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J. B. Rucker, Stiles, N. T., and Busby, R. F., Sea-floor strength observations from the DRV Alvin in the Tongue of the Ocean, Bahamas, Southeastern Geology, vol. 8, pp. 1–8, 1967.
M. Sharma, Rosenberg, E. J., and Butterfield, D. A., Search for the proverbial mantle osmium sources to the oceans: Hydrothermal alteration of mid-ocean ridge basalt, Geochimica et Cosmochimica Acta, vol. 71, pp. 4655–4667, 2007.
P. A. Rona, Secret survivor, Natural History, vol. 113, pp. 50–55, 2004.
G. T. Rowe and Clifford, C. H., Sediment data from short cores taken in the Northwest Atlantic Ocean, vol. 78-46. Woods Hole, Mass.: Woods Hole Oceanographic Institution, 1978, p. 58.
L. A. Zinke, Reese, B. Kiel, McManus, J., Wheat, C. G., Orcutt, B. N., and Amend, J. P., Sediment Microbial Communities Influenced by Cool Hydrothermal Fluid Migration, Frontiers in Microbiology, vol. 9, p. 1249, 2018.
V. Y. Rusakov, Lukashin, V. N., and Burovkin, A. A., A sediment trap for short-term studies of vertical particle fluxes in the ocean, Okeanologija, vol. 36, pp. 754–756, 1996.
J. C. MacIlvaine and Ross, D. A., Sedimentary processes on the continental slope of New England, Journal of Sedimentary Petrology, vol. 49, pp. 563–574, 1979.
M. R. Raven, Sessions, A. L., Fischer, W. W., and Adkins, J. F., Sedimentary pyrite $δ$34S differs from porewater sulfide in Santa Barbara Basin: Proposed role of organic sulfur, Geochimica et Cosmochimica Acta, vol. 186, pp. 120–134, 2016.
G. T. Rowe and Gardner, W. D., Sedimentation rates in the slope water of the northwest Atlantic Ocean measured directly with sediment traps, Journal of Marine Research, vol. 37, pp. 581–600, 1979.
C. N. Roman, Self consistent bathymetric mapping from robotic vehicles in the deep ocean, Massachusetts Institute of Technology and Woods Hole Oceanographic Institution, Cambridge, MA and Woods Hole, MA, 2005.
C. Roman and Singh, H., A self-consistent bathymetric mapping algorithm, Journal of Field Robotics, vol. 24, pp. 23–50, 2007.
D. S. Kelley, Karson, J. A., Fruh-Green, G. L., Yoerger, D. R., Shank, T. M., Butterfield, D. A., Hayes, J. M., Schrenk, M. O., Olson, E. J., Proskurowski, G., Jakuba, M. V., Bradley, A. M., Larson, B. I., Ludwig, K. A., Glickson, D. A., Buckman, K., Bradley, A. S., Brazelton, W. J., Roe, K., Elend, M. J., Delacour, A., Bernasconi, S. M., Lilley, M. D., Baross, J. A., Summons, R. T., and Sylva, S. P., A serpentinite-hosted ecosystem: The lost city hydrothermal field, Science, vol. 307, pp. 1428–1434, 2005.
C. L. Waters, Sims, K. W. W., Klein, E. M., White, S. M., Reagan, M. K., and Girard, G., Sill to surface: Linking young off-axis volcanism with subsurface melt at the overlapping spreading center at 9°03′N East Pacific Rise, Earth and Planetary Science Letters, vol. 369–370, pp. 59–70, 2013.
M. V. Rudenko, Site survey of the Campeche Bank in the Gulf of Mexico, Okeanologija, vol. 38, pp. 129–133, 1998.
P. Polloni, Haedrich, R., Rowe, G., and Clifford, C. H., The size-depth relationship in deep ocean animals, Internationale Revue der Gesamten Hydrobiologie, vol. 64, pp. 39–46, 1979.
K. Robert, Onthank, K. L., Juniper, S. K., and Lee, R. W., Small-scale thermal responses of hydrothermal vent polynoid polychaetes: Preliminary in situ experiments and methodological development, Journal of Experimental Marine Biology and Ecology, vol. 420-421, pp. 69–76, 2012.
A. C. Vine, Hays, E. E., McCamis, J. J., and Rainnie, W. O., Some underwater observations, vol. 67-82. Woods Hole, Mass.: Woods Hole Oceanographic Institution, 1967, p. var. p.
G. T. Reynolds and Lutz, R. A., Sources of light in the deep ocean, Reviews of Geophysics, vol. 39, pp. 123–136, 2001.
M. F. McCowin, Feehery, C., and Rouse, G. W., Spanning the depths or depth-restricted: Three new species of Bathymodiolus (Bivalvia, Mytilidae) and a new record for the hydrothermal vent Bathymodiolus thermophilus at methane seeps along the Costa Rica margin, Deep Sea Research Part I Oceanographic Research Papers, p. 103322, 2020.
J. L. Karsten, Delaney, J. R., Rhodes, J. M., and Liias, R. A., Spatial and temporal evolution of magmatic systems beneath the Endeavour Segment, Juan de Fuca Ridge: Tectonic and petrologic constraints, Journal of Geophysical Research, vol. 95, pp. 19,219–235,256, 1990.
L. A. Levin, Ziebis, W., Mendoza, G. F., Growney, V. A., Tryon, M. D., Brown, K. M., Mahn, C., Gieskes, J. M., and Rathburn, A. E., Spatial heterogeneity of macrofauna at northern California methane seeps: Influence of sulfide concentration and fluid flow, Marine Ecology Progress Series, vol. 265, pp. 123–139, 2003.
I. Ferrera, Banta, A. B., and Reysenbach, A. - L., Spatial patterns of Aquificales in deep-sea vents along the Eastern Lau Spreading Center (SW Pacific), SYSTEMATIC AND APPLIED MICROBIOLOGY, vol. 37, pp. 442–448, 2014.
G. Ravizza, Blusztajn, J., Von Damm, K. L., Bray, A. M., Bach, W., and Hart, S. R., Sr isotope variations in vent fluids from 9 degrees 46'-9 degrees 54'N East Pacific Rise: Evidence of a non-zero-Mg fluid component, Geochimica et Cosmochimica Acta, vol. 65, pp. 729–739, 2001.
R. A. Lutz, Collins, A. G., Annis, E. R., Reed, A. J., Bennett, K. F., Halanych, K. M., and Vrijenhoek, R. C., Stauromedusan populations inhabiting deep-sea hydrothermal vents along the southern East Pacific Rise, Cahiers de Biologie Marine, vol. 47, pp. 409–413, 2006.
S. M. Sudarikov and Roumiantsev, A. B., Structure of hydrothermal plumes at the Logatchev vent field, 14 degrees 45'N, Mid-Atlantic Ridge; Evidence from geochemical and geophysical data, Journal of Volcanology and Geothermal Research, vol. 101, pp. 245–252, 2000.

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