Diamond-forming fluids in fibrous diamonds: The trace-element perspective

[1]  R. Duncan,et al.  Geochemistry and geochronology of the Society Islands: New evidence for deep mantle recycling , 2013 .

[2]  A. Stracke Earth's heterogeneous mantle: A product of convection-driven interaction between crust and mantle , 2012 .

[3]  W. Griffin,et al.  High-Mg carbonatitic melts in diamonds, kimberlites and the sub-continental lithosphere , 2011 .

[4]  Don Francis,et al.  Evidence for the survival of the oldest terrestrial mantle reservoir , 2010, Nature.

[5]  W. Griffin,et al.  Trace-element patterns of fibrous and monocrystalline diamonds: Insights into mantle fluids , 2010 .

[6]  I. Kiflawi,et al.  IR spectroscopy: Quantitative determination of the mineralogy and bulk composition of fluid microinclusions in diamonds , 2010 .

[7]  W. McDonough,et al.  Chemical variations and regional diversity observed in MORB , 2010 .

[8]  P. Cartigny,et al.  Mixed fluid sources involved in diamond growth constrained by Sr–Nd–Pb–C–N isotopes and trace elements , 2010 .

[9]  W. Griffin,et al.  Mg and Fe-rich carbonate–silicate high-density fluids in cuboid diamonds from the Internationalnaya kimberlite pipe (Yakutia) , 2009 .

[10]  W. Griffin,et al.  Microinclusions in monocrystalline octahedral diamonds and coated diamonds from Diavik, Slave Craton : clues to diamond genesis , 2009 .

[11]  E. Hauri,et al.  High-Mg carbonatitic microinclusions in some Yakutian diamonds-a new type of diamond-forming fluid , 2009 .

[12]  C. Ottley,et al.  Quantitative analysis of trace element concentrations in some gem-quality diamonds , 2009, Journal of physics. Condensed matter : an Institute of Physics journal.

[13]  W. Griffin,et al.  The Composition and Evolution of Lithospheric Mantle: a Re-evaluation and its Tectonic Implications , 2009 .

[14]  W. Griffin,et al.  A new model for the evolution of diamond-forming fluids , 2009 .

[15]  W. Müller,et al.  A snapshot of mantle metasomatism: Trace element analysis of coexisting fluid (LA-ICP-MS) and silicate (SIMS) inclusions in fibrous diamonds , 2009 .

[16]  W. McDonough,et al.  The K/U ratio of the silicate Earth: Insights into mantle composition, structure and thermal evolution , 2009 .

[17]  R. Carlson,et al.  Composition of the Earth's interior: the importance of early events , 2008, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.

[18]  C. Ottley,et al.  Origin of cratonic lithospheric mantle roots: A geochemical study of peridotites from the North Atlantic Craton, West Greenland , 2008 .

[19]  T. Stachel,et al.  The origin of cratonic diamonds — Constraints from mineral inclusions , 2008 .

[20]  S. Clark,et al.  Primary carbonatite melt from deeply subducted oceanic crust , 2008, Nature.

[21]  S. Eggins,et al.  Constancy of Nb/U in the mantle revisited , 2008 .

[22]  W. Griffin,et al.  Comparison between LA-ICP-MS and EPMA analysis of trace elements in diamonds , 2008 .

[23]  B. Kjarsgaard,et al.  Between carbonatite and lamproite—Diamondiferous Torngat ultramafic lamprophyres formed by carbonate-fluxed melting of cratonic MARID-type metasomes , 2008 .

[24]  W. Griffin,et al.  Composition of trapped fluids in cuboid fibrous diamonds from the Udachnaya kimberlite: LAM-ICPMS analysis , 2007 .

[25]  R. Carlson,et al.  The Origin and Evolution of the Kaapvaal Cratonic Lithospheric Mantle , 2007 .

[26]  K. Mezger,et al.  Nb/Ta and Zr/Hf in ocean island basalts — Implications for crust–mantle differentiation and the fate of Niobium , 2007 .

[27]  E. Hauri,et al.  Fluid inclusions in diamonds from the Diavik mine, Canada and the evolution of diamond-forming fluids , 2007 .

[28]  D. Günther,et al.  The partitioning of trace elements between ilmenite, ulvospinel, armalcolite and silicate melts with implications for the early differentiation of the moon , 2006 .

[29]  A. Jones,et al.  Co-existing fluid and silicate inclusions in mantle diamond , 2006 .

[30]  S. Klemme,et al.  Trace element partitioning between apatite and silicate melts , 2006 .

[31]  D. L. Anderson Speculations on the nature and cause of mantle heterogeneity , 2006 .

[32]  M. Willbold,et al.  Trace element composition of mantle end‐members: Implications for recycling of oceanic and upper and lower continental crust , 2006 .

[33]  W. Griffin,et al.  Quantitative trace-element analysis of diamond by laser ablation inductively coupled plasma mass spectrometry , 2005 .

[34]  D. Günther,et al.  Partitioning of trace elements between rutile and silicate melts: Implications for subduction zones , 2005 .

[35]  P. Cartigny Stable Isotopes and the Origin of Diamond , 2005 .

[36]  S. Hart,et al.  Major and trace element composition of the depleted MORB mantle (DMM) , 2005 .

[37]  S. Kelley,et al.  Syngenetic inclusions of yimengite in diamond from Sese Kimberlite (Zimbabwe) - evidence for metasomatic conditions of growth , 2004 .

[38]  B. Kjarsgaard,et al.  Torngat ultramafic lamprophyres and their relation to the North Atlantic Alkaline Province , 2004 .

[39]  L. Taylor,et al.  Nature of diamonds in Yakutian eclogites: views from eclogite tomography and mineral inclusions in diamonds , 2004 .

[40]  Hong‐fu Zhang,et al.  Geochemical and isotopic investigation of the Laiwu–Zibo carbonatites from western Shandong Province, China, and implications for their petrogenesis and enriched mantle source , 2004 .

[41]  O. Navon,et al.  Fluid and mineral inclusions in cloudy diamonds from Koffiefontein, South Africa , 2004 .

[42]  L. Taylor,et al.  Diamonds: time capsules from the Siberian Mantle , 2004 .

[43]  V. Salters,et al.  Composition of the depleted mantle , 2003 .

[44]  D. Pearson,et al.  Mantle Samples Included in Volcanic Rocks: Xenoliths and Diamonds , 2003 .

[45]  A. Hofmann Sampling mantle heterogeneity through oceanic basalts: Isotopes and trace elements , 2003 .

[46]  F. Vanhaecke,et al.  Possibilities of laser ablation-inductively coupled plasma-mass spectrometry for diamond fingerprinting , 2003 .

[47]  M. Grégoire,et al.  Garnet Lherzolites from the Kaapvaal Craton (South Africa): Trace Element Evidence for a Metasomatic History , 2003 .

[48]  J. Longhi,et al.  Near mantle solidus trace element partitioning at pressures up to 3.4 GPa , 2002 .

[49]  C. Devey,et al.  The role of sediment recycling in EM-1 inferred from Os, Pb, Hf, Nd, Sr isotope and trace element systematics of the Pitcairn hotspot , 2002 .

[50]  M. Grégoire,et al.  Trace element geochemistry of phlogopite-rich mafic mantle xenoliths: their classification and their relationship to phlogopite-bearing peridotites and kimberlites revisited , 2002 .

[51]  S. S. Schmidberger,et al.  Constraints on the Trace Element Composition of the Archean Mantle Root beneath Somerset Island, Arctic Canada , 2001 .

[52]  O. Navon,et al.  Brine inclusions in diamonds: a new upper mantle fluid , 2001 .

[53]  S. M. Bezborodov,et al.  Diamonds and Their Mineral Inclusions, and What They Tell Us: A Detailed “Pull-Apart” of a Diamondiferous Eclogite , 2000 .

[54]  K. H. Wedepohl,et al.  Central European Cenozoic plume volcanism with OIB characteristics and indications of a lower mantle source , 1999 .

[55]  R. Vannucci,et al.  Trace element partitioning between phlogopite, clinopyroxene and leucite lamproite melt , 1999 .

[56]  J. Bodinier,et al.  Evolution of LILE-enriched small melt fractions in the lithospheric mantle: a case study from the East African Rift , 1997 .

[57]  K. Sims,et al.  INFERENCES ABOUT MANTLE MAGMA SOURCES FROM INCOMPATIBLE ELEMENT CONCENTRATION RATIOS IN OCEANIC BASALTS , 1997 .

[58]  C. Koeberl,et al.  Trace element analyses of fluid-bearing diamonds from Jwaneng, Botswana , 1996 .

[59]  J. Steude,et al.  Abundance and Distribution of Diamonds in Eclogite Revealed by Volume Visualization of CT X-Ray Scans , 1996, The Journal of Geology.

[60]  V. Prozesky,et al.  Selected trace and minor element partitioning between peridotite minerals and carbonatite melts at 18-46 kb pressure , 1995 .

[61]  W. McDonough,et al.  The composition of the Earth , 1995 .

[62]  G. Bulanova The formation of diamond , 1995 .

[63]  T. Green Experimental studies of trace-element partitioning applicable to igneous petrogenesis , 1994 .

[64]  F. Pineau,et al.  Modelling the growth of natural diamonds , 1994 .

[65]  W. McDonough Constraints on the composition of the continental lithospheric mantle , 1990 .

[66]  D. McKenzie Some remarks on the movement of small melt fractions in the mantle , 1989 .

[67]  T. Akagi,et al.  Isotopic and elemental evidence for a relationship between kimberlite and Zaire cubic diamonds , 1988, Nature.

[68]  Albrecht W. Hofmann,et al.  Chemical differentiation of the Earth: the relationship between mantle, continental crust, and oceanic crust , 1988 .

[69]  G. Wasserburg,et al.  Mantle-derived fluids in diamond micro-inclusions , 1988, Nature.

[70]  E. Stolper,et al.  Geochemical Consequences of Melt Percolation: The Upper Mantle as a Chromatographic Column , 1987, The Journal of Geology.

[71]  A. Hofmann,et al.  K, U and Th in mid-ocean ridge basalt glasses and heat production, K/U and K/Rb in the mantle , 1983, Nature.

[72]  A. Hofmann,et al.  Ba, Rb and Cs in the Earth's Mantle , 1983 .

[73]  D. Bibby Zonal distribution of impurities in diamond , 1979 .

[74]  V. Goldschmidt On the metasomatic processes in silicate rocks , 1922 .

[75]  M. Tiepolo,et al.  Trace elements and Sr-Nd-Pb isotopes of K-rich, shoshonitic, and calc-alkaline magmatism of the Western Mediterranean Region: Genesis of ultrapotassic to calc-alkaline magmatic associations in a post-collisional geodynamic setting , 2009 .

[76]  E. Hauri,et al.  Chemical, optical, and isotopic investigations of fibrous diamonds from Brazil , 2005 .

[77]  O. Navon,et al.  Hydrous and carbonatitic mantle fluids in fibrous diamonds from Jwaneng, Botswana , 1994 .

[78]  A. Hofmann Geochemical mantle models , 1984 .

[79]  I. Sunagawa Characteristics of crystal growth in nature as seen from the morphology of mineral crystals , 1981 .

[80]  D. Bibby,et al.  A comparative trace element study of diamonds from Premier, Finsch and Jagersfontein mines, South Africa , 1975 .

[81]  A. Hofmann Chromatographic theory of infiltration metasomatism and its application to feldspars , 1972 .

[82]  W. Eppler Inclusions in Diamond , 1961 .