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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.
J. Olafsson, Honjo, S., Thors, K., Stefansson, U., Jones, R. R., and Ballard, R. D., Initial observations, bathymetry and photography of a geothermal site on the Kolbeinsey Ridge, in Oceanography 1988 : JOA Mexico 88, A. Ayala-Castañarea, Ed. Mexico City: Universidad Nacional Autónoma de México; Consejo Nacional de Ciencia y Tecnología, 1989, pp. 121–127.
A. M. Burkett, Rathburn, A. E., M. Perez, E., and Martin, J. B., Influences of thermal and fluid characteristics of methane and hydrothermal seeps on the stable oxygen isotopes of living benthic foraminifera, Marine and Petroleum Geology, vol. 93, no. Journal Article, pp. 344 - 355, 2018.
D. R. Yoerger, Cooke, J. G., and Slotine, J. E., The influence of thruster dynamics on underwater behavior and their incorporation into control system design, IEEE Journal of Oceanic Engineering, vol. 15, pp. 167–178, 1990.
J. N. Bentley, Ventura, G. T., Walters, C. C., Sievert, S. M., and Seewald, J. S., The influence of near surface sediment hydrothermalism on the TEX86 tetraether lipid-based proxy and a new correction for ocean bottom lipid overprinting, Biogeosciences Discussions, vol. 2021, pp. 1-31, 2021.
F. K. Wilckens, Reeves, E. P., Bach, W., Meixner, A., Seewald, J. S., Koschinsky, A., and Kasemann, S. A., The influence of magmatic fluids and phase separation on B systematics in submarine hydrothermal vent fluids from back-arc basins, Geochimica et Cosmochimica Acta, vol. 232, no. Journal Article, pp. 140 - 162, 2018.
D. K. Adams, Influence of hydrodynamics on the larval supply to hydrothermal vents on the East Pacific Rise, Massachusetts Institute of Technology and Woods Hole Oceanographic Institution, Cambridge, MA and Woods Hole, MA, 2007.
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.
F. Pradillon, Le Bris, N., Shillito, B., Young, C. M., and Gaill, F., Influence of environmental conditions on early development of the hydrothermal vent polychaete Alvinella pompejana, Journal of Experimental Biology, vol. 208, pp. 1551–1561, 2005.
J. R. Bourque and Demopoulos, A. W. J., The influence of different deep-sea coral habitats on sediment macrofaunal community structure and function, PeerJ, vol. 6, p. e5276, 2018.
S. L. Nooner and Jr., W. W. Chadwick, Inflation-predictable behavior and co-eruption deformation at Axial Seamount, SCIENCE, vol. 354, pp. 1399–1403, 2016.
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.
S. K. Goffredi, Indigenous ectosymbiotic bacteria associated with diverse hydrothermal vent invertebrates, ENVIRONMENTAL MICROBIOLOGY REPORTS, vol. 2, pp. 479–488, 2010.
R. D. Ballard, Incredible world of the deep-sea rifts, National Geographic Magazine, vol. 156, pp. 680–688, 1979.
B. Matsen, The incredible submersible Alvin discovers a strange deep-sea world. Berkeley Heights, N.J.: Enslow Publishers, 2003, p. 48.
H. Lee, Chen, W. J., Puillandre, N., Aznar-Cormano, L., Tsai, M. H., and Samadi, S., Incorporation of deep-sea and small-sized species provides new insights into gastropods phylogeny, Molecular Phylogenetics and Evolution, vol. 135, pp. 136-147, 2019.
G. L. Christeson, McIntosh, K. D., and Karson, J. A., Inconsistent correlation of seismic layer 2a and lava layer thickness in oceanic crust, Nature, vol. 445, pp. 418–421, 2007.
W. W. Cho and Shank, T. M., Incongruent patterns of genetic connectivity among four ophiuroid species with differing coral host specificity on North Atlantic seamounts, Marine Ecology, vol. 31, pp. 121–143, 2010.
M. O. Schrenk, Kelley, D. S., Delaney, J. R., and Baross, J. A., Incidence and diversity of mcroorganisms within the walls of an active deep-sea sulfide chimney, Applied and Environmental Microbiology, vol. 69, pp. 3580–3592, 2003.
D. B. Nuzzio, Taillefert, M., Cary, S. C., Reysenbach, A. - L., and Luther, G. W., In situ voltammetry at deep-sea hydrothermal vents, in Environmental electrochemistry: Analyses of trace element biogeochemistry, American Chemical Society, 2002, pp. 40–51.
J. F. Grassle, In situ studies of deep-sea communities, in Advanced Concepts in Ocean Measurements for Marine Biology, F. P. Diemer, Ed. Columbia, S.C.: University of South Carolina Press, 1980, pp. 321–332.
C. L. Van Dover, In situ spawning of hydrothermal vent tubeworms (Riftia pachyptila), Biological Bulletin, vol. 186, pp. 134–135, 1994.
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.
M. Hattori and Okano, M., In situ sea bottom Gamma ray surveys by manned submersibles and ROV, JAMSTEC Journal of Deep Sea Research, pp. 639–660, 1999.
K. Ding, Seyfried, W. E., Zhang, Z., Tivey, M. K., Von Damm, K. L., and Bradley, A. M., The in situ pH of hydrothermal fluids at mid-ocean ridges, Earth and Planetary Science Letters, vol. 237, pp. 167–174, 2005.

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