论文标题
操纵巨型Rashba Valley拆分和量子厅在几层黑色砷中通过静电控件
Manipulating Giant Rashba Valley Splitting and Quantum Hall States in Few-Layer Black Arsenic by Electrostatic Gating
论文作者
论文摘要
当旋转轨道耦合(SOC)与库仑相互作用,频带拓扑和外部调制力等动态相互联系时,非中心的二维(2D)电子系统可能会出现令人兴奋的现象。在这里,我们报告了在中心隔离和稳定的布莱尔赛车和stark sprient splyby splachery calles andersexient(基础上),均匀的外观和stark sibles claste spersement andere claste anba calsempersement(基础),这是综合的浮力(基础)。量子厅状态(QHS)通过静电门控可逆控制。这一不寻常的发现植根于BAS的起皱正方形晶格,其中重$ 4p $轨道形成高度不对称的$γ$ valley,带有$ p_ {z} $对称性和$ p_ {x} $的$ d $ valleys,位于Brillouin Zone(BZ)中心和附近的$ p_ {x} $ origin当结构反转对称性被垂直电场打破时,巨大的Rashba Soc被激活了$ p_ {x} $频段,以产生强大的自旋旋转$ d^{+} $和$ d^{ - } $ d^{ - } $ valleys与time-verservers-vers-eversermeTry相关的$ vers-exymetry,并与$γ$ rashba bands共存,并由$γ$ rashba $ p_ p_ p_ p_ p_ p_ p_ p_ p_ p_ p_ p_ p_ p_ p_ p_ p_ p。有趣的是,强烈的鲜明效果显示出相同的$ p_ {x} $ - $ d $的轨道选择性,共同将价值带最大转移为$ d^{\ pm} $ valleys超过$γ$ pockets。 SOC和Stark之间的这种策划效果使我们能够实现2D孔气体可调式旋转的旋转山谷操纵,这是由QHS中的非常规的磁场触发的偶数过渡所揭示的。对于电子掺杂,$γ$ rashba频段的量化的特征是从两个抛物线山谷到带电载体浓度增加时从两个抛物线谷到独特的内部螺旋结构的特殊密度依赖性过渡。
Exciting phenomena may emerge in non-centrosymmetric two-dimensional (2D) electronic systems when spin-orbit coupling (SOC) interplays dynamically with Coulomb interactions, band topology, and external modulating forces, etc. Here, we report illuminating synergetic effects between SOC and Stark in centrosymmetric few-layer black arsenic (BAs), manifested as giant Rashba valley splitting and exotic quantum Hall states (QHS) reversibly controlled by electrostatic gating. The unusual finding is rooted in the puckering square lattice of BAs, in which heavy $4p$ orbitals form highly asymmetric $Γ$ valley with the $p_{z}$ symmetry and $D$ valleys of the $p_{x}$ origin, located at the Brillouin zone (BZ) center and near the time reversal invariant momenta of $X$, respectively. When the structure inversion symmetry is broken by perpendicular electric field, giant Rashba SOC is activated for the $p_{x}$ bands to produce strong spin-polarized $D^{+}$ and $D^{-}$ valleys related by time-reversal symmetry, coexisting with weak $Γ$ Rashba bands constrained by the $p_{z}$ symmetry. Intriguingly, strong Stark effect shows the same $p_{x}$-orbital selectiveness for $D$, collectively shifting the valence band maximum of $D^{\pm}$ valleys to exceed the $Γ$ pockets. Such an orchestrating effect between SOC and Stark allows us to realize gate-tunable spin valley manipulations for 2D hole gas, as revealed by unconventional magnetic field triggered even-to-odd transitions in QHS. For electron doping, the quantization of the $Γ$ Rashba bands is characterized by peculiar density-dependent transitions in band topology from two parabolic valleys to a unique inner-outer helical structure when charge carrier concentrations increase.