New type of possible high-pressure polymorphism in NiAs minerals in planetary cores

被引:0
|
作者
Przemyslaw Dera
Jawad Nisar
Rajeev Ahuja
Sergey Tkachev
Vitali B. Prakapenka
机构
[1] The University of Chicago,Center for Advanced Radiation Sources
[2] Argonne National Laboratory,Condensed Matter Theory Group, Department of Physics and Astronomy
[3] Uppsala University,Applied Materials Physics, Department of Materials and Engineering
[4] Royal Institute of Technology (KTH),undefined
来源
Physics and Chemistry of Minerals | 2013年 / 40卷
关键词
Planetary cores; Nickel arsenide structure; NiP; High pressure; Phase transitions; Polymorphism; Bonding;
D O I
暂无
中图分类号
学科分类号
摘要
The nickel arsenide (B81) and related crystal structures are among the most important crystallographic arrangements assumed by Fe and Ni compounds with light elements such as Si, O, S, and P, expected to be present in planetary cores. Despite the simple structure, some of these materials like troilite (FeS) exhibit complex phase diagrams and rich polymorphism, involving significant changes in interatomic bonding and physical properties. NiP (oP16) represents one of the two principal structure distortions found in the nickel arsenide family and is characterized by P–P bonding interactions that lead to the formation of P2 dimers. In the current study, the single-crystal synchrotron X-ray diffraction technique, aided by first principles density functional theory (DFT) calculations, has been applied to examine the compression behavior of NiP up to 30 GPa. Two new reversible displacive phase transitions leading to orthorhombic high-pressure phases with Pearson symbols oP40 and oC24 were found to occur at approximately 8.5 and 25.0 GPa, respectively. The oP40 phase has the primitive Pnma space group with unit cell a = 4.7729(5) Å, b = 16.6619(12) Å, and c = 5.8071(8) Å at 16.3(1) GPa and is a superstructure of the ambient oP16 phase with multiplicity of 2.5. The oC24 phase has the acentric Cmc21 space group with unit cell a = 9.695(6) Å, b = 5.7101(9) Å, and c = 4.7438(6) Å at 28.5(1) GPa and is a superstructure of the oP16 phase with multiplicity of 1.5. DFT calculations fully support the observed sequence of phase transitions. The two new phases constitute logical next stages of P sublattice polymerization, in which the dilution of the P3 units, introduced in the first high-pressure phase, decreases, leading to compositions of Ni20(P3)4(P2)4 and Ni12(P3)4, and provide important clues to understanding of phase relations and transformation pathways in the NiAs family.
引用
收藏
页码:183 / 193
页数:10
相关论文
共 50 条
  • [21] High-pressure and high-temperature polymorphism in silica
    Dubrovinsky, LS
    Dubrovinskaia, NA
    Prakapenka, V
    Seifert, F
    Langenhorst, F
    Dmitriev, V
    Weber, HP
    Le Bihan, T
    HIGH PRESSURE RESEARCH, 2003, 23 (1-2) : 35 - 39
  • [22] Sound wave velocities of Fe5Si at high-pressure and high-temperature conditions: Implications to lunar and planetary cores
    Deng, Liwei
    Kono, Yoshio
    Shen, Guoyin
    AMERICAN MINERALOGIST, 2019, 104 (02) : 291 - 299
  • [23] High-Pressure Polymorphism in Hydrogen-Bonded Crystals: A Concise Review
    Yan, Tingting
    Xi, Dongyang
    Fang, Qiuxue
    Zhang, Ye
    Wang, Junhai
    Wang, Xiaodan
    CRYSTALS, 2022, 12 (05)
  • [24] High-pressure/low-temperature polymorphism in chiral and racemic cysteine
    Minkov, Vasily S.
    Kolesov, Boris
    Goryainov, Sergei
    Boldyreva, Elena
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2010, 66 : S70 - S71
  • [25] High-pressure polymorphism as a step towards destabilization of LiBH4
    Filinchuk, Yaroslav
    Chernyshov, Dmitry
    Nevidomskyy, Andriy
    Dmitriev, Vladimir
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2008, 47 (03) : 529 - 532
  • [26] Effect of High Pressure on the Crystalline Glycine: a New High-Pressure Polymorph Formation
    Ivashevskaya, S. N.
    Boldyreva, E. V.
    Sowa, H.
    Ahsbahs, H.
    Weber, H. -P.
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2004, 60 : S250 - S250
  • [27] Investigation of high-pressure planetary ices by cryo-recovery. II. High-pressure apparatus, examples and a new high-pressure phase of MgSO4•5H2O
    Wang, Weiwei
    Fortes, A. Dominic
    Dobson, David P.
    Howard, Christopher M.
    Bowles, John
    Hughes, Neil J.
    Wood, Ian G.
    JOURNAL OF APPLIED CRYSTALLOGRAPHY, 2018, 51 : 692 - 705
  • [28] High-pressure behaviour of serpentine minerals: a Raman spectroscopic study
    Auzende, AL
    Daniel, I
    Reynard, B
    Lemaire, C
    Guyot, F
    PHYSICS AND CHEMISTRY OF MINERALS, 2004, 31 (05) : 269 - 277
  • [29] An overview of the high-pressure vibrational spectra of clays and related minerals
    Butler, Ian S.
    Frost, Ray L.
    APPLIED SPECTROSCOPY REVIEWS, 2006, 41 (05) : 449 - 471
  • [30] High-pressure behaviour of serpentine minerals: a Raman spectroscopic study
    A.-L. Auzende
    I. Daniel
    B. Reynard
    C. Lemaire
    F. Guyot
    Physics and Chemistry of Minerals, 2004, 31 : 269 - 277