Export 502 results:
Author [ Title(Asc)] Type Year
Filters: First Letter Of Last Name is G  [Clear All Filters]
A B C D E F G H I J K L M N O P Q R S T U V W X Y Z 
I
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.
S. Juniper, Garrett, K., Shepherd, J. F., Tamburri, K., and Wallace, K., IRL: an interactive real-time logging system for ROVs, in Oceans 2000 MTS/IEEE: where marine science and technology meet, vol. 1, Piscataway, N.J.: IEEE, 2000, pp. 465–473.
K. Wishner, Levin, L. A., Gowing, M., and Mullineaux, L., Involvement of the oxygen minimum in benthic zonation of a deep seamount, Nature, vol. 346, pp. 57–59, 1990.
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.
D. W. Graham, Michael, P. J., and Rubin, K. H., An investigation of mid-ocean ridge degassing using He, CO2, and delta C-13 variations during the 2005-06 eruption at 9 degrees 50 ' N on the East Pacific Rise, Earth and Planetary Science Letters, vol. 504, pp. 84-93, 2018.
T. M. McCollom, Seewald, J. S., and German, C. R., Investigation of extractable organic compounds in deep-sea hydrothermal vent fluids along the Mid-Atlantic Ridge, GEOCHIMICA ET COSMOCHIMICA ACTA, vol. 156, pp. 122–144, 2015.
J. F. Grassle, Introduction to the biology of hydrothermal vents, in Hydrothermal processes at seafloor spreading centers, P. A. Rona, Ed. New York, N.Y.: Plenum Press, 1983, pp. 671–682.
M. G. Gross, Introduction: Deep-sea hot springs and cold seeps, Oceanus, vol. 27, pp. 2–6, 1984.
J. M. Auzende, Ceuleneer, G., Cornen, G., Juteau, T., Lagabrielle, Y., Lensch, G., Mével, C., Nicolas, A., Prichard, H., Ribeiro, A., Ruellan, E., and Vanney, J. R., Intraoceanic tectonism in the Gorringe Bank: observations by submersible, in Ophiolites and oceanic lithosphere, vol. 13, I. G. Gass, Ed. Boston, Mass.: Blackwell Scientific Publications, 1984, pp. 113–120.
R. A. Beinart, Nyholm, S. V., Dubilier, N., and Girguis, P. R., Intracellular Oceanospirillales inhabit the gills of the hydrothermal vent snail Alviniconcha with chemosynthetic, gamma-Proteobacterial symbionts, ENVIRONMENTAL MICROBIOLOGY REPORTS, vol. 6, pp. 656–664, 2014.
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.
E. Zuleger, Gieskes, J. M., and You, C. F., Institial water chemistry of sediments of the Costa Rica accretionary complex off the Nicoya Peninsula, Geophysical Research Letters, vol. 23, pp. 899–902, 1996.
A. K. Barker, Coogan, L. A., and Gillis, K. M., Insights into the behaviour of sulphur in mid-ocean ridge axial hydrothermal systems from the composition of the sheeted dyke complex at Pito Deep, Chemical Geology, vol. 275, pp. 105–115, 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.
S. K. Goffredi, Indigenous ectosymbiotic bacteria associated with diverse hydrothermal vent invertebrates, ENVIRONMENTAL MICROBIOLOGY REPORTS, vol. 2, pp. 479–488, 2010.
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.
F. U. Zielinski, Gennerich, H. - H., Borowski, C., Wenzhoefer, F., and Dubilier, N., In situ measurements of hydrogen sulfide, oxygen, and temperature in diffuse fluids of an ultramafic-hosted hydrothermal vent field (Logatchev, 14 degrees 45 ` N, Mid-Atlantic Ridge): Implications for chemosymbiotic bathymodiolin mussels, GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, vol. 12, 2011.
S. E. Ruff, Felden, J., Gruber-Vodicka, H. R., Marcon, Y., Knittel, K., Ramette, A., and Boetius, A., In situ development of a methanotrophic microbiome in deep-sea sediments, Isme Journal, vol. 13, pp. 197-213, 2019.
G. A. Mitchell, Orange, D. L., Gharib, J. J., and Kennedy, P., Improved detection and mapping of deepwater hydrocarbon seeps: optimizing multibeam echosounder seafloor backscatter acquisition and processing techniques, Marine Geophysical Research, vol. 39, pp. 323-347, 2018.
H. K. White, Hsing, P. - Y., Cho, W., Shank, T. M., Cordes, E. E., Quattrini, A. M., Nelson, R. K., Camilli, R., Demopoulos, A. W. J., German, C. R., Brooks, J. M., Roberts, H. H., Shedd, W., Reddy, C. M., and Fisher, C. R., Impact of the Deepwater Horizon oil spill on a deep-water coral community in the Gulf of Mexico, Proceedings of the National Academy of Sciences of the United States of America, vol. 109, pp. 20303–20308, 2012.

Pages