Hydrogen bonding in the crystal structure of phurcalite, Ca2[(UO2)3O2(PO4)2]•7H2O: single-crystal X-ray study and TORQUE calculations

被引:5
作者
Plasil, Jakub [1 ]
Kiefer, Boris [2 ]
Ghazisaeed, Seyedat [2 ]
Philippo, Simon [3 ]
机构
[1] Inst Phys ASCR Vvi, Na Slovance 2, Prague 18221 8, Czech Republic
[2] New Mexico State Univ, Dept Phys, Las Cruces, NM 88003 USA
[3] Musee Hist Nat, Sect Mineral, Rue Munster 25, L-2160 Luxembourg, Luxembourg
关键词
phurcalite; uranyl phosphate; crystalstructure; hydrogen bonding; TORQUE method; THEORETICAL MINERALOGY; CHEMICAL-COMPOSITION; URANIUM; URANYL; DIFFRACTION; PHOSPHATE; HIERARCHY; DEPOSIT; MEMBER;
D O I
10.1107/S2052520620005739
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The crystal structure of phurcalite, Ca-2[(UO2)(3)O-2(PO4)(2)]center dot 7H(2)O, orthorhombic, a = 17.3785 (9) angstrom degrees, b = 15.9864 (8) angstrom, c = 13.5477 (10) angstrom, V = 3763.8 (4) angstrom(3), space group Pbca, Z= 8 has been refined from single-crystal XRD data to R = 0.042 for 3182 unique [I > 3(I)] reflections and the hydrogen-bonding scheme has been refined by theoretical calculations based on the TORQUE method. The phurcalite structure is layered, with uranyl phosphate sheets of the phosphuranylite topology which are linked by extensive hydrogen bonds across the interlayer occupied by Ca2+ cations and H2O groups. In contrast to previous studies the approach here reveals five transformer H2O groups (compared to three expected by a previous study) and two non-transformer H2O groups. One of the transformer H2O groups is, nevertheless, not linked to any metal cation, which is a less frequent type of H2O bonding in solid state compounds and minerals. The structural formula of phurcalite has been therefore redefined as {Ca-2((H2O)-O-[3])(5)((H2O)-O-[4])(2)}[(UO2)(3)O-2(PO4)(2)], Z = 8
引用
收藏
页码:502 / 509
页数:8
相关论文
共 48 条
[1]  
ATENCIO D, 1991, CAN MINERAL, V29, P95
[2]  
Brown I.D., 2002, CHEM BOND INORGANIC, P278
[3]   Recent Developments in the Methods and Applications of the Bond Valence Model [J].
Brown, Ian David .
CHEMICAL REVIEWS, 2009, 109 (12) :6858-6919
[4]   Contaminant uranium phases and leaching at the Fernald site in Ohio [J].
Buck, EC ;
Brown, NR ;
Dietz, NL .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1996, 30 (01) :81-88
[5]   U6+ minerals and inorganic compounds:: Insights into an expanded structural hierarchy of crystal structures [J].
Burns, PC .
CANADIAN MINERALOGIST, 2005, 43 :1839-1894
[6]   Thermodynamic Model for Uranium Release from Hanford Site Tank Residual Waste [J].
Cantrell, Kirk J. ;
Deutsch, William J. ;
Lindberg, Mike J. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2011, 45 (04) :1473-1480
[7]   Changes in uranium speciation through a depth sequence of contaminated Hanford sediments [J].
Catalano, JG ;
McKinley, JP ;
Zachara, JM ;
Heald, SM ;
Smith, SC ;
Brown, GE .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2006, 40 (08) :2517-2524
[8]   Structural, mechanical, spectroscopic and thermodynamic characterization of the copper-uranyl tetrahydroxide mineral vandenbrandeite [J].
Colmenero, Francisco ;
Plasil, Jakub ;
Cobos, Joaquin ;
Sejkora, Jiri ;
Timon, Vicente ;
Cejka, Jiri ;
Maria Fernandez, Ana ;
Petricek, Vaclav .
RSC ADVANCES, 2019, 9 (69) :40708-40726
[9]   The layered uranyl silicate mineral uranophane-β: crystal structure, mechanical properties, Raman spectrum and comparison with the α-polymorph [J].
Colmenero, Francisco ;
Plasil, Jakub ;
Sejkora, Jiri .
DALTON TRANSACTIONS, 2019, 48 (44) :16722-16736
[10]   Crystal structure, hydrogen bonding, mechanical properties and Raman spectrum of the lead uranyl silicate monohydrate mineral kasolite [J].
Colmenero, Francisco ;
Plasil, Jakub ;
Cobos, Joaquin ;
Sejkora, Jiri ;
Timon, Vicente ;
Cejka, Jiri ;
Bonales, Laura J. .
RSC ADVANCES, 2019, 9 (27) :15323-15334