Effect of growth rate on diamond composition
暂无分享,去创建一个
[1] O. Navon,et al. Fluid Inclusions in Fibrous Diamonds , 2022, Reviews in Mineralogy and Geochemistry.
[2] S. Aulbach,et al. Mineral Inclusions in Lithospheric Diamonds , 2022, Reviews in Mineralogy and Geochemistry.
[3] Y. Marrocchi,et al. Nitrogen diffusion in silicate melts under reducing conditions , 2021, American Mineralogist.
[4] A. Ragozin,et al. Subduction related population of diamonds in Yakutian placers, northeastern Siberian platform , 2020, Contributions to Mineralogy and Petrology.
[5] R. Wirth,et al. Diamond-rich placer deposits from iron-saturated mantle beneath the northeastern margin of the Siberian Craton , 2020 .
[6] M. Lilley,et al. Kinetic carbon isotope fractionation links graphite and diamond precipitation to reduced fluid sources , 2020 .
[7] I. Estève,et al. The growth of lithospheric diamonds , 2018, Science Advances.
[8] R. Stern,et al. Carbon and nitrogen systematics in nitrogen-rich, ultradeep diamonds from Sao Luiz, Brazil , 2018, Mineralogy and Petrology.
[9] M. Wiedenbeck,et al. Evidence for large scale fractionation of carbon isotopes and of nitrogen impurity during crystallization of gem quality cubic diamonds from placers of North Yakutia , 2017, Geochemistry International.
[10] R. Luth,et al. Carbon isotope fractionation during diamond growth in depleted peridotite: counterintuitive insights from modelling water-maximum CHO fluids as multi-component systems , 2017 .
[11] Yuri N. Palyanov,et al. Iron carbide as a source of carbon for graphite and diamond formation under lithospheric mantle P-T parameters , 2017 .
[12] P. Kowalski,et al. Experimental and Theoretical Evidence for Surface-Induced Carbon and Nitrogen Fractionation during Diamond Crystallization at High Temperatures and High Pressures , 2017 .
[13] S. H. Richardson,et al. Large gem diamonds from metallic liquid in Earth’s deep mantle , 2016, Science.
[14] R. Stern,et al. Carbon and nitrogen isotope systematics in diamond: Different sensitivities to isotopic fractionation or a decoupled origin? , 2016 .
[15] A. Steele,et al. Diamond growth from C–H–N–O recycled fluids in the lithosphere: Evidence from CH 4 micro-inclusions and δ 13 C– δ 15 N–N content in Marange mixed-habit diamonds , 2016 .
[16] B. Feigelson,et al. Linear growth rate and sectorial growth dynamics of diamond crystals grown by the temperature-gradient techniques (Fe–Ni–C system) , 2016, Geochemistry International.
[17] R. Stern,et al. Early Archaean tectonics and mantle redox recorded in Witwatersrand diamonds , 2016 .
[18] L. Heaman,et al. A nitrogen isotope fractionation factor between diamond and its parental fluid derived from detailed SIMS analysis of a gem diamond and theoretical calculations , 2015 .
[19] V. Shatsky,et al. Diamondiferous subcontinental lithospheric mantle of the northeastern Siberian Craton: Evidence from mineral inclusions in alluvial diamonds , 2015 .
[20] W. Griffin,et al. Nitrogen isotope systematics and origins of mixed-habit diamonds , 2015 .
[21] R. Luth,et al. Diamond formation — Where, when and how? , 2015 .
[22] A. Shiryaev,et al. Defects in cubic diamonds from the placers in the northeastern Siberian platform: results of IR microspectrometry , 2015 .
[23] Yuri N. Palyanov,et al. Isotope fractionation of carbon during diamond crystallization in model systems , 2015 .
[24] R. Luth,et al. The buffering capacity of lithospheric mantle: implications for diamond formation , 2014, Contributions to Mineralogy and Petrology.
[25] I. Franchi,et al. Empirical evidence for the fractionation of carbon isotopes between diamond and iron carbide from the Earth's mantle , 2014 .
[26] Yuri N. Palyanov,et al. Mantle–slab interaction and redox mechanism of diamond formation , 2013, Proceedings of the National Academy of Sciences.
[27] D. Pearson,et al. Multiple growth events, processes and fluid sources involved in diamond genesis: A micro-analytical study of sulphide-bearing diamonds from Finsch mine, RSA , 2013 .
[28] D. Pearson,et al. Micron-scale coupled carbon isotope and nitrogen abundance variations in diamonds: Evidence for episodic diamond formation beneath the Siberian Craton , 2013 .
[29] Y. Palyanov,et al. Effect of diamond growth rate on carbon isotope fractionation in Fe–Ni–C system , 2012 .
[30] W. Griffin,et al. Fibrous diamonds from the placers of the northeastern Siberian Platform : carbonate and silicate crystallization media , 2011 .
[31] K. Muehlenbachs,et al. Diamond growth from oxidized carbon sources beneath the Northern Slave Craton, Canada: A δ13C–N study of eclogite-hosted diamonds from the Jericho kimberlite , 2011 .
[32] Yuri N. Palyanov,et al. Effect of Nitrogen Impurity on Diamond Crystal Growth Processes , 2010 .
[33] C. McCammon,et al. Local environment and valence state of iron in microinclusions in fibrous diamonds: X-ray absorption and Mössbauer data , 2010 .
[34] K. Muehlenbachs,et al. Sources of carbon in inclusion bearing diamonds , 2009 .
[35] A. Ragozin,et al. New data on the growth environment of diamonds of the variety V from placers of the northeastern Siberian platform , 2009 .
[36] W. Griffin,et al. A new model for the evolution of diamond-forming fluids , 2009 .
[37] P. Cartigny,et al. Diamonds and eclogites of the Jericho kimberlite (Northern Canada) , 2009 .
[38] Yuri N. Palyanov,et al. Monitoring diamond crystal growth, a combined experimental and SIMS study , 2008 .
[39] K. Viljoen,et al. Methane-related diamond crystallization in the Earth's mantle: Stable isotope evidences from a single diamond-bearing xenolith , 2007 .
[40] B. Harte,et al. Directional chemical variations in diamonds showing octahedral following cuboid growth , 2006 .
[41] E. Hauri,et al. Chemical, optical, and isotopic investigations of fibrous diamonds from Brazil , 2005 .
[42] B. Harte,et al. Microscale variations of δ13C and N content within a natural diamond with mixed-habit growth , 2004 .
[43] R. H. Wentorf,et al. The growth of large diamond crystals , 2004, Naturwissenschaften.
[44] B. Griffin,et al. Carbon and nitrogen isotope systematics within a sector-growth diamond from the Mir kimberlite, Yakutia , 2002 .
[45] H. Sumiya,et al. Growth rate of high-quality large diamond crystals , 2002 .
[46] P. Cartigny,et al. Diamond genesis, mantle fractionations and mantle nitrogen content: a study of δ13C–N concentrations in diamonds , 2001 .
[47] R. Ramesh,et al. Rayleigh fractionation of stable isotopes from a multicomponent source , 2000 .
[48] J. Harris,et al. Carbon isotope ratios and nitrogen abundances in relation to cathodoluminescence characteristics for some diamonds from the Kaapvaal Province, S. Africa , 1999, Mineralogical Magazine.
[49] W. Griffin,et al. Mineral inclusions in diamonds from the Sputnik kimberlite pipe, Yakutia , 1997 .
[50] V. Polyakov,et al. The use of heat capacity data to calculate carbon isotope fractionation between graphite, diamond, and carbon dioxide: a new approach , 1995 .
[51] G. D. Price,et al. Molecular dynamics simulations of CaCO3 melts to mantle pressures and temperatures: implications for carbonatite magmas , 1995 .
[52] F. Pineau,et al. Modelling the growth of natural diamonds , 1994 .
[53] O. Navon,et al. Hydrous and carbonatitic mantle fluids in fibrous diamonds from Jwaneng, Botswana , 1994 .
[54] R. Clayton,et al. Oxygen and carbon isotope fractionations between CO2 and calcite , 1991 .
[55] Ė. Galimov. Isotope fractionation related to kimberlite magmatism and diamond formation , 1991 .
[56] C. Pillinger,et al. Fractionation of nitrogen isotopes in a synthetic diamond of mixed crystal habit , 1988, Nature.
[57] Ė. Galimov. Variations in the isotope composition of diamonds and their relation to the conditions of diamond formation , 1984 .
[58] P. Deines. The carbon isotopic composition of diamonds: relationship to diamond shape, color, occurrence and vapor composition , 1980 .
[59] P. Richet,et al. A Review of Hydrogen, Carbon, Nitrogen, Oxygen, Sulphur, and Chlorine Stable Isotope Fractionation Among Gaseous Molecules , 1977 .
[60] Y. Kojima,et al. On the Measurements of Diffusion Coefficients of Nitrogen in the Liquid Iron , 1973 .
[61] H. M. Strong,et al. Diamond growth rates and physical properties of laboratory-made diamond , 1971 .
[62] R. Prim,et al. The Distribution of Solute in Crystals Grown from the Melt. Part I. Theoretical , 1953 .