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“Activities of 223Ra and 226Ra in fluids from the Lost City Hydrothermal Field require short fluid residence times”, Journal of Geophysical Research - Oceans, 2021.
, “Activities of Ra-223 and Ra-226 in Fluids From the Lost City Hydrothermal Field Require Short Fluid Residence Times”, Journal of Geophysical Research-Oceans, vol. 126, 2021.
, “A chemosynthetic ecotone—“chemotone”—in the sediments surrounding deep‐sea methane seeps”, Limnology and Oceanography, 2021.
, “A chemosynthetic ecotone—“chemotone”—in the sediments surrounding deep‐sea methane seeps”, Limnology and Oceanography, 2021.
, “A chemosynthetic ecotone-"chemotone"-in the sediments surrounding deep-sea methane seeps”, Limnology and Oceanography, 2021.
, “A chemosynthetic ecotone-"chemotone"-in the sediments surrounding deep-sea methane seeps”, Limnology and Oceanography, 2021.
, “Copepod assemblages along a hydrothermal stress gradient at diffuse flow habitats within the ABE vent site (Eastern Lau Spreading Center, Southwest Pacific)”, Deep Sea Research Part I Oceanographic Research Papers, p. 103532, 2021.
, “Copepod assemblages along a hydrothermal stress gradient at diffuse flow habitats within the ABE vent site (Eastern Lau Spreading Center, Southwest Pacific)”, Deep Sea Research Part I Oceanographic Research Papers, p. 103532, 2021.
, “Design and Testing of a Spherical Autonomous Underwater Vehicle for Shipwreck Interior Exploration”, Journal of Marine Science and Engineering, vol. 9, p. 320, 2021.
, “Distribution of Methane Plumes on Cascadia Margin and Implications for the Landward Limit of Methane Hydrate Stability”, Frontiers in Earth Science, vol. 9, p. 531714, 2021.
, “Diverse Viruses in Deep-Sea Hydrothermal Vent Fluids Have Restricted Dispersal across Ocean Basins”, Msystems, vol. 6, 2021.
, “The dynamic influence of methane seepage on macrofauna inhabiting authigenic carbonates”, Ecosphere, vol. 12, 2021.
, “The dynamic influence of methane seepage on macrofauna inhabiting authigenic carbonates”, Ecosphere, vol. 12, 2021.
, “The dynamic influence of methane seepage on macrofauna inhabiting authigenic carbonates”, Ecosphere, vol. 12, 2021.
, “The dynamic influence of methane seepage on macrofauna inhabiting authigenic carbonates”, Ecosphere, vol. 12, 2021.
, “The dynamic influence of methane seepage on macrofauna inhabiting authigenic carbonates”, Ecosphere, vol. 12, 2021.
, “The dynamic influence of methane seepage on macrofauna inhabiting authigenic carbonates”, Ecosphere, vol. 12, 2021.
, “The dynamic influence of methane seepage on macrofauna inhabiting authigenic carbonates”, Ecosphere, vol. 12, 2021.
, “The dynamic influence of methane seepage on macrofauna inhabiting authigenic carbonates”, Ecosphere, vol. 12, 2021.
, “The dynamic influence of methane seepage on macrofauna inhabiting authigenic carbonates”, Ecosphere, vol. 12, 2021.
, “Extensive decentralized hydrogen export from the Atlantis Massif”, Geology, vol. 49, pp. 851-856, 2021.
, “Extensive decentralized hydrogen export from the Atlantis Massif”, Geology, vol. 49, pp. 851-856, 2021.
, “Extensive decentralized hydrogen export from the Atlantis Massif”, Geology, vol. 49, pp. 851-856, 2021.
, “Extensive decentralized hydrogen export from the Atlantis Massif”, Geology, vol. 49, pp. 851-856, 2021.
, “Fe-catalyzed sulfide oxidation in hydrothermal plumes is a source of reactive oxygen species to the ocean”, Proceedings of the National Academy of Sciences of the United States of America, vol. 118, p. e2026654118, 2021.
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