities and performance and provide the first in situ stable isotope based characterization of the influence of anaerobic methane oxidation on methane flux from seep sediments. These data illustrate how in situ measurements can permit finer-scale analyses of variations in AOM activity, and facilitate advances in using δ(13)C(CH4) and other isotopic systems to interrogate biogeochemical cycles in the deep sea and other remote or challenging environments.
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