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Phonon-driven spin-Floquet magneto-valleytronics in MoS 2

机译:MoS 2中声子驱动的自旋-浮子磁控电子学

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Two-dimensional materials equipped with strong spin–orbit coupling can display novel electronic, spintronic, and topological properties originating from the breaking of time or inversion symmetry. A lot of interest has focused on the valley degrees of freedom that can be used to encode binary information. By performing ab initio time-dependent density functional simulation on MoS2, here we show that the spin is not only locked to the valley momenta but strongly coupled to the optical E″ phonon that lifts the lattice mirror symmetry. Once the phonon is pumped so as to break time-reversal symmetry, the resulting Floquet spectra of the phonon-dressed spins carry a net out-of-plane magnetization (≈0.024μB for single-phonon quantum) even though the original system is non-magnetic. This dichroic magnetic response of the valley states is general for all 2H semiconducting transition-metal dichalcogenides and can be probed and controlled by infrared coherent laser excitation.
机译:配备有强自旋-轨道耦合的二维材料可以显示出源自时间中断或反演对称性的新颖电子,自旋电子和拓扑特性。许多兴趣集中在可用于编码二进制信息的谷自由度上。通过在MoS2上进行从头到尾随时间变化的密度泛函仿真,我们在这里显示自旋不仅被锁定到谷矩,而且还与光学E''声子牢固耦合,从而增强了晶格镜的对称性。一旦抽出声子以打破时间反转对称性,即使原来的系统不是非声子,自带声子的自旋的最终Floquet光谱也会携带出净的平面外磁化强度(单声子量子约为0.024μB)。 -磁性。对于所有2H半导体过渡金属二卤化物,谷值态的这种二向色磁响应是普遍的,并且可以通过红外相干激光激发来探测和控制。

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