REFERENCES

Arthur, M.A., Kump, L., Dean, W., and Larson, R., 1991. Superplume? Supergreenhouse? Eos, Trans. Am. Geophys. Union, 72:301.

Arthur, M.A., Schlanger, S.O., and Jenkyns, H.C., 1987. The Cenomanian–Turonian oceanic anoxic event, II. Palaeoceanographic controls on organic-matter production and preservation. In Brooks, J., and Fleet, A.J. (Eds.), Marine Petroleum Source Rocks. Geol. Soc. Spec. Publ., 26:401–420.

Bralower, T.J., Arthur, M.A., Leckie, R.M., Sliter, W.V., Allard, D.J., and Schlanger, S.O., 1994. Timing and paleoceanography of oceanic dysoxia/anoxia in the late Barremian to early Aptian. Palaios, 9:335–369.

Bralower, T.J., Premoli Silva, I., Malone, M.J., et al., 2002. Proc. ODP, Init. Repts., 198 [CD-ROM]. Available from: Ocean Drilling Program, Texas A&M University, College Station TX 77845-9547, USA. [HTML version]

Bralower, T.J., Sliter, W.V., Arthur, M.A., Leckie, R.M., Allard, D.J., and Schlanger, S.O., 1993. Dysoxic/anoxic episodes in the Aptian–Albian (Early Cretaceous). In Pringle, M.S., Sager, W.W., Sliter, W.V., and Stein, S. (Eds.), The Mesozoic Pacific: Geology, Tectonics, and Volcanism. Geophys. Monogr., 77:5–37.

Bralower, T.J., and Thierstein, H.R., 1984. Organic carbon and metal accumulation rates in Holocene and mid-Cretaceous sediments: paleogeographic significance. In Brooks, J., and Fleet, A.J. (Eds.), Marine Petroleum Source Rocks: Spec. Publ.—Geol. Soc. London, 345–369.

Chafetz, H.S., and Reid, A., 2000. Syndepositional shallow-water precipitation of glauconitic minerals. Sediment. Geol., 136:29–42.

Coccioni, R., Erba, E., and Premoli Silva, I., 1992. Barremian–Aptian calcareous plankton biostratigraphy from the Gorgo Cerbara section (Marche, central Italy) and implications for plankton evolution. Cretaceous Res., 13:517–537.

Coffin, M.F., and Ingle, S., 2003. Impact origin for the greater Ontong Java Plateau? Geophysical and geodynamical evidence. Eos, Trans. Am. Geophys. Union, 46 (Suppl.):V12B-0576. (Abstract)

Dean, W.E., Claypool, G.E., and Thiede, J., 1981. Origin of organic-carbon-rich mid-Cretaceous limestones, Mid-Pacific Mountains and southern Hess Rise. In Thiede, J., Vallier, T.L., et al., Init. Repts. DSDP, 62: Washington (U.S. Govt. Printing Office), 877–890.

Dean, W.E., Claypool, G.E., and Thiede, J., 1984. Accumulation of organic matter in Cretaceous oxygen-deficient depositional environments in the central Pacific Ocean. Org. Geochem., 7:39–51.

Erba, E., 1994. Nannofossils and superplumes: the early Aptian "nannoconids crisis." Paleoceanography, 9:483–501.

Fisher, R.V., and Schmincke, H.-U., 1984. Pyroclastic Rocks: New York (Springer-Verlag).

Grant, C.W., 1991. Distribution of bacterial mats (Beggiatoa spp.) in Santa Barbara Basin, California: a modern analog for organic-rich facies of the Monterey Formation [M.S. thesis]. California State Univ., Long Beach.

Hein, J.R., and Vanek, E., 1981. Origin and alteration of volcanic ash and pelagic brown clay, Deep Sea Drilling Project Leg 62, north-central Pacific. In Thiede, J., Vallier, T.L., et al., Init. Repts. DSDP, 62: Washington (U.S. Govt. Printing Office), 559–569.

Hochuli, P., Menegatti, A.P., Weissert, H., and Erba, E., 1999. High-productivity and cooling episodes in the early Aptian Alpine Tethys. Geology, 27:657–660.

Ingle, S., and Coffin, M., 2004. Impact origin of the greater Ontong Java Plateau? Earth Planet. Sci. Lett., 218:123–134.

Ingle, S., and Coffin, M.F., 2003. Impact origin for the greater Ontong Java Plateau? Geochemical and petrologic evidence. Eos, Trans. Am. Geophys. Union, 84(46):V12B-0575. (Abstract)

Jeans, C.V., Wray, D.S., Merriman, R.J., and Fisher, M.J., 2000. Volcanogenic clays in Jurassic and Cretaceous strata of England and the North Sea Basin. Clay Miner., 35:25–55.

Larson, R.L., 1991a. Geological consequences of superplumes. Geology, 19:963–966.

Larson, R.L., 1991b. Latest pulse of Earth: evidence for a mid-Cretaceous super plume. Geology, 19:547–550.

Larson, R.L., and Erba, E., 1999. Onset of the Mid-Cretaceous greenhouse in the Barremian–Aptian: igneous events and the biological, sedimentary and geochemical responses. Paleoceanography, 14:663–678.

Larson, R.L., Moberly, R., et al., 1975. Init. Repts. DSDP, 32: Washington (U.S. Govt. Printing Office).

Leckie, R.M., Bralower, T.J., and Cashman, R., 2002. Oceanic anoxic events and plankton evolution: biotic response to tectonic forcing during the mid-Cretaceous. Paleoceanography, 17:10.1029/2001PA000623.

Mahoney, J.J., Duncan, R.A., Tejada, M.L.G., Sager, W.W., and Bralower, T.J., 2005. Jurassic–Cretaceous boundary age and mid-ocean ridge-type mantle source for Shatsky Rise. Geology, 33:185–188.

Mahoney, J.J., Fitton, G., Wallace, P., and the Leg 192 Scientific Party, 2001. ODP Leg 192: basement drilling on the Ontong Java Plateau. JOIDES J., 27(2):2–11.

Mahoney, J.J., Fitton, J.G., Wallace, P.J., et al., 2001. Proc. ODP, Init. Repts., 192 [CD-ROM]. Available from: Ocean Drilling Program, Texas A&M University, College Station, TX 77845-9547 USA. [HTML version]

Marsaglia, K.M., 1992. Petrography and provenance of volcaniclastic sands recovered from the Izu-Bonin arc, Leg 126. In Taylor, B., Fujioka, K., et al., Proc. ODP, Sci. Results, 126: College Station, TX (Ocean Drilling Program), 139–154.

Marsaglia, K.M., 1993. Basaltic island sand provenance. In Johnsson, M.J., and Basu, A. (Eds.), Processes Controlling the Composition of Clastic Sediments. Spec. Pap.—Geol. Soc. Am., 284:41–65.

Marsaglia, K.M., Mann, P., Hyatt, R.J., and Olson, H.C., 1999. Evaluating the influence of aseismic ridge subduction and accretion (?) on detrital modes of forearc sandstone: an example form the Kronotsky Peninsula in the Kamchatka forearc. Lithos, 46:17–42.

Mélières, F., Deroo, G., and Herbin, J.-P., 1981. Organic-matter-rich and hypersiliceous Aptian sediments from western Mid-Pacific Mountains, Deep Sea Drilling Project Leg 62. In Thiede, J., Vallier, T.L., et al., Init. Repts. DSDP, 62: Washington (U.S. Govt. Printing Office), 903–915.

Nagel, U., and Schumann, D., 1981. X-ray mineralogy of sediments, Deep Sea Drilling Project 62. In Thiede, J., Vallier, T.L., et al., Init. Repts. DSDP, 62: Washington (U.S. Govt. Printing Office), 529–535.

Nakanishi, M., Sager, W.W., and Klaus, A., 1999. Magnetic lineations within Shatsky Rise, northwest Pacific Ocean: implications for hot spot–triple junction interaction and oceanic plateau formation. J. Geophys. Res., 104:7539–7556.

Pedersen, T.F., and Calvert, S.E., 1990. Anoxia vs. productivity: what controls the formation of organic-carbon-rich sediments and sedimentary rocks? AAPG Bull., 74:454–466.

Premoli Silva, I., Erba, E., Salvini, G., Locatelli, C., and Verga, D., 1999. Biotic changes in Cretaceous oceanic anoxic events of the Tethys. J. Foraminiferal Res., 29:352–370.

Rateev, M.A., Timofeev, P.P., and Koporulin, V.I., 1981. Clay minerals in Mesozoic and Cenozoic sediments of Deep Sea Drilling Project Leg 62. In Thiede, J., Vallier, T.L., et al., Init. Repts. DSDP, 62: Washington (U.S. Govt. Printing Office), 537–544.

Roberge, J., White, R., Wallace, P., and Coffin, M., 2003. Anomalous subsidence of the Ontong Java Plateau (ODP Leg 192). Eos, Trans. Am. Geophys. Union, 84(46):V12B-0574. (Abstract)

Sager, W.W., Handschumacher, D.W., Hilde, T.W.C., and Bracey, D.R., 1988. Tectonic evolution of the northern Pacific plate and Pacific-Farallon-Izanagi triple junction in the Late Jurassic and Early Cretaceous (M21–M10). Tectonophysics, 155:345–364.

Sager, W.W., Kim, J., Klaus, A., Nakanishi, M., and Khankishieva, L.M., 1999. Bathymetry of Shatsky Rise, northwest Pacific Ocean: implications for ocean plateau development at a triple junction. J. Geophys. Res., [Solid Earth Planets], 104:7557–7576.

Schieber, J., 1999. Microbial mats in terrigenous clastics: the challenge of identification in the rock record. Palaios, 14:3–12.

Schieber, J., 2003. Simple gifts and buried treasures—implications of fining bioturbation and erosion surfaces in black shales. Sediment. Rec., 1:4–8.

Schlanger, S.O., Jenkyns, H.C., and Premoli-Silva, I., 1981. Volcanism and vertical tectonics in the Pacific Basin related to global Cretaceous transgressions. Earth Planet. Sci. Lett., 52:435–449.

Shipboard Scientific Party, 1981. Site 463: western Mid-Pacific Mountains. In Thiede, J., Vallier, T.L., et al., Init. Repts. DSDP, 62: Washington (U.S. Govt. Printing Office), 33–156.

Simonson, B.M., and Carney, K.E., 1999. Roll-up structures: evidence of in situ microbial mats in late Archaen deep shelf environments. Palaios, 14:13–24.

Sliter, W.V., 1989. Aptian anoxia in the Pacific Basin. Geology, 17:909–912.

Sliter, W.V., 1999. Cretaceous planktic foraminiferal biostratigraphy of the Calera limestone, northern California, USA. J. Foraminiferal Res., 29:318–329.

Stow, D.A.V., Huc, A.-Y., and Bertrand, P., 2001. Depositional processes of black shales in deep water. Mar. Pet. Geol., 18:491–498.

Tarduno, J.A., Sliter, W.V., Kroenke, L., Leckie, M., Mayer, H., Mahoney, J.J., Musgrave, R., Storey, M., and Winterer, E.L., 1991. Rapid formation of Ontong Java Plateau by Aptian mantle plume volcanism. Science, 254:399–403.

Timofeev, P.P., and Bogolyubova, L.I., 1981. Cretaceous sapropelic deposits of Deep Sea Drilling Project Sites 463, 465, and 466. In Thiede, J., Vallier, T.L., et al., Init. Repts. DSDP, 62: Washington (U.S. Govt. Printing Office), 891–901.

Timofeev, P.P., Renngarten, N.V., and Eremeev, V.V., 1981. Lithologic-genetic characteristics of sediments in a section at Site 463, Deep Sea Drilling Project Leg 62. In Thiede, J., Vallier, T.L., et al., Init. Repts. DSDP, 62: Washington (U.S. Govt. Printing Office), 607–615.

Vallier, T.L., and Jefferson, W.S., 1981. Volcanogenic sediments from Hess Rise and the Mid-Pacific Mountains, Deep Sea Drilling Project Leg 62. In Thiede, J., Vallier, T.L., et al., Init. Repts. DSDP, 62: Washington (U.S. Govt. Printing Office), 545–557.

Vogt, P.R., 1989. Volcanogenic upwelling of anoxic, nutrient-rich water: a possible factor in carbonate-bank/reef demise and benthic faunal extinctions? Geol. Soc. Am. Bull., 101:1225–1245.

Walsh, M.M., and Lowe, D.R., 1999. Modes of accumulation of carbonaceous matter in the early Archaen: a petrographic and geochemical study of the carbonaceous cherts of the Swaziland Supergroup. In Lowe, D.R., and Byerly, G.R. (Eds.), Geologic Evolution of the Barberton Greenstone Belt, South Africa. Spec. Pap.—Geol. Soc. Am., 329:115–132.

Williams, L.A., and Reimers, C., 1983. Role of bacterial mats in oxygen-deficient marine basins and coastal upwelling regimes; preliminary report. Geology, 11:267–269.