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Two-dimensional hyperferroelectric metals: A different route to ferromagnetic-ferroelectric multiferroics

机译:二维超流电金属:与铁磁 - 铁电型多丝的不同途径

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摘要

Recently, two-dimensional (2D) multiferroics have attracted a lot of attention due to their fascinating properties and promising applications. Although the ferroelectric (FE)-ferroelastic and ferromagnetic (FM)-ferroelastic multiferroics have been observed/predicted in 2D systems, 2D ferromagnetic-ferroelectric (FM-FE) multiferroics remain to be discovered since FM insulators are very rare. Here we proposed the concept of 2D hyperferroelectric metals, with which the insulating prerequisite for the FM-FE multiferroic is no longer required in 2D systems. We validate the concept of 2D hyperferroelectric metals and 2D metallic FM-FE multiferroics by performing first-principle calculations on 2D CrN and CrB2 systems. The 2D buckled monolayer CrN is found to be a hyperferroelectic metal with the FM ground state, i.e., a 2D FM-FE multiferroic. With the global optimization approach, we find the 2D CrB2 system has an antiferromagnetic (AFM)/planar ground state and a FM/FE metastable state, suggesting that it can be used to realize electric field control of magnetism. Our analysis demonstrates that the spin-phonon coupling and metal-metal interaction are two mechanisms for stabilizing the out-of-plane electric polarization in 2D systems. Our work not only extends the concept of FE tometallic systems, but also paves a way to search the long-sought high temperature FM-FE multiferroics.
机译:最近,由于其迷人的特性和有前途的应用,二维(2D)的多分子引起了很多关注。虽然在2D系统中观察到/预测铁电(Fe) - 异源弹性和铁磁性(FM) - 异形多法度,但是由于FM绝缘体非常罕见,因此仍然发现2D铁磁 - 铁电(FM-FE)多二二核。在这里,我们提出了2D超流电金属的概念,其中在2D系统中不再需要FM-Fe多体的绝缘前提条件。我们通过在2D CRN和CRB2系统上执行第一原理计算,验证2D超流电金属和2D金属FM-FE多分子的概念。 2D屈曲的单层CRN被发现是具有FM接地状态的超流型金属,即2D FM-FE多重。通过全局优化方法,我们发现2D CRB2系统具有反铁磁(AFM)/平面地面和FM / FE含量状态,表明它可以用于实现磁的电场控制。我们的分析表明,旋转声子耦合和金属 - 金属相互作用是用于稳定2D系统中平面外电极化的两种机制。我们的工作不仅延长了FE Tometallic系统的概念,还铺平了搜索长寻求高温FM-FE多法的方法。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第24期|235415.1-235415.7|共7页
  • 作者

    Wei Luo; Ke Xu; Hongjun Xiang;

  • 作者单位

    Key Laboratory of Computational Physical Sciences (Ministry of Education) State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 People’s Republic of China Collaborative Innovation Center of Advanced Microstructures Nanjing 210093 People’s Republic of China;

    Key Laboratory of Computational Physical Sciences (Ministry of Education) State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 People’s Republic of China Collaborative Innovation Center of Advanced Microstructures Nanjing 210093 People’s Republic of China Hubei Key Laboratory of Low Dimensional Optoelectronic Materials and Devices Hubei University of Arts and Science Xiangyang 441053 People’s Republic of China;

    Key Laboratory of Computational Physical Sciences (Ministry of Education) State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 People’s Republic of China Collaborative Innovation Center of Advanced Microstructures Nanjing 210093 People’s Republic of China;

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