Spontaneous and Widespread Electricity Generation in Natural Deep-Sea Hydrothermal Fields

被引:56
|
作者
Yamamoto, Masahiro [1 ]
Nakamura, Ryuhei [2 ]
Kasaya, Takafumi [3 ]
Kumagai, Hidenori [1 ]
Suzuki, Katsuhiko [1 ]
Takai, Ken [1 ]
机构
[1] Japan Agcy Marine Earth Sci & Technol JAMSTEC, Resource Generat Environm Res Grp, Yokosuka, Kanagawa 2730061, Japan
[2] RIKEN, Ctr Sustainable Resource Sci, Biofunct Catalyst Res Team, 2-1 Hirosawa, Wako, Saitama 3510198, Japan
[3] JAMSTEC, Ore Genesis Res Unit, Project Team Dev New Generat Res Protocol Submari, Yokosuka, Kanagawa 2730061, Japan
关键词
deep-sea hydrothermal systems; electrochemistry; redox potentials; sulfide minerals; REDUCTION; LIFE;
D O I
10.1002/anie.201701768
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Deep-sea hydrothermal vents discharge abundant reductive energy into oxidative seawater. Herein, we demonstrated that in situ measurements of redox potentials on the surfaces of active hydrothermal mineral deposits were more negative than the surrounding seawater potential, driving electrical current generation. We also demonstrated that negative potentials in the surface of minerals were widespread in the hydrothermal fields, regardless of the proximity to hydrothermal fluid discharges. Lab experiments verified that the negative potential of the mineral surface was induced by a distant electron transfer from the hydrothermal fluid through the metallic and catalytic properties of minerals. These results indicate that electric current is spontaneously and widely generated in natural mineral deposits in deep-sea hydrothermal fields. Our discovery provides important insights into the microbial communities that are supported by extracellular electron transfer and the prebiotic chemical and metabolic evolution of the ocean hydrothermal systems.
引用
收藏
页码:5725 / 5728
页数:4
相关论文
共 50 条
  • [31] Trace metal bioaccumulation in the shells of mussels and clams at deep-sea hydrothermal vent fields
    Demina, L. L.
    Galkin, S. V.
    Dara, O. M.
    GEOCHEMISTRY INTERNATIONAL, 2012, 50 (02) : 133 - 147
  • [32] Two Novel Bacteriophages of Thermophilic Bacteria Isolated from Deep-Sea Hydrothermal Fields
    Bin Liu
    Suijie Wu
    Qing Song
    Xiaobo Zhang
    Lianhui Xie
    Current Microbiology, 2006, 53 : 163 - 166
  • [33] Metagenomic Signatures of Microbial Communities in Deep-Sea Hydrothermal Sediments of Azores Vent Fields
    Teresa Cerqueira
    Cristina Barroso
    Hugo Froufe
    Conceição Egas
    Raul Bettencourt
    Microbial Ecology, 2018, 76 : 387 - 403
  • [34] THE ECOLOGY OF DEEP-SEA HYDROTHERMAL VENT COMMUNITIES
    GRASSLE, JF
    ADVANCES IN MARINE BIOLOGY, 1986, 23 : 301 - 362
  • [35] Thermophiles from deep-sea hydrothermal vents
    Quérellou, J
    Alain, K
    Cambon-Bonavita, MA
    VIE ET MILIEU-LIFE AND ENVIRONMENT, 2001, 51 (04) : 161 - 172
  • [36] Microorganisms from deep-sea hydrothermal vents
    Xiang Zeng
    Karine Alain
    Zongze Shao
    Marine Life Science & Technology, 2021, 3 : 204 - 230
  • [37] Fungal Diversity in Deep-Sea Hydrothermal Ecosystems
    Le Calvez, Thomas
    Burgaud, Gaetan
    Mahe, Stephane
    Barbier, Georges
    Vandenkoornhuyse, Philippe
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2009, 75 (20) : 6415 - 6421
  • [38] HYDROTHERMAL-VENT COMMUNITIES OF THE DEEP-SEA
    TUNNICLIFFE, V
    AMERICAN SCIENTIST, 1992, 80 (04) : 336 - 349
  • [39] COPEPODA FROM DEEP-SEA HYDROTHERMAL VENTS
    HUMES, AG
    BULLETIN OF MARINE SCIENCE, 1987, 41 (03) : 645 - 788
  • [40] Sulfur oxidation at deep-sea hydrothermal vents
    Sievert, Stefan M.
    Hugler, Michael
    Taylor, Craig D.
    Wirsen, Carl O.
    MICROBIAL SULFUR METABOLISM, 2008, : 238 - +