IODP Proceedings    Volume contents     Search

doi:10.2204/iodp.proc.327.202.2015

References

Alperin, M.J., Albert, D.B., and Martens, C.S., 1994. Seasonal variations in production and consumption rates of dissolved organic carbon in an organic-rich coastal sediment. Geochim. Cosmochim. Acta, 58(22):4909–4930. doi:10.1016/​0016-7037(94)90221-6

Alperin, M.J., Martens, C.S., Albert, D.B., Suayah, I.B., Benninger, L.K., Blair, N.E., and Jahnke, R.A., 1999. Benthic fluxes and pore water concentration profiles of dissolved organic carbon in sediments from the North Carolina continental slope. Geochim. Cosmochim. Acta, 63(3–4):427–448. doi:10.1016/​S0016-7037(99)00032-0

Arnosti, C., 1995. Measurement of depth- and site-related differences in polysaccharide hydrolysis rates in marine sediments. Geochim. Cosmochim. Acta, 59(20):4247–4257. doi:10.1016/​0016-7037(95)00247-W

Arnosti, C., Repeta, D.J., and Blough, N.V., 1994. Rapid bacterial degradation of polysaccharides in anoxic marine systems. Geochim. Cosmochim. Acta, 58(12):2639–2652. doi:10.1016/​0016-7037(94)90134-1

Berner, R.A., 1990. Atmospheric carbon dioxide levels over Phanerozoic time. Science, 249(4975):1382–1386. doi:10.1126/​science.249.4975.1382

Burdige, D.J., 2002. Sediment pore waters. In Hansell, D.A., and Carlson, C.A. (Eds.), Biogeochemistry of Marine Dissolved Organic Matter: Amsterdam (Academic Press), 611–663. doi:10.1016/​B978-012323841-2/​50015-4

Burdige, D.J., 2006. Biogeochemical processes in continental margin sediments, II. Sulfur, methane, and trace metal cycling. In Burdige, D. (Ed.), Geochemistry of Marine Sediments: Princeton, NJ (Princeton Univ. Press),478–508.

Burdige, D.J., Alperin, M.J., Homstead, J., and Martens, C.S., 1992. The role of benthic fluxes of dissolved organic carbon in oceanic and sedimentary carbon cycling. Geophys. Res. Lett., 19(18):1851–1854. doi:10.1029/​92GL02159

Burdige, D.J., Berelson, W.M., Coale, K.H., McManus, J., and Johnson, K.S., 1999. Fluxes of dissolved organic carbon from California continental margin sediments. Geochim. Cosmochim. Acta, 63(10):1507–1515. doi:10.1016/​S0016-7037(99)00066-6

Burdige, D.J., and Homstead, J., 1994. Fluxes of dissolved organic carbon from Chesapeake Bay sediments. Geochim. Cosmochim. Acta, 58(16):3407–3424. doi:10.1016/​0016-7037(94)90095-7

Burdige, D.J., and Zheng, S., 1998. The biogeochemical cycling of dissolved organic nitrogen in estuarine sediments. Limnol. Oceanogr., 43(8):1796–1813. http://​onlinelibrary.wiley.com/​doi/​10.4319/​lo.1998.43.8.1796/abstract

Capone, D.G., and Klein, R.P., 1988. Comparison of microbial dynamics in marine and freshwater sediments: contrasts in anaerobic carbon catabolism. Limnol. Oceanogr., 33(4):725–749. http://onlinelibrary.wiley.com/​doi/​10.4319/​lo.1988.33.4part2.0725/​abstract

Coplen, T.B., 1994. Reporting of stable hydrogen, carbon, and oxygen isotopic abundances. Pure Appl. Chem., 66(2):273–276. doi:10.1351/​pac199466020273

Coplen, T.B., Krouse, H.R., and Böhlke, J.K., 1992. Reporting of nitrogen-isotope abundances. Pure Appl. Chem., 64(6):907–908. doi:10.1351/​pac199264060907

D’Hondt, S., Jørgensen, B.B., Miller, D.J., Batzke, A., Blake, R., Cragg, B.A., Cypionka, H., Dickens, G.R., Ferdelman, T., Hinrichs, K.-U., Holm, N.G., Mitterer, R., Spivack, A., Wang, G., Bekins, B., Engelen, B., Ford, K., Gettemy, G., Rutherford, S.D., Sass, H., Skilbeck, C.G., Aiello, I.W., Guerin, G., House, C.H., Inagaki, F., Meister, P., Naehr, T., Niitsuma, S., Parkes, R.J., Schippers, A., Smith, D.C., Teske, A., Wiegel, J., Naranjo Padillo, C., and Solis Acosta, J.L., 2004. Distributions of microbial activities in deep subseafloor sediments. Science, 306(5705):2216–2221. doi:10.1126/​science.1101155

D’Hondt, S., Rutherford, S., and Spivack., A.J., 2002. Metabolic activity of subsurface life in deep-sea sediments. Science, 295(5562):2067–2070. doi:10.1126/​science.1064878

Dickens, A.F., Baldock, J.A., Smernik, R.J., Wakeham, S.G., Arnarson, T.S., Gélinas, Y., and Hedges, J.I., 2006. Solid-state 13C NMR analysis of size and density fractions of marine sediments: insight into organic carbon sources and preservation mechanisms. Geochim. Cosmochim. Acta, 70(3):666–686. doi:10.1016/​j.gca.2005.10.024

Dickson, A.G., Sabine, C.L., and Christian, J.R. (Eds.), 2007. Guide to best practices for ocean CO2 measurements. PICES Spec. Publ., 3. http://​cdiac.ornl.gov/​oceans/​Handbook_2007.html

Egeberg, P.K., and Abdullah, M.I., 1990. The diagenetic factors controlling the dissolved organic carbon (DOC) in pore water from deep sea sediments (ODP Leg 113, Weddell Sea). In Barker, P.F., Kennett, J.P., et al., Proc. ODP, Sci. Results, 113: College Station, TX (Ocean Drilling Program), 169–177. doi:10.2973/​odp.proc.sr.113.167.1990

Elderfield, H., Wheat, C.G., Mottl, M.J., Monnin, C., and Spiro, B., 1999. Fluid and geochemical transport through oceanic crust: a transect across the eastern flank of the Juan de Fuca Ridge. Earth Planet. Sci. Lett., 172(1–2):151–165. doi:10.1016/​S0012-821X(99)00191-0

Emerson, S., and Hedges, J.I., 1988. Processes controlling the organic carbon content of open ocean sediments. Paleoceanography, 3(5):621–634. doi:10.1029/​PA003i005p00621

Engelen, B., Ziegelmüller, K., Wolf, L., Köpke, B., Gittel, A., Cypionka, H., Treude, T., Nakagawa, S., Inagaki, F., Lever, M.A., and Steinsbu, B.O., 2008. Fluids from the ocean crust support microbial activities within the deep biosphere. Geomicrobiol. J., 25(1):56–66. doi:10.1080/​01490450701829006

Expedition 327 Scientists, 2011a. Methods. In Fisher, A.T., Tsuji, T., Petronotis, K., and the Expedition 327 Scientists, Proc. IODP, 327: Tokyo (Integrated Ocean Drilling Program Management International, Inc.). doi:10.2204/​iodp.proc.327.102.2011

Expedition 327 Scientists, 2011b. Site U1363. In Fisher, A.T., Tsuji, T., Petronotis, K., and the Expedition 327 Scientists, Proc. IODP, 327: Tokyo (Integrated Ocean Drilling Program Management International, Inc.). doi:10.2204/​iodp.proc.327.106.2011

Fenchel, T., King, G.M., and Blackburn, H., 1998. Bacterial Biogeochemistry: The Ecophysiology of Mineral Cycling: San Diego (Academic Press).

Fischer, J.P., Ferdelman, T.G., D’Hondt, S., Røy, H., and Wenzhöfer, F., 2009. Oxygen penetration deep into the sediment of the South Pacific Gyre. Biogeosciences, 6(8):1467–1478. doi:10.5194/​bg-6-1467-2009

Fisher, A.T., Davis, E.E., Hutnak, M., Spiess, V., Zühlsdorff, L., Cherkaoui, A., Christiansen, L., Edwards, K., Macdonald, R., Villinger, H., Mottl, M.J., Wheat, C.G., and Becker, K., 2003. Hydrothermal recharge and discharge across 50 km guided by seamounts on a young ridge flank. Nature, 421(6923):618–621. doi:10.1038/​nature01352

Galy, V., France-Lanord, C., and Lartiges, B., 2008. Loading and fate of particulate organic carbon from the Himalaya to the Ganga–Brahmaputra Delta. Geochim. Cosmochim. Acta, 72(7):1767–1787. doi:10.1016/​j.gca.2008.01.027

Hartnett, H.E., and Devol, A.H., 2003. Role of a strong oxygen-deficient zone in the preservation and degradation of organic matter: a carbon budget for the continental margins of northwest Mexico and Washington state. Geochim. Cosmochim. Acta, 67(2):247–264. doi:10.1016/​S0016-7037(02)01076-1

Hedges, J.I., Hu, F.S., Devol, A.H., Hartnett, H.E., Tsamakis, E., and Keil, R.G., 1999. Sedimentary organic matter preservation: a test for selective degradation under oxic conditions. Am. J. Sci., 299(7–9):529–555. doi:10.2475/​ajs.299.7-9.529

Hedges, J.I., and Stern, J.H., 1984. Carbon and nitrogen determinations of carbonate-containing solids. Limnol. Oceanogr., 29(3):657–663. doi:10.4319/​lo.1984.29.3.0657

Heuer, V.B., Pohlman, J.W., Torres, M.E., Elvert, M., and Hinrichs, K.-U., 2009. The stable carbon isotope biogeochemistry of acetate and other dissolved carbon species in deep subseafloor sediments at the northern Cascadia margin. Geochim. Cosmochim. Acta, 73(11):3323–3336. doi:10.1016/​j.gca.2009.03.001

Holland, H.D., 1984. The Chemical Evolution of the Atmosphere and Oceans: Princeton, NJ (Princeton Univ. Press).

Holland, H.D., Lazar, B., and McCaffrey, M., 1986. Evolution of the atmosphere and oceans. Nature, 320:27–33. doi:10.1038/​320027a0

Hutnak, M., Fisher, A.T., Zühlsdorff, L., Spiess, V., Stauffer, P.H., and Gable, C.W., 2006. Hydrothermal recharge and discharge guided by basement outcrops on 0.7–3.6 Ma seafloor east of the Juan de Fuca Ridge: observations and numerical models. Geochem., Geophys., Geosyst., 7(7):Q07O02. doi:10.1029/​2006GC001242

Keil, R.G., and Fogel, M.L., 2001. Reworking of amino acid in marine sediments: stable carbon isotopic composition of amino acids in sediments along the Washington coast. Limnol. Oceanogr., 46(1):14–23. doi:10.4319/​lo.2001.46.1.0014

Keil, R.G., Mayer, L.M., Quay, P.D., Richey, J.E., and Hedges, J.I., 1997. Loss of organic matter from riverine particles in deltas. Geochim. Cosmochim. Acta, 61(7):1507–1511. doi:10.1016/​S0016-7037(97)00044-6

Krom, M.D., and Sholkovitz, E.R., 1977. Nature and reactions of dissolved organic matter in the interstitial waters of marine sediments. Geochim. Cosmochim. Acta, 41(11):1565–1574. doi:10.1016/​0016-7037(77)90168-5

Laanbroek, H.J., Veldkamp, H., Postgate, J.R., Lynch, J.M., and Le Roux, N., 1982. Microbial interactions in sediment communities [and discussion]. Philos. Trans. R. Soc., B, 297(1088):533–550. doi:10.1098/​rstb.1982.0059

Lang, S.Q., Butterfield, D.A., Lilley, M.D., Johnson, H.P., and Hedges, J.I., 2006. Dissolved organic carbon in ridge-axis and ridge-flank hydrothermal systems. Geochim. Cosmochim. Acta, 70(15):3830–3842. doi:10.1016/​j.gca.2006.04.031

Lin, H.-T., Cowen, J.P., Olson, E.J., Amend, J.P., and Lilley, M.D., 2012. Inorganic chemistry, gas compositions and dissolved organic carbon in fluids from sedimented young basaltic crust on the Juan de Fuca Ridge flanks. Geochim. Cosmochim. Acta, 85:213–227. doi:10.1016/​j.gca.2012.02.017

Meyers, P.A., 1994. Preservation of elemental and isotopic source identification of sedimentary organic matter. Chem. Geol., 114(3–4):289–302. doi:10.1016/​0009-2541(94)90059-0

Michaelis, W., Mycke, B., Vogt, J., Schuetze, G., and Degens, E.T., 1982. Organic geochemistry of interstitial waters, Sites 474 and 479, Leg 64. In Curray, J.R., Moore, D.G., et al., Init. Repts. DSDP, 64: Washington, DC (U.S. Govt. Printing Office), 933–937. doi:10.2973/​dsdp.proc.64.139.1982

Papadimitriou, S., Kennedy, H., Bentaleb, I., and Thomas, D.N., 2002. Dissolved organic carbon in sediments from the eastern North Atlantic. Mar. Chem., 79(1):37–47. doi:10.1016/​S0304-4203(02)00055-5

Prahl, F.G., Ertel, J.R., Goni, M.A., Sparrow, M.A., and Eversmeyer, B., 1994. Terrestrial organic carbon contributions to sediments on the Washington margin. Geochim. Cosmochim. Acta, 58(14):3035–3048. doi:10.1016/​0016-7037(94)90177-5

Redfield, A.C., 1934. On the proportions of organic derivatives in sea water and their relation to the composition of plankton. In Daiel, R.J. (Ed.), James Johnson Memorial Volume: Liverpool (Univ. Press Liverpool), 177–192.

Seifert, R., Emeis, K.-C., Michaelis, W., and Degens, E.T., 1990. Amino acids and carbohydrates in sediments and interstitial waters from Site 681, Leg 112, Peru continental margin. In Suess, E., von Huene, R., et al., Proc. ODP, Sci. Results, 112: College Station, TX (Ocean Drilling Program), 555–566. doi:10.2973/​odp.proc.sr.112.152.1990

Sharp, J.H., Carlson, C.A., Peltzer, E.T., Castle-Ward, D.M., Savidge, K.B., and Rinker, K.R., 2002. Final dissolved organic carbon broad community intercalibration and preliminary use of DOC reference materials. Mar. Chem., 77(4):239–253. doi:10.1016/​S0304-4203(02)00002-6

Simoneit, B.R.T., and Sparrow, M.A., 2002. Dissolved organic carbon in interstitial waters from sediments of Middle Valley and Escanaba Trough, Northeast Pacific, ODP Legs 139 and 169. Appl. Geochem., 17(11):1495–1502. doi:10.1016/​S0883-2927(02)00114-2

Wefer, G., Berger, W.H., Richter, C., et al., 1998. Proc. ODP, Init. Repts., 175: College Station, TX (Ocean Drilling Program). doi:10.2973/​odp.proc.ir.175.1998

Wheat, C.G., Hulme, S.M., Fisher, A.T., Orcutt B.N., and Becker, K., 2013. Seawater recharge into oceanic crust: IODP Exp. 327 Site U1363 Grizzly Bare outcrop. Geochem., Geophys., Geosyst., 14(6):1957–1972. doi:10.1002/​ggge.20131