The biogeochemistry of marine dimethylsulfide

被引:0
|
作者
Frances E. Hopkins
Stephen D. Archer
Thomas G. Bell
Parvadha Suntharalingam
Jonathan D. Todd
机构
[1] Plymouth Marine Laboratory,School of Environmental Sciences
[2] Bigelow Laboratory for Ocean Sciences,School of Biological Sciences
[3] University of East Anglia,undefined
[4] University of East Anglia,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The marine trace gas dimethylsulfide (DMS) supplies sulfur to the atmosphere at a rate of 15–40 Tg S per year, contributing to the production of atmospheric sulfate aerosols that influence cloud radiative properties and thereby climate. The resulting climate cooling effect of DMS is an estimated −1.7 to −2.3 W m−2, which is similar in magnitude to the warming effect of anthropogenic CO2 emissions (1.83 ± 0.2 W m−2). In this Review, we describe the production and cycling of marine DMS and its fate in the atmosphere. Advances in molecular genetics and large-scale biogeochemical measurements have revealed the global prevalence of DMS-related processes, including in previously overlooked environments and organisms, such as sediment-dwelling bacteria. Most marine DMS (>90%) is degraded or consumed in the water column, but the remainder is emitted to the atmosphere, where it contributes to the formation of cloud condensation nuclei. Large uncertainties (up to ±10 W m−2) associated with the global impact of DMS emissions arise from the use of crudely defined biological parameters, such as total chlorophyll, in models. Constraining and modelling the biogeochemical processes that control DMS production are key to better estimating the influence of DMS on climate.
引用
收藏
页码:361 / 376
页数:15
相关论文
共 50 条
  • [21] VERTICAL-DISTRIBUTION OF DIMETHYLSULFIDE IN THE MARINE ATMOSPHERE
    FEREK, RJ
    CHATFIELD, RB
    ANDREAE, MO
    NATURE, 1986, 320 (6062) : 514 - 516
  • [22] THE EFFECTS OF DIMETHYLSULFIDE UPON MARINE AEROSOL CONCENTRATIONS
    KREIDENWEIS, SM
    PENNER, JE
    YIN, F
    SEINFELD, JH
    ATMOSPHERIC ENVIRONMENT PART A-GENERAL TOPICS, 1991, 25 (11): : 2501 - 2511
  • [23] Biogeochemistry of dimethylsulfoniopropionate, dimethylsulfide and acrylic acid in the Yellow Sea and the Bohai Sea during autumn
    Liu, Yue
    Liu, Chun-Ying
    Yang, Gui-Peng
    Zhang, Hong-Hai
    Zhang, Sheng-hui
    ENVIRONMENTAL CHEMISTRY, 2016, 13 (01) : 127 - 139
  • [24] The Role of B Vitamins in Marine Biogeochemistry
    Sanudo-Wilhelmy, Sergio A.
    Gomez-Consarnau, Laura
    Suffridge, Christopher
    Webb, Eric A.
    ANNUAL REVIEW OF MARINE SCIENCE, VOL 6, 2014, 6 : 339 - 367
  • [25] Emerging Topics in Marine Methane Biogeochemistry
    Valentine, David L.
    ANNUAL REVIEW OF MARINE SCIENCE, VOL 3, 2011, 3 : 147 - 171
  • [26] The biogeochemistry of sorbed methane in marine sediments
    Ertefai, Tobias F.
    Heuer, Verena B.
    Prieto-Mollar, Xavier
    Vogt, Christoph
    Sylva, Sean P.
    Seewald, Jeffrey
    Hinrichs, Kai-Uwe
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2010, 74 (21) : 6033 - 6048
  • [27] Zinc marine biogeochemistry in seawater: a review
    Sinoir, Marie
    Butler, Edward C. V.
    Bowie, Andrew R.
    Mongin, Mathieu
    Nesterenko, Pavel N.
    Hassler, Christel S.
    MARINE AND FRESHWATER RESEARCH, 2012, 63 (07) : 644 - 657
  • [28] Isotopic biogeochemistry of marine organic carbon
    Freeman, KH
    STABLE ISOTOPE GEOCHEMISTRY, 2001, 43 : 579 - 605
  • [29] Simulations With the Marine Biogeochemistry Library (MARBL)
    Long, Matthew C.
    Moore, J. Keith
    Lindsay, Keith
    Levy, Michael
    Doney, Scott C.
    Luo, Jessica Y.
    Krumhardt, Kristen M.
    Letscher, Robert T.
    Grover, Maxwell
    Sylvester, Zephyr T.
    JOURNAL OF ADVANCES IN MODELING EARTH SYSTEMS, 2021, 13 (12)
  • [30] BIOGEOCHEMISTRY OF BENZANTHRACENE IN AN ENCLOSED MARINE ECOSYSTEM
    HINGA, KR
    PILSON, MEQ
    LEE, RF
    FARRINGTON, JW
    TJESSEM, K
    DAVIS, AC
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1980, 14 (09) : 1136 - 1143