凝聚态物理
各向异性
铁磁性
磁圆二色性
居里温度
单层
线性二色性
材料科学
磁各向异性
自旋(空气动力学)
电子迁移率
圆二色性
磁化
化学
结晶学
物理
光学
纳米技术
磁场
谱线
量子力学
热力学
天文
作者
Cong Wang,Xieyu Zhou,Linwei Zhou,Ning-Hua Tong,Zhong-Yi Lu,Wei Ji
标识
DOI:10.1016/j.scib.2019.02.011
摘要
Two-dimensional magnets have received increasing attention since Cr2Ge2Te6 and CrI3 were experimentally exfoliated and measured in 2017. Although layered ferromagnetic metals were demonstrated at room temperature, a layered ferromagnetic semiconductor with high Curie temperature (Tc) is yet to be unveiled. Here, we theoretically predicted a family of high Tc ferromagnetic monolayers, namely MnNX and CrCX (X = Cl, Br and I; C = S, Se and Te). Their Tc values were predicted from over 100 K to near 500 K with Monte Carlo simulations using an anisotropic Heisenberg model. Eight members among them show semiconducting bandgaps varying from roughly 0.23 to 1.85 eV. These semiconducting monolayers also show extremely large anisotropy, i.e. ∼101 for effective masses and ∼102 for carrier mobilities, along the two in-plane lattice directions of these layers. Additional orbital anisotropy leads to a spin-locked linear dichroism, in different from previously known circular and linear dichroisms in layered materials. Together with the mobility anisotropy, it offers a spin-, dichroism- and mobility-anisotropy locking. These results manifest the potential of this 2D family for both fundamental research and high performance spin-dependent electronic and optoelectronic devices.
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