铋铁氧体
密度泛函理论
铋
材料科学
从头算
微电子
自旋电子学
化学物理
氧化物
从头算量子化学方法
多铁性
能量学
氧气
纳米技术
计算化学
凝聚态物理
化学
铁磁性
热力学
分子
铁电性
冶金
电介质
光电子学
有机化学
物理
作者
Dennis Trujillo,Ayana Ghosh,Serge Nakhmanson,Sanjubala Sahoo,S. P. Alpay
摘要
Bismuth ferrite (BiFeO3) is a multiferroic material that has received significant interest due to its functional properties which could lead to potential novel applications in microelectronics, spintronics, and controlled catalytic reactions. Here, we provide the results of an extensive theoretical study to understand the surface structure and describe the energetics of differently terminated BiFeO3 surfaces. We specifically evaluate low index crystal facets and surface level atomic terminations via density functional theory and ab initio thermodynamics techniques. Our findings indicate that surface stability with varying terminations is strongly dependent on the oxygen partial pressure and chemical potentials of bismuth and iron. In oxygen rich environments, the results suggest that (100)-O and (110)-O and terminated surfaces are more stable compared to other surface terminations and facets. On the other hand, in a relatively oxygen poor environments, we observe that (110)-Bi and (110)-Fe are more stable. The calculations also show that the majority of BFO surfaces exhibit metallic behavior with the exception of the O-terminated (100) and (110) surfaces.
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