On the mobility of carriers at semi-coherent oxide heterointerfaces

被引:16
|
作者
Dholabhai, Pratik P. [1 ]
Martinez, Enrique [1 ]
Brown, Nicholas T. [1 ]
Uberuaga, Blas Pedro [1 ]
机构
[1] Los Alamos Natl Lab, Mat Sci & Technol Div, Los Alamos, NM 87545 USA
关键词
OXYGEN-ION TRANSPORT; ACTIVATION-ENERGY; CONDUCTIVITY; FILMS; NANOCOMPOSITES; SUPERLATTICES; DISLOCATIONS; MECHANISMS; INTERFACES; CHEMISTRY;
D O I
10.1039/c7cp04884j
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
In the quest to develop new materials with enhanced ionic conductivity for battery and fuel cell applications, nano-structured oxides have attracted attention. Experimental reports indicate that oxide heterointerfaces can lead to enhanced ionic conductivity, but these same reports cannot elucidate the origin of this enhancement, often vaguely referring to pipe diffusion at misfit dislocations as a potential explanation. However, this highlights the need to understand the role of misfit dislocation structure at semi-coherent oxide heterointerfaces in modifying carrier mobilities. Here, we use atomistic and kinetic Monte Carlo (KMC) simulations to develop a model of oxygen vacancy migration at SrTiO3/MgO interfaces, chosen because the misfit dislocation structure can be modified by changing the termination chemistry. We use atomistic simulations to determine the energetics of oxygen vacancies at both SrO and TiO2 terminated interfaces, which are then used as the basis of the KMC simulations. While this model is approximate (as revealed by select nudged elastic band calculations), it highlights the role of the misfit dislocation structure in modifying the oxygen vacancy dynamics. We find that oxygen vacancy mobility is significantly reduced at either interface, with slight differences at each interface due to the differing misfit dislocation structure. We conclude that if such semi-coherent oxide heterointerfaces induce enhanced ionic conductivity, it is not a consequence of higher carrier mobility.
引用
收藏
页码:23122 / 23130
页数:9
相关论文
共 50 条
  • [1] SEMI-COHERENT ANALYTIC SHEAVES
    MERRIEN, J
    [J]. COMPTES RENDUS HEBDOMADAIRES DES SEANCES DE L ACADEMIE DES SCIENCES SERIE A, 1979, 289 (16): : 791 - 793
  • [2] THE COARSENING BEHAVIOR OF SEMI-COHERENT PRECIPITATES
    BANERJEE, D
    BHATIA, ML
    [J]. TRANSACTIONS OF THE INDIAN INSTITUTE OF METALS, 1983, 36 (4-5): : 259 - 263
  • [3] COHERENT TO SEMI-COHERENT TRANSITION IN SEMICONDUCTOR HETEROEPITAXIAL SUPERLATTICES
    Raghavendra, R. M.
    Iyer, Ganesh
    Kumar, Arun
    Vedpal
    Subramaniam, Anandh
    [J]. COMPOSITES-MECHANICS COMPUTATIONS APPLICATIONS, 2022, 13 (03): : 101 - 112
  • [4] COMMUTATIVE SEMI-COHERENT AND SEMI-REGULAR RINGS
    MATLIS, E
    [J]. JOURNAL OF ALGEBRA, 1985, 95 (02) : 343 - 372
  • [5] THE COARSENING BEHAVIOR OF SEMI-COHERENT PRECIPITATES
    BANERJEE, D
    BHATIA, ML
    [J]. JOURNAL OF METALS, 1982, 34 (08): : 12 - 12
  • [6] Non-uniform Solute Segregation at Semi-Coherent Metal/Oxide Interfaces
    Choudhury, Samrat
    Aguiar, Jeffery A.
    Fluss, Michael J.
    Hsiung, Luke L.
    Misra, Amit
    Uberuaga, Blas P.
    [J]. SCIENTIFIC REPORTS, 2015, 5
  • [7] Non-uniform Solute Segregation at Semi-Coherent Metal/Oxide Interfaces
    Samrat Choudhury
    Jeffery A. Aguiar
    Michael J. Fluss
    Luke L. Hsiung
    Amit Misra
    Blas P. Uberuaga
    [J]. Scientific Reports, 5
  • [8] Nonclassical properties of 'semi-coherent' quantum states
    Dodonov, V. V.
    Reno, M. B.
    [J]. JOURNAL OF PHYSICS A-MATHEMATICAL AND GENERAL, 2006, 39 (23): : 7411 - 7422
  • [9] SEMI-COHERENT STATES OF QUANTUM HARMONIC OSCILLATOR
    MATHEWS, PM
    ESWARAN, K
    [J]. NUOVO CIMENTO DELLA SOCIETA ITALIANA DI FISICA B-GENERAL PHYSICS RELATIVITY ASTRONOMY AND MATHEMATICAL PHYSICS AND METHODS, 1973, B 17 (02): : 332 - 335
  • [10] Semi-coherent GFSK receiver for DECT standard
    Abdollahi, SR
    Kamarei, M
    Fakhraie, SM
    [J]. ICECS 2003: PROCEEDINGS OF THE 2003 10TH IEEE INTERNATIONAL CONFERENCE ON ELECTRONICS, CIRCUITS AND SYSTEMS, VOLS 1-3, 2003, : 1244 - 1247