Spatial structure and stability of MonSim nanoparticles

被引:0
|
作者
M. V. Ryzhkov
B. Delley
机构
[1] Russian Academy of Sciences,Institute of Solid State Chemistry, Ural Division
[2] Paul Scherrer Institute,undefined
来源
关键词
non-empirical calculation; Mo; Si; nanoparticles; relationship between stability geometric structure;
D O I
暂无
中图分类号
学科分类号
摘要
By means of the ab initio DMol3 method MonSim nanoparticles and fragments of Mo3Si and MoSi2 crystal lattices are theoretically modeled. For both crystals a few neutral Mo4Si6 and Mo6Si6 fragments of different shapes and symmetry are considered. In each case, after cluster separation its geometry is optimized, as a result of which the geometric structure noticeably changes and its stability increases. In order to theoretically search for the spatial configurations of Mo4Si6 and Mo6Si6 nanoparticle, two approaches are used: 1) in the most stable Fe4C6 and Fe6C6 isomers found previously, iron and carbon atoms are replaced by molybdenum and silicon respectively and then the geometry is optimized to obtain new equilibrium distances and angles; 2) the search for main Mo4Si6 and Mo6Si6 configurations is performed using the binominal scheme, starting from Mo2, MoSi, and Si2 dimers. The nanoparticle structures are found to contain metal atom chains and isolated pairs and triples of silicon atoms. In most cases, the nanoparticle stability proves to be higher than that of the crystal clusters.
引用
收藏
页码:209 / 214
页数:5
相关论文
共 50 条
  • [21] Structure, fluorescence and stability of CdS nanoparticles prepared in air
    Chen, W
    Lin, ZJ
    Wang, ZG
    Xu, Y
    Lin, LY
    JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 1998, 14 (05) : 389 - 394
  • [22] Structure, fluorescence and stability of CdS nanoparticles prepared in air
    Chen, Wei
    Lin, Zhaojun
    Wang, Zhangguo
    Xu, Yan
    Lin, Lanying
    Journal of Materials Science and Technology, 1998, 14 (05): : 389 - 394
  • [23] Structure and Stability of Dispersed Ice Stabilized With Hydrophobic Nanoparticles
    Drachuk, A. O.
    Molokitina, N. S.
    Podenko, L. S.
    ARCTIC, SUBARCTIC: MOSAIC, CONTRAST, VARIABILITY OF THE CRYOSPHERE, 2015, : 101 - 104
  • [24] Silica nanoparticles: Structure, stability and their role in materials synthesis
    Lobo, Raul F.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2006, 231
  • [25] Influence of a spatial structure type of nickel nanoparticles on their magnetic properties
    Shpak, AP
    Shevchenko, AB
    Mel'nik, AB
    METALLOFIZIKA I NOVEISHIE TEKHNOLOGII, 2003, 25 (10): : 1249 - 1263
  • [26] Informatics the imaginary atom method for reconstructing the spatial structure of nanoparticles
    Andrushevskii N.M.
    Gor'kov V.P.
    Shchedrin B.M.
    Computational Mathematics and Modeling, 2010, 21 (2) : 184 - 189
  • [27] Numerical modeling for stability analysis of sheet-spatial structure
    Zong, Zhongling
    Guo, Xiaoming
    Tang, Gan
    Zhao, Huilin
    Dongnan Daxue Xuebao (Ziran Kexue Ban)/Journal of Southeast University (Natural Science Edition), 2007, 37 (06): : 1008 - 1012
  • [28] Stability analysis of a stage-structure model with spatial heterogeneity
    Yan, Shuling
    Guo, Shangjiang
    MATHEMATICAL METHODS IN THE APPLIED SCIENCES, 2021, 44 (14) : 10993 - 11005
  • [29] The spatial structure of resting state connectivity stability on the scale of minutes
    Gonzalez-Castillo, Javier
    Handwerker, Daniel A.
    Robinson, Meghan E.
    Hoy, Colin Weir
    Buchanan, Laura C.
    Saad, Ziad S.
    Bandettini, Peter A.
    FRONTIERS IN NEUROSCIENCE, 2014, 8
  • [30] Amorphous structure and crystal stability determine the bioavailability of selenium nanoparticles
    Li, Kui
    Li, Jing
    Zhang, Sasa
    Zhang, Jingrui
    Xu, Qiaolin
    Xu, Zhongnan
    Guo, Yanbin
    JOURNAL OF HAZARDOUS MATERIALS, 2024, 465