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J. Chadwick, Perfit, M., Ridley, I., Kamenov, G., Chadwick, W., Embley, R., le Roux, P., and Smith, M., Magmatic effects of the Cobb hot spot on the Juan de Fuca Ridge, Journal of Geophysical Research, vol. 110, p. B03101, 2005.
M. D. Lilley, Butterfield, D. A., Lupton, J. E., and Olson, E. J., Magmatic events can produce rapid changes in hydrothermal vent chemistry, Nature, vol. 422, pp. 878–881, 2003.
M. D. Lilley, Butterfield, D. A., Lupton, J. E., and Olson, E. J., Magmatic events can produce rapid changes in hydrothermal vent chemistry, Nature, vol. 422, pp. 878–881, 2003.
R. M. Lawrence, Gee, J. S., and Karson, J. A., Magnetic anisotropy of serpentinized peridotites from the MARK area: Implications for the orientation of mesoscopic structures and major fault zones, Journal of Geophysical Research, vol. 107, pp. EPM–4–1 – EPM–4–16, 2002.
H. - T. Lin, Lilley, M. D., Lupton, J. E., and Rappé, M. S., Mantle degassing of primordial helium through submarine ridge flank basaltic basement, Earth and Planetary Science Letters, vol. 546, p. 116386, 2020.
H. - T. Lin, Lilley, M. D., Lupton, J. E., and Rappé, M. S., Mantle degassing of primordial helium through submarine ridge flank basaltic basement, Earth and Planetary Science Letters, vol. 546, p. 116386, 2020.
H. - T. Lin, Lilley, M. D., Lupton, J. E., and Rappé, M. S., Mantle degassing of primordial helium through submarine ridge flank basaltic basement, Earth and Planetary Science Letters, vol. 546, p. 116386, 2020.
H. J. B. Dick, Lissenberg, C. J., and Warren, J. M., Mantle melting, melt transport, and delivery beneath a slow-spreading ridge: the paleo-MAR from 23 degrees15′N to 23 degrees 45′N, Journal of Petrology, vol. 51, pp. 425–467, 2010.
C. Yeats, Belton, D., Laird, J. S., and Ryan, C. G., Mapping elemental distributions in submarine hydrothermal sulfide smokers using proton induced X-ray emission, Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, vol. 268, pp. 2129–2132, 2010.
D. Leary, Vierros, M., Hamon, G., Arico, S., and Monagle, C., Marine genetic resources:A review of scientific and commercial interest, Marine Policy, vol. 33, pp. 183–194, 2009.
S. L'Haridon, Gouhier, L., St John, E., and Reysenbach, A. L., Marinitoga lauensis sp. nov., a novel deep-sea hydrothermal vent thermophilic anaerobic heterotroph with a prophage, Systematic and Applied Microbiology, vol. 42, pp. 343-347, 2019.
J. Gunderson, Jorgensen, B. B., Larsen, E., and Jannasch, H. W., Mats of giant sulfur bacteria in deep-sea sediments due to fluctuating hydrothermal flow, Nature, vol. 360, pp. 454–456, 1992.
S. A. Little, Stolzenbach, K. D., and Von Herzen, R. P., Measurements of plume flow from a hydrothermal vent field, Journal of Geophysical Research, vol. 92, pp. 2587–2596, 1987.
L. N. Germanovich, Hurt, R. S., Smith, J. E., Genc, G., and Lowell, R. P., Measuring fluid flow and heat output in seafloor hydrothermal environments, Journal of Geophysical Research: Solid Earth, vol. 120, pp. 8031–8055, 2015.
N. Lampadariou, Syranidou, E., Sevastou, K., and Tselepides, A., Meiobenthos from biogenic structures of the abyssal time-series station in the NE Pacific (Station M), Deep-Sea Research Part Ii-Topical Studies in Oceanography, vol. 173, 2020.
A. Gracia, Levin, L. A., and Zea, S., Meio-epifaunal wood colonization in the vicinity of methane seeps, Marine Ecology-an Evolutionary Perspective, 2019.
C. Vetriani, Chew, Y. S., Miller, S. M., Yagi, J., Coombs, J., Lutz, T. A., and Barkay, T., Mercury adaptation among bacteria from a deep-sea hydrothermal vent, Applied and Environmental Microbiology, vol. 71, pp. 220–226, 2005.
L. Macelloni, Lutken, C. B., Ingrassia, M., Emidio, M. D. ', and Pizzi, M., Mesoscale biogeophysical characterization of Woolsey Mound (northern Gulf of Mexico), a new attribute of natural marine hydrocarbon seeps architecture, Marine Geology, vol. 380, pp. 330–344, 2016.
H. Q. Yao, Zhou, H. Y., Peng, X. T., Bao, S. X., Wu, Z. J., Li, J. T., Sun, Z. L., Chen, Z. Q., Li, J. W., and Chen, G. Q., Metal sources of black smoker chimneys, Endeavour Segment, Juan de Fuca Ridge: Pb isotope constraints, Applied Geochemistry, vol. 24, pp. 1971–1977, 2009.
H. Q. Yao, Zhou, H. Y., Peng, X. T., Bao, S. X., Wu, Z. J., Li, J. T., Sun, Z. L., Chen, Z. Q., Li, J. W., and Chen, G. Q., Metal sources of black smoker chimneys, Endeavour Segment, Juan de Fuca Ridge: Pb isotope constraints, Applied Geochemistry, vol. 24, pp. 1971–1977, 2009.
G. W. Luther and Rickard, D. T., Metal sulfide cluster complexes and their biogeochemical importance in the environment, Journal of Nanoparticle Research, vol. 7, pp. 389–407, 2005.
P. F. Lonsdale, Batiza, R., and Simkin, T., Metallogenesis at seamounts on the East Pacific Rise, Marine Technology Society Journal, vol. 16, pp. 54–61, 1982.
R. L. Hansman, Thurber, A. R., Levin, L. A., and Aluwihare, L. I., Methane fates in the benthos and water column at cold seep sites along the continental margin of Central and North America, Deep Sea Research Part I: Oceanographic Research Papers, vol. 120, pp. 122–131, 2017.
L. A. Levin, Mendoza, G. F., and Grupe, B. M., Methane seepage effects on biodiversity and biological traits of macrofauna inhabiting authigenic carbonates, Deep Sea Research Part II: Topical Studies in Oceanography, vol. 137, pp. 26–41, 2017.
J. Labidi, Young, E. D., Giunta, T., Kohl, I. E., Seewald, J., Tang, H., Lilley, M. D., and Früh-Green, G. L., Methane thermometry in deep-sea hydrothermal systems: evidence for re-ordering of doubly-substituted isotopologues during fluid cooling, Geochimica et Cosmochimica Acta, 2020.

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