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外延应变 SrCoO3 中耦合的磁-铁电金属-绝缘相变:基于第一性原理的研究。

Coupled magnetic-ferroelectric metal-insulator transition in epitaxially strained SrCoO3 from first principles.

机构信息

Department of Physics and Astronomy, Rutgers University, Piscataway, New Jersey 08854-8019, USA.

出版信息

Phys Rev Lett. 2011 Aug 5;107(6):067601. doi: 10.1103/PhysRevLett.107.067601. Epub 2011 Aug 3.

Abstract

First-principles calculations are presented for the epitaxial-strain dependence of the ground-state phase stability of perovskite SrCoO(3). Through the combination of the large spin-phonon coupling with polarization-strain coupling and the coupling of the band gap to the polar distortion, both tensile and compressive epitaxial strain are seen to drive the bulk ferromagnetic-metallic (FM-M) phase to antiferromagnetic-insulating-ferroelectric (AFM-I-FE) phases, the latter having unusually low elastic energy. For compressive strain, there is a single coupled magnetic-ferroelectric metal-insulator transition. At this phase boundary, cross responses to applied electric and magnetic fields and stresses are expected. In particular, a magnetic field or compressive uniaxial stress applied to the AFM-FE(z) phase could induce an insulator-metal transition, and an electric field applied to the FM-M phase could induce a metal-insulator transition.

摘要

本文通过自旋-声子耦合与极化-应变耦合的结合以及带隙与极性畸变的耦合,从第一性原理出发,对钙钛矿 SrCoO(3) 的基态相稳定性的外延应变依赖性进行了计算。结果表明,拉伸和压缩外延应变都会促使体铁磁-金属(FM-M)相转变为反铁磁-绝缘-铁电(AFM-I-FE)相,后者具有异常低的弹性能量。对于压缩应变,存在单一的耦合磁-铁电金属-绝缘体转变。在这个相界处,预期会有对施加电场、磁场和应力的交叉响应。具体来说,施加到 AFM-FE(z) 相的磁场或单轴压缩应力可能会诱导绝缘-金属转变,而施加到 FM-M 相的电场可能会诱导金属-绝缘转变。

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