Calculated Nanocube Vacancy Formation Energy and Cohesion Energy at o K

被引:4
|
作者
van der Walt, Cornelia [1 ]
Terblans, Jacobus J. [1 ]
Swart, Hendrik C. [1 ]
机构
[1] Univ Free State, Dept Phys, ZA-9300 Bloemfontein, South Africa
关键词
cohesive energy; nanocube; surface orientation; Sutton-Chen; vacancy formation energy; ORIENTATION DEPENDENCE; NANOCRYSTALS; SEGREGATION; OXYGEN; FACET; SIZE; CU; PD;
D O I
10.1002/smll.201701829
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Nanoparticles of face-centered cubic Cu are modeled using the Sutton-Chen potential. Shapes ranging from perfect cubes through to octahedrons are modeled and characterized. Bulk properties, surface energies, vacancy formation energy, E-v, and cohesive energies, E-coh, are investigated for particles simulated to up to 5 nm in diameter. Below the subsurface layers, particles larger than 1 nm diameter are compared well to bulk. Of the different shapes, rhombicuboctahedrons are both more stable and have more reactive surfaces. As E-v is dependent on surface orientation, there is a little correlation with size and E-v is mostly dependent on nanoparticle shape. E-coh is not as dependent on surface orientation and shows both size and shape dependency.
引用
收藏
页数:11
相关论文
共 50 条
  • [11] Comment on “Vacancy formation energy of small particles”
    D. Xie
    M. P. Wang
    L. F. Cao
    Journal of Materials Science, 2005, 40 : 3565 - 3566
  • [12] Size dependence of vacancy formation energy of metallic nanoparticles
    Qi, WH
    Wang, MP
    PHYSICA B-CONDENSED MATTER, 2003, 334 (3-4) : 432 - 435
  • [13] Size and dimension dependent vacancy formation energy of nanosolids
    Xiong, Shiyun
    Qi, Weihong
    Huang, Baiyun
    Wang, Mingpu
    COMPUTATIONAL MATERIALS SCIENCE, PTS 1-3, 2011, 268-270 : 930 - +
  • [14] Theoretical analytical model of vacancy formation energy with simultaneous dependence on surface orientation, temperature, and material size
    Zhang, Xuyao
    Li, Weiguo
    Deng, Yong
    Shao, Jiaxing
    Kou, Haibo
    Ma, Jianzuo
    Zhang, Xianhe
    Li, Ying
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2018, 51 (07)
  • [15] Strain effects on oxygen vacancy formation energy in perovskites
    Mayeshiba, Tam
    Morgan, Dane
    SOLID STATE IONICS, 2017, 311 : 105 - 117
  • [16] First-Principles calculation of the vacancy formation energy in VC
    Sun, Shiyang
    Xu, Pingping
    Liu, Xuejie
    Tan, Xin
    ADVANCES IN MATERIALS AND MATERIALS PROCESSING IV, PTS 1 AND 2, 2014, 887-888 : 966 - 969
  • [17] Oxygen vacancy formation energy at the Pd/CeO2(111) interface
    Yang, Zongxian
    Lu, Zhansheng
    Luo, Gaixia
    Hermansson, Kersti
    PHYSICS LETTERS A, 2007, 369 (1-2) : 132 - 139
  • [18] Vacancy Formation Energy in Metallic Nanoparticles under High Temperature and High Pressure
    Ouyang, G.
    Zhu, W. G.
    Yang, G. W.
    Zhu, Z. M.
    JOURNAL OF PHYSICAL CHEMISTRY C, 2010, 114 (11) : 4929 - 4933
  • [19] Strain controlled ferromagnetic-ferrimagnetic transition and vacancy formation energy of defective graphene
    Zhang, Yajun
    Sahoo, M. P. K.
    Wang, Jie
    NANOTECHNOLOGY, 2016, 27 (43)
  • [20] Vacancy formation free energy in concentrated alloys: Equilibrium vs. random sampling
    Li, Kangming
    Schuler, Thomas
    Fu, Chu-Chun
    Nastar, Maylise
    ACTA MATERIALIA, 2024, 281