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I
I. A. Urcuyo, Massoth, G. J., MacDonald, I. R., and Fisher, C. R., In situ growth of the vestimentiferan Ridgeia piscesae living in highly diffuse flow environments in the main Endeavour Segment of the Juan de Fuca Ridge, Cahiers de Biologie Marine, vol. 39, pp. 267–270, 1998.
Y. Fujiwara, Tsukahara, J., Hashimoto, J., and Fujikura, K., In situ spawning of a deep-sea vesicomyid clam: Evidence for an environmental cue, Deep-Sea Research. Part I: Oceanographic Research Papers, vol. 45, pp. 1881–1889, 1998.
Y. Fujiwara, Tsukahara, J., Hashimoto, J., and Fujikura, K., In situ spawning of a deep-sea vesicomyid clam: Evidence for an environmental cue, Deep-Sea Research. Part I: Oceanographic Research Papers, vol. 45, pp. 1881–1889, 1998.
D. J. Fornari, Bradley, A., Humphris, S. E., Walden, B., and Deuster, A., Inductively coupled link (ICL) temperature probes for hot hydrothermal fluid sampling from ROV Jason and DSV Alvin, RIDGE Events, vol. 8, pp. 26–30, 1997.
E. E. Cordes, Becker, E. L., Hourdez, S., and Fisher, C. R., Influence of foundation species, depth, and location on diversity and community composition at Gulf of Mexico lower-slope cold seeps, Deep-Sea Research. Part II: Topical Studies in Oceanography, vol. 57, pp. 1870–1881, 2010.
D. Feng and Roberts, H. H., Initial results of comparing cold-seep carbonates from mussel- and tubeworm-associated environments at Atwater Valley 340, northern Gulf of Mexico, Deep-Sea Research. Part II: Topical Studies in Oceanography, vol. 57, pp. 2030–2039, 2010.
G. Bellaiche, Cheminee, J. L., Francheteau, J., Hekinian, R., Le Pichon, X., Needham, H. D., and Ballard, R. D., Inner floor of the Rift Valley: First submersible study, Nature, vol. 250, pp. 558–560, 1974.
J. J. Childress, Lee, R., Sanders, N. K., Felbeck, H., Oros, D., Toulmond, A., Desbruyeres, D., Brooks, J., and II, K. M. C., Inorganic carbon uptake in hydrothermal vent tubeworms facilitated by high environmental pCO2, Nature, vol. 362, pp. 147–149, 1993.
T. Urabe and Fujioka, K., Installation of long-term monitoring stations at the superfast-spreading Southern East Pacific Rise, JAMSTEC Journal of Deep Sea Research, pp. 1–19, 1999.
R. Hekinian, Francheteau, J., Renard, V., Ballard, R. D., Choukroune, P., Cheminee, J. L., Albarede, F., Minster, J. F., Charlou, J. L., Man'y, J. C., and Boulegue, J., Intense hydrothermal activity at the axis of the East Pacific Pise near 13 degrees N: Submersible witnesses the growth of sulfide chimney, Marine Geophysical Researches, vol. 6, pp. 1–14, 1983.
M. R. Perfit, Cann, J. R., Fornari, D. J., Engels, J., Smith, D. K., Ridley, W. I., and Edwards, M. H., Interaction of sea water and lava during submarine eruptions at mid-ocean ridges, Nature, vol. 426, pp. 62–64, 2003.
L. Lagostina, Frandsen, S., MacGregor, B. J., Glombitza, C., Deng, L., Fiskal, A., Li, J., Doll, M., Geilert, S., Schmidt, M., Scholz, F., Bernasconi, S. Michele, Jørgensen, B. Barker, Hensen, C., Teske, A., and Lever, M. Alexander, Interactions between temperature and energy supply drive microbial communities in hydrothermal sediment, Communications Biology, vol. 4, p. 1006, 2021.
L. Lagostina, Frandsen, S., MacGregor, B. J., Glombitza, C., Deng, L., Fiskal, A., Li, J., Doll, M., Geilert, S., Schmidt, M., Scholz, F., Bernasconi, S. Michele, Jørgensen, B. Barker, Hensen, C., Teske, A., and Lever, M. Alexander, Interactions between temperature and energy supply drive microbial communities in hydrothermal sediment, Communications Biology, vol. 4, p. 1006, 2021.
H. Zhang, Johnson, S. B., Flores, V. R., and Vrijenhoek, R. C., Intergradation between discrete lineages of Tevnia jerichonana, a deep-sea hydrothermal vent tubeworm, Deep-Sea Research Part II: Topical Studies in Oceanography, vol. 121, pp. 53–61, 2015.
J. Escartin, Soule, S. A., Fornari, D. J., Tivey, M. A., Schouten, H., and Perfit, M. R., Interplay between faults and lava flows in construction of the upper oceanic crust: The East Pacific Rise crest 9 degrees 25 '-9 degrees 58 ' N, Geochemistry, Geophysics, Geosystems, vol. 8, p. Q06005, 2007.
J. M. Brooks, Fisher, C. R., Roberts, H., Bernard, B., MacDonald, I. R., Carney, R., Jove, S., Cordes, E. E., Wolff, G. A., and Goehring, E., Investigations of chemosynthetic communities on the lower continental slope of the Gulf of Mexico: Interim Report 1. New Orleans, LA: U.S. Department of the Interior, Minerals Management Service, 2008, p. 332.
A. J. Findlay, Estes, E. R., Gartman, A., Yucel, M., Kamyshny, A., and Luther, G. W., Iron and sulfide nanoparticle formation and transport in nascent hydrothermal vent plumes, Nature Communications, vol. 10, 2019.
C. Boschi, Dini, A., Fruh-Green, G. L., and Kelley, D. S., Isotopic and element exchange during serpentinization and metasomatism at the Atlantis Massif (MAR 30 degrees N): Insights from B and Sr isotope data, Geochimica et Cosmochimica Acta, vol. 72, pp. 1801–1823, 2008.
J
J. A. Bazler, Spokane, A. R., Ballard, R. D., and Fugate, M., The Jason Project experience and attitudes toward science as an enterprise and career, Journal of Career Development, vol. 20, pp. 101–112, 1993.
D. A. Mindell, Yoerger, D. R., Freitag, L. E., Whitcomb, L. L., and Eastwood, R. L., Jason talk: a standard ROV vehicle control system, in Oceans '93: Engineering in harmony with the ocean: Proceedings, vol. 3, New York, N.Y.: IEEE, 1993, pp. III253–III258.

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