空位缺陷
拉伤
材料科学
外延
氧气
应变能
格子(音乐)
钙钛矿(结构)
薄膜
凝聚态物理
结晶学
热力学
纳米技术
物理
化学
量子力学
内科学
有限元法
医学
声学
图层(电子)
作者
Ulrich Aschauer,Reto Pfenninger,Sverre M. Selbach,Tor Grande,Nicola A. Spaldin
标识
DOI:10.1103/physrevb.88.054111
摘要
We use first-principles calculations to investigate the stability of biaxially strained Pnma perovskite CaMnO${}_{3}$ towards the formation of oxygen vacancies. Our motivation is provided by promising indications that novel material properties can be engineered by application of strain through coherent heteroepitaxy in thin films. While it is usually assumed that such epitaxial strain is accommodated primarily by changes in intrinsic lattice constants, point defect formation is also a likely strain-relaxation mechanism. Our first-principles calculations of oxygen vacancy defect formation energy indeed show a strong strain dependence: We find that tensile strain lowers the formation energy, consistent with the established chemical expansion concept that oxygen deficiency increases the molar volume in oxides. In addition, we find that strain differentiates the formation energy for different lattice sites, suggesting its use as a route to engineering vacancy ordering in epitaxial thin films.
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