Garrity Kevin F
Material Measurement Laboratory, National Institute of Standards and Technology, Gaithersburg MD, 20899.
Phys Rev B. 2018;97. doi: 10.1103/PhysRevB.97.024115.
We use a combination of symmetry analysis and high-throughput density functional theory calculations to search for new ferroelectric materials. We use two search strategies to identify candidate materials. In the first strategy, we start with non-polar materials and look for unrecognized energy-lowering polar distortions. In the second strategy, we consider polar materials and look for related higher symmetry structures. In both cases, if we find new structures with the correct symmetries that are also close in energy to experimentally known structures, then the material is likely to be switchable in an external electric field, making it a candidate ferroelectric. We find sixteen candidate materials, with variety of properties that are rare in typical ferroelectrics, including large polarization, hyperferroelectricity, antiferroelectricity, and multiferroism.
我们结合对称性分析和高通量密度泛函理论计算来寻找新型铁电材料。我们采用两种搜索策略来识别候选材料。在第一种策略中,我们从非极性材料开始,寻找未被认识到的能量降低的极性畸变。在第二种策略中,我们考虑极性材料并寻找相关的更高对称性结构。在这两种情况下,如果我们发现具有正确对称性且能量与实验已知结构相近的新结构,那么该材料很可能在外部电场中可切换,使其成为候选铁电体。我们发现了16种候选材料,它们具有各种在典型铁电体中罕见的特性,包括大极化、超铁电性、反铁电性和多铁性。