Petrographic and geochemical constraints on the formation of gravity‐defying speleothems
暂无分享,去创建一个
S. Voigt | A. Immenhauser | R. Hoffmann | D. Buhl | S. Riechelmann | Mathias Mueller | S. Niggemann | Dennis Scholz | Maximilian Dornseif | Alexander Platte
[1] A. Schröder‐Ritzrau,et al. Long-term elemental trends in drip waters from monitoring Bunker Cave: New insights for past precipitation variability , 2021, Chemical Geology.
[2] A. Immenhauser,et al. Impact of a regional fault zone on the properties of a deep geothermal carbonate reservoir unit (Devonian of NRW) , 2021, Zeitschrift der Deutschen Gesellschaft für Geowissenschaften.
[3] D. Scholz,et al. The effects of drip rate and geometry on the isotopic composition of speleothems: Evaluation with an advection-diffusion-reaction model , 2021, Geochimica et Cosmochimica Acta.
[4] H. Strauss,et al. Seawater chemistry of a modern subtropical ‘epeiric’ sea: Spatial variability and effects of organic decomposition , 2021, Geochimica et Cosmochimica Acta.
[5] Michael Weber,et al. Opposite Trends in Holocene Speleothem Proxy Records From Two Neighboring Caves in Germany: A Multi-Proxy Evaluation , 2021, Frontiers in Earth Science.
[6] G. Nehrke,et al. Late Holocene to Recent aragonite‐cemented transgressive lag deposits in the Abu Dhabi lagoon and intertidal sabkha , 2020, Sedimentology.
[7] S. Constantin,et al. Calcite Mg and Sr partition coefficients in cave environments: Implications for interpreting prior calcite precipitation in speleothems , 2020 .
[8] M. Cao,et al. Calcium carbonate precipitation mediated by bacterial carbonic anhydrase in a karst cave: Crystal morphology and stable isotopic fractionation , 2019 .
[9] A. Mangini,et al. Ventilation and cave air PCO2 in the Bunker-Emst Cave System (NW Germany): implications for speleothem proxy data , 2019, Journal of Cave and Karst Studies.
[10] B. Schöne,et al. Simulating speleothem growth in the laboratory: Determination of the stable isotope fractionation (δ13C and δ18O) between H2O, DIC and CaCO3 , 2019, Chemical Geology.
[11] M. Gemmi,et al. A nanocrystalline monoclinic CaCO3 precursor of metastable aragonite , 2018, Science Advances.
[12] B. Schöne,et al. Carbon isotope exchange between gaseous CO 2 and thin solution films: Artificial cave experiments and a complete diffusion-reaction model , 2017 .
[13] B. Jones. Review of aragonite and calcite crystal morphogenesis in thermal spring systems , 2017 .
[14] M. Andreae,et al. In-situ high spatial resolution LA-MC-ICPMS 230Th/U dating enables detection of small-scale age inversions in speleothems , 2017 .
[15] C. Spötl,et al. Sensitivity of Bunker Cave to climatic forcings highlighted through multi-annual monitoring of rain-, soil-, and dripwaters , 2017 .
[16] D. Hoffmann,et al. Determination of aragonite trace element distribution coefficients from speleothem calcite–aragonite transitions , 2016 .
[17] M. Andreae,et al. 230Th/U dating of Last Interglacial brain corals from Bonaire (southern Caribbean) using bulk and theca wall material , 2016 .
[18] Nicola Tisato,et al. Microbial mediation of complex subterranean mineral structures , 2015, Scientific Reports.
[19] M. Andreae,et al. Lead isotope variability in speleothems—A promising new proxy for hydrological change? First results from a stalagmite from western Germany , 2015 .
[20] S. Constantin,et al. Physicochemical characteristics of drip waters: Influence on mineralogy and crystal morphology of recent cave carbonate precipitates , 2014 .
[21] M. Dietzel,et al. Formation of helictite in the cave Dragon Belly (Sardinia, Italy)—Microstructure and incorporation of Mg, Sr, and Ba , 2014 .
[22] D. Mattey,et al. Reconstructing modern stalagmite growth from cave monitoring, local meteorology, and experimental measurements of dripwater films , 2014 .
[23] Christopher C. Day,et al. Controls on trace-element partitioning in cave-analogue calcite , 2013 .
[24] R. Edwards,et al. Improvements in 230Th dating, 230Th and 234U half-life values, and U–Th isotopic measurements by multi-collector inductively coupled plasma mass spectrometry , 2013 .
[25] D. Scholz,et al. Chemical evolution of dissolved inorganic carbon species flowing in thin water films and its implications for (rapid) degassing of CO2 during speleothem growth , 2013 .
[26] R. Harrison,et al. Cave aerosols: distribution and contribution to speleothem geochemistry , 2013 .
[27] K. Jochum,et al. Climate and cave control on Pleistocene/Holocene calcite-to-aragonite transitions in speleothems from Morocco: Elemental and isotopic evidence , 2012 .
[28] E. Makovicky. Twinning of aragonite—the OD approach , 2012, Mineralogy and Petrology.
[29] C. Spötl,et al. Hydrogeochemistry and fractionation pathways of Mg isotopes in a continental weathering system: Lessons from field experiments , 2012 .
[30] J. Fohlmeister,et al. Monitoring Bunker Cave (NW Germany): A prerequisite to interpret geochemical proxy data of speleothems from this site , 2011 .
[31] G. Henderson,et al. Oxygen isotopes in calcite grown under cave-analogue conditions , 2011 .
[32] D. Scholz,et al. Climatic dependence of stable carbon and oxygen isotope signals recorded in speleothems: From soil water to speleothem calcite , 2011 .
[33] N. Taylor,et al. Bacterial Calcium Carbonate Precipitation in Cave Environments: A Function of Calcium Homeostasis , 2010 .
[34] J. Marshall,et al. Speleothem preservation and diagenesis in South African hominin sites implications for paleoenvironments and geochronology , 2009 .
[35] Denis Scholz,et al. Modelling δ13C and δ18O in the solution layer on stalagmite surfaces , 2009 .
[36] Andrea Borsato,et al. Aragonite-Calcite Relationships in Speleothems (Grotte De Clamouse, France): Environment, Fabrics, and Carbonate Geochemistry , 2002 .
[37] D. Northup,et al. Geomicrobiology of Caves: A Review , 2001 .
[38] C. Saiz-Jimenez,et al. Microorganisms and Microbially Induced Fabrics in Cave Walls , 2001 .
[39] Andrea Borsato,et al. Calcite Fabrics, Growth Mechanisms, and Environments of Formation in Speleothems from the Italian Alps and Southwestern Ireland , 2000 .
[40] C. Reinhold. Ancient Helictites and the Formation of Vadose Crystal Silt in Upper Jurassic Carbonates (Southern Germany) , 1998 .
[41] W. G. Wright,et al. Bacteria, fungi and biokarst in Lechuguilla Cave, Carlsbad Caverns National Park, New Mexico , 1995 .
[42] L. González,et al. Inorganic Calcite Morphology: Roles of Fluid Chemistry and Fluid Flow , 1992 .
[43] D. Solomon,et al. On the isotopic composition of carbon in soil carbon dioxide , 1991 .
[44] M. Sarnthein,et al. The Holstein Interglaciation: Time-Stratigraphic Position and Correlation to Stable-Isotope Stratigraphy of Deep-Sea Sediments , 1986, Quaternary Research.
[45] Norman R. Morrow,et al. Physics and Thermodynamics of Capillary Action in Porous Media , 1970 .
[46] R. Clayton,et al. The effect of polymorphism and magnesium substitution on oxygen isotope fractionation between calcium carbonate and water. , 1969 .
[47] L. C. Huff. Artificial Helictites and Gypsum Flowers , 1940, The Journal of Geology.
[48] D. G. Davis. Helictites and related speleothems , 2019, Encyclopedia of Caves.
[49] D. Scholz,et al. Chronology for the Cueva Victoria fossil site (SE Spain): Evidence for Early Pleistocene Afro-Iberian dispersals. , 2016, Journal of human evolution.
[50] S. Frisia. Microstratigraphic logging of calcite fabrics in speleothems as tool for palaeoclimate studies , 2015 .
[51] R. Edwards,et al. Improvements in 230 Th dating , 230 Th and 234 U half-life values , and U – Th isotopic measurements by multi-collector inductively coupled plasma mass spectrometry , 2013 .
[52] C. Self,et al. HOW SPELEOTHEMS GROW: AN INTRODUCTION TO THE ONTOGENY OF CAVE MINERALS , 2003 .
[53] C. Romanek,et al. Carbon isotopic fractionation in synthetic aragonite and calcite: Effects of temperature and precipitation rate , 1992 .
[54] B. Onac. Mineralogy of the Apuseni Mountains Caves , 1992 .
[55] L. González,et al. Controls on Mineralogy and Composition of Spelean Carbonates: Carlsbad Caverns, New Mexico , 1988 .
[56] B. Wilkinson,et al. Kinetic Control of Morphology, Composition, and Mineralogy of Abiotic Sedimentary Carbonates , 1985 .
[57] W. Krebs. Devonian Carbonate Complexes of Central Europe , 1974 .
[58] C. Andrieux. Morphogenèse des hélictites monocristallines , 1965 .
[59] L. J. Spencer. A (Third) List of New Mineral Names1 , 1903 .