首页|Origin of the Disparity between the Stability of Transmutated Mix-Cation and Mix-Anion Compounds

Origin of the Disparity between the Stability of Transmutated Mix-Cation and Mix-Anion Compounds

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Transmutation is an efficient approach for material design.For example,ternary compound CuGaSe2 in chalcopyrite structure is a promising material for novel optoelectronic and thermoelectric device applications.It can be considered as formed from the binary host compound ZnSe in zinc-blende structure by cation transmutation(i.e.,replacing two Zn atoms by one Cu and one Ga).While cation-transmutated materials are common,anion-transmutated ternary materials are rare,for example,Zn2AsBr(i.e.,replacing two Se atoms by one As and one Br)is not reported.The physical origin for this puzzling disparity is unclear.In this work,we employ first-principles calculations to address this issue,and find that the distinct differences in stability between cation-transmutated(mix-cation)and anion-transmutated(mix-anion)compounds originate from their different trends of ionic radii as functions of their ionic state,i.e.,for cations,the radius decreases with the increasing ionic state,whereas for anions,the radius increases with the increasing absolute ionic state.Therefore,for mix-cation compounds,the strain energy and Coulomb energy can be simultaneously optimized to make these materials stable.In contrast,for mix-anion systems,minimization of Coulomb energy will increase the strain energy,thus the system becomes unstable or less stable.Thus,the trend of decreasing strain energy and Coulomb energy is consistent in mix-cation compounds,while it is opposite in mix-anion compounds.Furthermore,the study suggests that the stability strategy for mix-anion compounds can be controlled by the ratio of ionic radii r3/r1,with a smaller ratio indicating greater stability.Our work,thus,elucidates the intrinsic stability trend of transmutated materials and provides guidelines for the design of novel ternary materials for various device applications.

野仕伟、耿松源、梁汉普、张燮、魏苏淮

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Beijing Computational Science Research Center,Beijing 100193,China

Advanced Materials Thrust,Function Hub,Hong Kong University of Science and Technology(Guangzhou),Guangzhou 511458,China

School of Materials Science and Engineering,Northwestern Polytechnical University,Xi'an 710072,China

国家自然科学基金国家自然科学基金国家自然科学基金国家自然科学基金国家自然科学基金

11991060120881015217213612104035U2230402

2024

中国物理快报(英文版)
中国科学院物理研究所,中国物理学会

中国物理快报(英文版)

CSTPCDEI
影响因子:0.515
ISSN:0256-307X
年,卷(期):2024.41(5)
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