The effects of submarine alteration and phosphatization on igneous rocks: Implications for Sr-, Nd-, Pb-isotope studies
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D. Garbe‐Schönberg | F. Hauff | M. Portnyagin | K. Hoernle | J. Geldmacher | A. Dürkefälden | T. Sano
[1] M. Cooper,et al. Chemical isolation and isotopic analysis of terrigenous sediments with emphasis on effective removal of contaminating marine phases including barite , 2021, Chemical Geology.
[2] D. Garbe‐Schönberg,et al. Papanin Ridge and Ojin Rise Seamounts (Northwest Pacific): Dual Hotspot Tracks Formed by the Shatsky Plume , 2021, Geochemistry, Geophysics, Geosystems.
[3] F. Hauff,et al. Origin of isolated seamounts in the Canary Basin (East Atlantic): The role of plume material in the origin of seamounts not associated with hotspot tracks , 2020, Terra Nova.
[4] K. Kirsimäe,et al. REE+Y uptake and diagenesis in Recent sedimentary apatites , 2019, Chemical Geology.
[5] Xuefa Shi,et al. Evaluating the effect of leaching on trace element and Nd-Pb isotopic systematics in continental basalts , 2019, Solid Earth Sciences.
[6] F. Hauff,et al. RV SONNE Fahrtbericht / Cruise Report SO265 - SHATSKY EVOLUTION: Evolution of the Shatsky Rise Hotspot System, Yokohama (Japan) – Kaohsiung (Taiwan), 26.08. – 11.10.2018 , 2018 .
[7] A. Paytan,et al. Barium bioaccumulation by bacterial biofilms and implications for Ba cycling and use of Ba proxies , 2018, Nature Communications.
[8] A. Koschinsky,et al. Marine Phosphorites as Potential Resources for Heavy Rare Earth Elements and Yttrium , 2016 .
[9] M. Reuter,et al. Orbitally paced phosphogenesis in Mediterranean shallow marine carbonates during the middle Miocene Monterey event , 2016, Geochemistry, geophysics, geosystems : G(3).
[10] S. Goldstein,et al. High Precision Sr‐Nd‐Hf‐Pb Isotopic Compositions of USGS Reference Material BCR‐2 , 2016 .
[11] D. Garbe‐Schönberg,et al. From the lavas to the gabbros: 1.25 km of geochemical characterization of upper oceanic crust at ODP/IODP Site 1256, eastern equatorial Pacific , 2014 .
[12] A. Koschinsky,et al. Discriminating between different genetic types of marine ferro-manganese crusts and nodules based on rare earth elements and yttrium , 2014 .
[13] D. Weis,et al. Plume versus plate origin for the Shatsky Rise oceanic plateau (NW Pacific): Insights from Nd, Pb and Hf isotopes , 2014 .
[14] M. Merroun,et al. Biosorption and Biomineralization of U(VI) by the Marine Bacterium Idiomarina loihiensis MAH1: Effect of Background Electrolyte and pH , 2014, PloS one.
[15] K. Gillis,et al. Evidence that low‐temperature oceanic hydrothermal systems play an important role in the silicate‐carbonate weathering cycle and long‐term climate regulation , 2013 .
[16] Tianyu Chen,et al. Lead isotope provinciality of central North Pacific Deep Water over the Cenozoic , 2013 .
[17] T. Plank,et al. Geochemical Fluxes During Seafloor Alteration of the Basaltic Upper Oceanic Crust: DSDP Sites 417 and 418 , 2013 .
[18] J. Mahoney. An Isotopic Survey of Pacific Oceanic Plateaus: Implications for their Nature and Origin , 2013 .
[19] M. Thirlwall,et al. Dissolution methods for strontium isotope stratigraphy: Guidelines for the use of bulk carbonate and phosphorite rocks , 2011 .
[20] K. Haase,et al. On- and off-axis chemical heterogeneities along the South Atlantic Mid-Ocean-Ridge (5–11°S): Shallow or deep recycling of ocean crust and/or intraplate volcanism? , 2011 .
[21] D. Weis,et al. Effects of acid leaching on the Sr‐Nd‐Hf isotopic compositions of ocean island basalts , 2010 .
[22] William M. White,et al. Oceanic Island Basalts and Mantle Plumes: The Geochemical Perspective , 2010 .
[23] J. Moyen. High Sr/Y and La/Yb ratios: The meaning of the “adakitic signature” , 2009 .
[24] D. Weis,et al. Leaching systematics and matrix elimination for the determination of high‐precision Pb isotope compositions of ocean island basalts , 2009 .
[25] A. Koschinsky,et al. Oxidative scavenging of cerium on hydrous Fe oxide: Evidence from the distribution of rare earth elements and yttrium between Fe oxides and Mn oxides in hydrogenetic ferromanganese crusts , 2009 .
[26] A. Kerr,et al. Evaluation of the effects of alteration and leaching on Sm-Nd and Lu-Hf systematics in submarine mafic rocks , 2008 .
[27] W. Strauch,et al. Arc-parallel flow in the mantle wedge beneath Costa Rica and Nicaragua , 2008, Nature.
[28] F. Hauff,et al. Boron isotope geochemistry and U–Pb systematics of altered MORB from the Australian Antarctic Discordance (ODP Leg 187) , 2007 .
[29] A. Hofmann,et al. GeoReM: A New Geochemical Database for Reference Materials and Isotopic Standards , 2005 .
[30] F. Hauff,et al. Sr‐Nd isotope systematics in 14–28 Ma low‐temperature altered mid‐ocean ridge basalt from the Australian Antarctic Discordance, Ocean Drilling Program Leg 187 , 2005 .
[31] F. Hauff,et al. Sr‐Nd‐Pb composition of Mesozoic Pacific oceanic crust (Site 1149 and 801, ODP Leg 185): Implications for alteration of ocean crust and the input into the Izu‐Bonin‐Mariana subduction system , 2003 .
[32] B. Peucker‐Ehrenbrink,et al. Geochemistry of hydrothermally altered oceanic crust: DSDP/ODP Hole 504B – Implications for seawater‐crust exchange budgets and Sr‐ and Pb‐isotopic evolution of the mantle , 2003 .
[33] P. Chevallier,et al. Phosphatization of basaltic rocks from Sal Island, Cape Verde Archipelago: A microtopochemical approach using synchrotron radiation X-ray fluorescence , 2003 .
[34] R. Howarth,et al. Strontium Isotope Stratigraphy: LOWESS Version 3: Best Fit to the Marine Sr‐Isotope Curve for 0–509 Ma and Accompanying Look‐up Table for Deriving Numerical Age , 2001, The Journal of Geology.
[35] G. Tilton,et al. Large volume recycling of oceanic lithosphere over short time scales: geochemical constraints from the Caribbean Large Igneous Province , 2000 .
[36] W. Ridley,et al. Low-temperature alteration of dredged volcanics from the Southern Chile Ridge: additional information about early stages of seafloor weathering , 1999 .
[37] M. Bau. Controls on the fractionation of isovalent trace elements in magmatic and aqueous systems: evidence from Y/Ho, Zr/Hf, and lanthanide tetrad effect , 1996 .
[38] K. Föllmi,et al. The phosphorus cycle, phosphogenesis and marine phosphate-rich deposits , 1996 .
[39] J. Hein,et al. Two major Cenozoic episodes of phosphogenesis recorded in equatorial Pacific seamount deposits , 1993 .
[40] C. Garbe-Schönberg. SIMULTANEOUS DETERMINATION OF THIRTY‐SEVEN TRACE ELEMENTS IN TWENTY‐EIGHT INTERNATIONAL ROCK STANDARDS BY ICP‐MS , 1993 .
[41] S. Verma. Seawater alteration effects on REE, K, Rb, Cs, Sr, U, Th, Pb and Sr–Nd–Pb isotope systematics of Mid-Ocean Ridge Basalt , 1992 .
[42] S. Wood. The aqueous geochemistry of the rare-earth elements and yttrium: 2. Theoretical predictions of speciation in hydrothermal solutions to 350°C at saturation water vapor pressure , 1990 .
[43] C. German,et al. Application of the Ce anomaly as a paleoredox indicator: The ground rules , 1990 .
[44] P. Sheldonr,et al. Ancient Marine Phosphorites , 1981 .
[45] S. Nagasawa,et al. Rocks with negative cerium anomalies, dredged from Shatsky Rise. , 1975 .
[46] S. Hart,et al. Sea floor basalt alteration: Some chemical and Sr isotopic effects , 1974 .
[47] D. Z. Piper. Rare earth elements in ferromanganese nodules and other marine phases , 1974 .
[48] W. McDonough,et al. Chemical and isotopic systematics of oceanic basalts: implications for mantle composition and processes , 1989, Geological Society, London, Special Publications.
[49] R. Finkel,et al. Isotopic evidence for uranium exchange during low-temperature alteration of oceanic basalt , 1979 .