Matches in SemOpenAlex for { <https://semopenalex.org/work/W1988239784> ?p ?o ?g. }
- W1988239784 endingPage "119" @default.
- W1988239784 startingPage "103" @default.
- W1988239784 abstract "A sediment core containing a yellowish-green clay bed was recovered from an area of extensive hydrothermal deposition at the SE slope of the Eolo Seamount, Tyrrhenian Sea. The clay bed is composed of pure nontronite (described for the first time in the Tyrrhenian Sea), which appears to be the most aluminous nontronite ever found among the seafloor hydrothermal deposits. The high Al content suggests precipitation from Al-containing hydrothermal solutions. The REE distribution of the Eolo nontronite has a V-shape pattern. The heavy REE enrichment is in part due to their preferential partitioning in the nontronite structure. This enrichment was possibly further enhanced by the HREE preferential sorption on bacterial cell walls. The light REE enrichment is the result of scavenging uptake by one of the nontronite precursors, i.e., poorly-ordered Fe-oxyhydroxides, from the hydrothermal fluids. Oxygen isotopic composition of the nontronite yields a formation temperature of 30 °C, consistent with a low-temperature hydrothermal origin. The relatively radiogenic Nd isotopic signature of the nontronite compared to the present-day Mediterranean seawater indicates that approximately half of Nd, and presumably the rest of the LREE, are derived from local volcanic sources. On the other hand, 87Sr/86Sr is dominated by present-day seawater Sr. Scanning electron microscopy investigation revealed that the nontronite is composed of aggregates of lepispheres and tube-like filaments, which are indicative of bacteria assisted precipitation. Bacteria inhabiting this hydrothermal site likely acted as reactive geochemical surfaces on which poorly-ordered hydrothermal Fe-oxyhydroxides and silica precipitated. Upon aging, the interactions of these primary hydrothermal precipitates coating bacterial filaments and cell walls likely led to the formation of nontronite. Finally, the well-balanced interlayer and layer charges of the crystal lattice of seafloor hydrothermal nontronite decrease its sorption capacity to zero. Thus the ubiquitous nontronite precipitation along the active plate boundaries and around the hot spots has no significant impact on oceanic trace element chemistry." @default.
- W1988239784 created "2016-06-24" @default.
- W1988239784 creator A5006346869 @default.
- W1988239784 creator A5008240765 @default.
- W1988239784 creator A5033279586 @default.
- W1988239784 creator A5035587245 @default.
- W1988239784 creator A5039451905 @default.
- W1988239784 creator A5040362819 @default.
- W1988239784 creator A5082640630 @default.
- W1988239784 creator A5084542168 @default.
- W1988239784 creator A5086789662 @default.
- W1988239784 date "2007-10-01" @default.
- W1988239784 modified "2023-09-26" @default.
- W1988239784 title "Hydrothermal nontronite formation at Eolo Seamount (Aeolian volcanic arc, Tyrrhenian Sea)" @default.
- W1988239784 cites W1601995118 @default.
- W1988239784 cites W1963935934 @default.
- W1988239784 cites W1966804279 @default.
- W1988239784 cites W1968553125 @default.
- W1988239784 cites W1971593557 @default.
- W1988239784 cites W1975968887 @default.
- W1988239784 cites W1976201934 @default.
- W1988239784 cites W1976777320 @default.
- W1988239784 cites W1983023133 @default.
- W1988239784 cites W1985221733 @default.
- W1988239784 cites W1985747057 @default.
- W1988239784 cites W1990176899 @default.
- W1988239784 cites W1998883917 @default.
- W1988239784 cites W1999284894 @default.
- W1988239784 cites W2000060983 @default.
- W1988239784 cites W2007169604 @default.
- W1988239784 cites W2011454716 @default.
- W1988239784 cites W2014108978 @default.
- W1988239784 cites W2015092328 @default.
- W1988239784 cites W2017328271 @default.
- W1988239784 cites W2019968346 @default.
- W1988239784 cites W2020140234 @default.
- W1988239784 cites W2020266740 @default.
- W1988239784 cites W2021904361 @default.
- W1988239784 cites W2023118744 @default.
- W1988239784 cites W2024781244 @default.
- W1988239784 cites W2025636523 @default.
- W1988239784 cites W2028651219 @default.
- W1988239784 cites W2032253199 @default.
- W1988239784 cites W2034934500 @default.
- W1988239784 cites W2035708421 @default.
- W1988239784 cites W2037092135 @default.
- W1988239784 cites W2038247724 @default.
- W1988239784 cites W2039561509 @default.
- W1988239784 cites W2045916221 @default.
- W1988239784 cites W2059387840 @default.
- W1988239784 cites W2060169581 @default.
- W1988239784 cites W2060712412 @default.
- W1988239784 cites W2060812118 @default.
- W1988239784 cites W2062152213 @default.
- W1988239784 cites W2063862154 @default.
- W1988239784 cites W2067048248 @default.
- W1988239784 cites W2068202901 @default.
- W1988239784 cites W2071891261 @default.
- W1988239784 cites W2075846232 @default.
- W1988239784 cites W2079765725 @default.
- W1988239784 cites W2088422039 @default.
- W1988239784 cites W2090254002 @default.
- W1988239784 cites W2091429053 @default.
- W1988239784 cites W2092452736 @default.
- W1988239784 cites W2093417455 @default.
- W1988239784 cites W2094354918 @default.
- W1988239784 cites W2094967033 @default.
- W1988239784 cites W2102355276 @default.
- W1988239784 cites W2102814018 @default.
- W1988239784 cites W2114218473 @default.
- W1988239784 cites W2124858532 @default.
- W1988239784 cites W2142638601 @default.
- W1988239784 cites W2142811243 @default.
- W1988239784 cites W2143282646 @default.
- W1988239784 cites W2145783697 @default.
- W1988239784 cites W2147545219 @default.
- W1988239784 cites W2150765408 @default.
- W1988239784 cites W2155927888 @default.
- W1988239784 cites W2168499555 @default.
- W1988239784 cites W2169642074 @default.
- W1988239784 cites W4234820532 @default.
- W1988239784 doi "https://doi.org/10.1016/j.chemgeo.2007.08.006" @default.
- W1988239784 hasPublicationYear "2007" @default.
- W1988239784 type Work @default.
- W1988239784 sameAs 1988239784 @default.
- W1988239784 citedByCount "63" @default.
- W1988239784 countsByYear W19882397842012 @default.
- W1988239784 countsByYear W19882397842013 @default.
- W1988239784 countsByYear W19882397842014 @default.
- W1988239784 countsByYear W19882397842015 @default.
- W1988239784 countsByYear W19882397842016 @default.
- W1988239784 countsByYear W19882397842017 @default.
- W1988239784 countsByYear W19882397842018 @default.
- W1988239784 countsByYear W19882397842019 @default.
- W1988239784 countsByYear W19882397842020 @default.
- W1988239784 countsByYear W19882397842021 @default.
- W1988239784 countsByYear W19882397842022 @default.
- W1988239784 countsByYear W19882397842023 @default.