XAFS study of Sb and As in Cretaceous–Tertiary boundary sediments: an index of soiling of the global environment with dust and ashes from impact ejecta falls
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K. Sugiyama | Tsutomu Sato | A. Yoshiasa | M. Okube | T. Tobase | H. Hongu
[1] K. Sugiyama,et al. Weathering and precipitation after meteorite impact of Ni, Cr, Fe, Ca and Mn in K-T boundary clays from Stevns Klint , 2016 .
[2] M. Sakata,et al. Behavior of antimony(V) during the transformation of ferrihydrite and its environmental implications. , 2013, Environmental science & technology.
[3] S. Sasaki,et al. Local structure of Zn in Cretaceous-Tertiary boundary clay from Stevns Klint , 2012 .
[4] M. Tighe,et al. The chemistry and behaviour of antimony in the soil environment with comparisons to arsenic: a critical review. , 2010, Environmental pollution.
[5] M. Sakata,et al. Antimony(V) incorporation into synthetic ferrihydrite, goethite, and natural iron oxyhydroxides. , 2010, Environmental science & technology.
[6] Tsutomu Sato,et al. XAFS Study of As in K‐T Boundary Clays , 2007 .
[7] Yoshio Takahashi,et al. Comparison of antimony behavior with that of arsenic under various soil redox conditions. , 2006, Environmental science & technology.
[8] H. J. Jakobsen,et al. The detailed structure and origin of clay minerals at the Cretaceous/Tertiary boundary, Stevns Klint (Denmark) , 2004, Clay Minerals.
[9] N. Yanase,et al. A natural attenuation of arsenic in drainage from an abandoned arsenic mine dump , 2003 .
[10] N. Yanase,et al. Solid-solution reactions in As(V) sorption by schwertmannite. , 2003, Environmental science & technology.
[11] F. Hawthorne,et al. REFINEMENT OF THE CRYSTAL STRUCTURE OF SWEDENBORGITE , 2001 .
[12] M. Ebihara,et al. Chemical characteristics of the Cretaceous-Tertiary boundary layer at Gubbio, Italy , 1996 .
[13] B. Vink. Stability relations of antimony and arsenic compounds in the light of revised and extended Eh-pH diagrams , 1996 .
[14] B. Schmitz. Chalcophile elements and Ir in continental Cretaceous-Tertiary boundary clays from the western interior of the USA , 1992 .
[15] I. Gilmour,et al. Cretaceous-tertiary boundary event: Evidence for a short time scale , 1989 .
[16] E. Anders,et al. A new Cretaceous-Tertiary boundary site at Flaxbourne River, New Zealand: Biostratigraphy and geochemistry , 1987 .
[17] B. Schmitz. Metal precipitation in the Cretaceous-Tertiary boundary clay at Stevns Klint, Denmark , 1985 .
[18] C. Officer,et al. Terminal Cretaceous Environmental Events , 1985, Science.
[19] L. W. Alvarez,et al. Extraterrestrial Cause for the Cretaceous-Tertiary Extinction , 1980, Science.
[20] R. D. Shannon. Revised effective ionic radii and systematic studies of interatomic distances in halides and chalcogenides , 1976 .
[21] K. Sugiyama,et al. XAFS study of Zr in Cretaceous-Tertiary boundary clays from Stevns Klint , 2015 .
[22] J. Britten,et al. The crystal chemistry of welshite, a non-centrosymmetric (P1) aenigmatite-sapphirinesurinamite group mineral , 2007 .
[23] Montserrat Filella,et al. Antimony in the environment: a review focused on natural waters: I. Occurrence , 2002 .
[24] O. Shimomura,et al. Pressure and temperature dependence of EXAFS Debye-Waller factors in diamond-type and white-tin-type germanium , 1999 .
[25] 前田 裕宣. Accurate bond length determination by EXAFS method , 1987 .
[26] O. Zedlitz. Die Kristallstrukturen von Romeit und Schneebergit , 1932 .