First principles calculation of thermal expansion coefficient - Part 1. Cubic metals

被引:15
|
作者
Jin, HM [1 ]
Wu, P [1 ]
机构
[1] Inst High Performance Comp, Singapore 118261, Singapore
关键词
thermal expansion coefficient; density functional theory; cubic metals;
D O I
10.1016/S0925-8388(02)00309-2
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Based on the Debye-Gruneisen approximation, we conducted coefficient of thermal expansion (CTE,alpha) calculations for nine pure cubic metals (Pd, Cu, Ag, Rh, V, Nb, Rb, K and Al) using density functional theory. Employing Pd, Cu, and Ag as benchmark, we compared the numerical performance of CTE for four density functional theory (DFT) methods, namely LDA, LSDA, GGA and GGS. For these three metals, we found that the gradient-corrected methods (GGA and GGS) yields much larger CTE compared to the local-density methods (LDA and LSDA). By comparing with experimental CTE, we found that the GGA approach yields the best estimate for this property when a 'cutoff radius' of 10% is used. For the nine pure cubic metals investigated here, the mean-absolute-deviation of the GGA CTE is found to be less than 3% from the experimental value (except for Al), which represents a major improvement over previous LDA-based calculation. To further explore the applicability of the developed CTE calculation protocol, we extend the GGA calculation to eight compounds (AlNi, AgMg, AuCd, GaNi, Pd3Sn, AlNi3, AuCu3 and Al3U) with cubic structures. Good agreement with experiment was obtained, indicating the feasibility of applying the same technique on ordered alloys. (C) 2002 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:71 / 76
页数:6
相关论文
共 50 条
  • [21] Thermal Expansion Coefficient and Lattice Anharmonicity of Cubic Boron Arsenide
    Chen, Xi
    Li, Chunhua
    Tian, Fei
    Gamage, Geethal Amila
    Sullivan, Sean
    Zhou, Jianshi
    Broido, David
    Ren, Zhifeng
    Shi, Li
    PHYSICAL REVIEW APPLIED, 2019, 11 (06)
  • [22] PSEUDOPOTENTIAL CALCULATION OF THERMAL EXPANSION COEFFICIENT OF SODIUM AND POTASSIUM
    WALLACE, DC
    PHYSICAL REVIEW, 1968, 176 (03): : 832 - &
  • [23] CALCULATION OF POLYMER DENSITY AND THERMAL-EXPANSION COEFFICIENT
    HARTMANN, B
    LEE, GF
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1980, 25 (03): : 322 - 322
  • [24] THERMAL-EXPANSION COEFFICIENT OF ALKALI-METALS
    SOMA, T
    KAGAYA, HM
    KIMURA, Y
    PHYSICA STATUS SOLIDI B-BASIC RESEARCH, 1983, 116 (01): : 57 - 61
  • [25] Crystallite size dependence of the coefficient of thermal expansion of metals
    Kuru, Y.
    Wohlschloegel, M.
    Welzel, U.
    Mittemeijer, E. J.
    APPLIED PHYSICS LETTERS, 2007, 90 (24)
  • [26] Comparative study on the linear thermal expansion coefficient of laser host crystals by first principles calculations
    Sato, Yoichi
    Taira, Takunori
    OPTICAL MATERIALS EXPRESS, 2022, 12 (04) : 1397 - 1407
  • [27] Thermal expansion coefficient of nonstoichiometric gadolinium zirconate: First-principles calculations and experimental study
    Chen, Qian
    Song, Wei
    Xie, You
    Yan, Zhengxin
    Xu, Jie
    Gao, Feng
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2023, 178
  • [28] Industrial thermal mass flowmeters Part 1. Principles of operation
    Olin, JG
    MEASUREMENTS & CONTROL, 1999, (193): : 83 - 90
  • [29] SOME REMARKS ON THE THERMAL EXPANSION AND THE POISSON CONTRACTION OF THE CUBIC METALS
    DRUYVESTEYN, MJ
    PHILIPS RESEARCH REPORTS, 1946, 1 (02): : 77 - 80
  • [30] First-principles calculation of entropy for liquid metals
    Desjarlais, Michael P.
    PHYSICAL REVIEW E, 2013, 88 (06):