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Spin-momentum locked interaction between guided photons and surface electrons in topological insulators

机译:拓扑绝缘体中被引导的光子与表面电子之间的自旋动量锁定相互作用

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The propagation of electrons and photons can respectively have the spin-momentum locking effect which correlates spin with linear momentum. For surface electrons in three-dimensional topological insulators (TIs), their spin is locked to the transport direction. Analogously, photons in optical waveguides carry transverse spin angular momentum which is also locked to the propagation direction. A direct connection between electron and photon spins occurs in TIs due to spin-dependent selection rules of optical transitions. Here we demonstrate an optoelectronic device that integrates a TI with a photonic waveguide. Interaction between photons in the waveguide and surface electrons in a Bi2Se3 layer generates a directional, spin-polarized photocurrent. Because of spin-momentum locking, changing light propagation direction reverses photon spin and thus the direction of the photocurrent. Our device represents a way of implementing coupled spin–orbit interaction between electrons and photons and may lead to applications in opto-spintronics and quantum information processing.
机译:电子和光子的传播可以分别具有自旋动量锁定效应,使自旋与线性动量相关。对于三维拓扑绝缘体(TI)中的表面电子,其自旋被锁定在传输方向上。类似地,光波导中的光子带有横向自旋角动量,该自旋角动量也被锁定在传播方向上。由于自旋相关的光学跃迁选择规则,TI中电子和光子自旋之间发生直接连接。在这里,我们演示了将TI与光子波导集成在一起的光电器件。波导中的光子与Bi2Se3层中的表面电子之间的相互作用产生定向的自旋极化光电流。由于自旋动量锁定,改变光传播方向会使光子自旋逆转,从而使光电流的方向逆转。我们的设备代表了一种实现电子与光子之间耦合的自旋-轨道相互作用的方式,并且可能会导致在光电自旋电子学和量子信息处理中的应用。

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