论文标题
铁疗法,具有潜在可切换的Dresselhaus旋转分裂的化合物
Ferri-chiral compounds with potentially switchable Dresselhaus spin split-ting
论文作者
论文摘要
能带的自旋分裂可以通过无反转对称性的材料中的相对论自旋 - 轨道相互作用来诱导。尽管极性空间组的对称性允许Rashba(R-1)在动量空间中用螺旋旋转纹理旋转旋转,而在通过施加的电场切换铁电偏振时,可以反转,而普通的dresselhaus效应(D-1A)仅在非极性非质子晶体中的非极性晶体类别的材料中仅在不占用不属于的材料中占据不可分割的材料。因此,由D-1A诱导的自旋摩托锁定不可电场切换。一种替代类型的dresselhaus对称性,称为D-1B,表现出类似于D-1A的晶体类约束(所有偶极均加为零),但与D-1A不同,至少占据了一个极性位点。我们发现,这种行为存在于一类Ferri-Ferrial Crys-tals中,原则上可以在手性变化时逆转。着眼于碱金属硫化剂,我们鉴定了非刻型铁手授结构中的NaCu5s3,该结构表现出CUS3手性单元在CU位移的大小上有所不同。然后,我们合成NACU5S3(空间群P6322),并用功率X射线衍射确认其费里式手续结构。我们的电子结构计算表明,它表现出D-1B旋转分裂以及手工艺相变,显示自旋分裂相互依存于手性。我们的电子结构计算表明,几个百分之几的双轴拉伸应变可以减少(或几乎淬灭)分隔单域铁域P6322状态的开关屏障。我们讨论哪种类型的外部刺激可能会切换手性,以扭转(非螺旋)Dresselhaus d-1b旋转质地,为(螺旋)Rashba旋转质地提供了传统逆转的替代方案。
Spin splitting of energy bands can be induced by relativistic spin-orbit interactions in materials without inversion symmetry. Whereas polar space group symmetries permit Rashba (R-1) spin splitting with helical spin textures in momentum space, which could be reversed upon switching a ferroelectric polarization via applied electric fields, the ordinary Dresselhaus effect (D-1A) is ac-tive only in materials exhibiting nonpolar noncentrosymmetric crystal classes with atoms occupy-ing exclusively non-polar lattice sites. Consequently, the spin-momentum locking induced by D-1A is not electric field-switchable. An alternative type of Dresselhaus symmetry, referred to as D-1B, exhibits crystal class constraints similar to D-1A (all dipoles add up to zero), but unlike D-1A, at least one polar site is occupied. We find that this behavior exists in a class of ferri-chiral crys-tals, which in principle could be reversed upon a change in chirality. Focusing on alkali metal chalcogenides, we identify NaCu5S3 in the nonentiamorphic ferri-chiral structure, which exhibits CuS3 chiral units differing in the magnitude of their Cu displacements. We then synthesize NaCu5S3 (space group P6322) and confirm its ferri-chiral structure with power x-ray diffraction. Our electronic structure calculations demonstrate it exhibits D-1B spin splitting as well as a ferri-chiral phase transition, revealing spin splitting interdependent on chirality. Our electronic struc-ture calculations show that a few percent biaxial tensile strain can reduce (or nearly quench) the switching barrier separating the monodomain ferri-chiral P6322 states. We discuss what type of external stimuli might switch the chirality so as to reverse the (non-helical) Dresselhaus D-1B spin texture, offering an alternative to the traditional reversal of the (helical) Rashba spin texture.