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Zeeman splitting via spin-valley-layer coupling in bilayer MoTe2

机译:通过双层MoTe2中的自旋谷层耦合进行塞曼分裂

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摘要

Atomically thin monolayer transition metal dichalcogenides possess coupling of spin and valley degrees of freedom. The chirality is locked to identical valleys as a consequence of spin–orbit coupling and inversion symmetry breaking, leading to a valley analog of the Zeeman effect in presence of an out-of-plane magnetic field. Owing to the inversion symmetry in bilayers, the photoluminescence helicity should no longer be locked to the valleys. Here we show that the Zeeman splitting, however, persists in 2H-MoTe2 bilayers, as a result of an additional degree of freedom, namely the layer pseudospin, and spin–valley-layer locking. Unlike monolayers, the Zeeman splitting in bilayers occurs without lifting valley degeneracy. The degree of circularly polarized photoluminescence is tuned with magnetic field from −37% to 37%. Our results demonstrate the control of degree of freedom in bilayer with magnetic field, which makes bilayer a promising platform for spin-valley quantum gates based on magnetoelectric effects.
机译:原子薄的单层过渡金属二卤化物具有自旋和谷自由度的耦合。由于自旋-轨道耦合和反演对称性破裂,手征性被锁定在相同的波谷上,从而导致在平面外磁场存在下塞曼效应的波谷模拟。由于双层中的反型对称性,光致发光螺旋度不应再被锁定在波谷上。在这里,我们显示,由于附加的自由度(即伪旋转层和自旋-谷层锁定),塞曼分裂在2H-MoTe2双层中仍然存在。与单层不同,塞曼分裂为双层时不会引起山谷退化。圆偏振光致发光的程度可通过-37%至37%的磁场进行调节。我们的结果证明了磁场对双层的自由度的控制,这使双层成为基于磁电效应的自旋谷量子门的有前途的平台。

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