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自旋-谷 Rashba 单层激光器

Spin-valley Rashba monolayer laser.

作者信息

Rong Kexiu, Duan Xiaoyang, Wang Bo, Reichenberg Dror, Cohen Assael, Liu Chieh-Li, Mohapatra Pranab K, Patsha Avinash, Gorovoy Vladi, Mukherjee Subhrajit, Kleiner Vladimir, Ismach Ariel, Koren Elad, Hasman Erez

机构信息

Atomic-Scale Photonics Laboratory, Russell Berrie Nanotechnology Institute, and Helen Diller Quantum Center, Technion - Israel Institute of Technology, Haifa, Israel.

State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai, China.

出版信息

Nat Mater. 2023 Sep;22(9):1085-1093. doi: 10.1038/s41563-023-01603-3. Epub 2023 Jul 6.

Abstract

Direct-bandgap transition metal dichalcogenide monolayers are appealing candidates to construct atomic-scale spin-optical light sources owing to their valley-contrasting optical selection rules. Here we report on a spin-optical monolayer laser by incorporating a WS monolayer into a heterostructure microcavity supporting high-Q photonic spin-valley resonances. Inspired by the creation of valley pseudo-spins in monolayers, the spin-valley modes are generated from a photonic Rashba-type spin splitting of a bound state in the continuum, which gives rise to opposite spin-polarized ±K valleys due to emergent photonic spin-orbit interaction under inversion symmetry breaking. The Rashba monolayer laser shows intrinsic spin polarizations, high spatial and temporal coherence, and inherent symmetry-enabled robustness features, enabling valley coherence in the WS monolayer upon arbitrary pump polarizations at room temperature. Our monolayer-integrated spin-valley microcavities open avenues for further classical and non-classical coherent spin-optical light sources exploring both electron and photon spins.

摘要

由于其谷对比度光学选择规则,直接带隙过渡金属二卤化物单层是构建原子尺度自旋光学光源的有吸引力的候选材料。在此,我们报告了一种自旋光学单层激光器,它通过将WS单层纳入支持高Q光子自旋谷共振的异质结构微腔中而实现。受单层中谷赝自旋产生的启发,自旋谷模式由连续态束缚态的光子Rashba型自旋分裂产生,由于在反演对称性破缺下出现的光子自旋轨道相互作用,产生了相反的自旋极化±K谷。Rashba单层激光器显示出固有的自旋极化、高空间和时间相干性以及固有的对称性增强的稳健特性,在室温下,在任意泵浦极化情况下,能够在WS单层中实现谷相干。我们的单层集成自旋谷微腔为进一步探索电子和光子自旋的经典和非经典相干自旋光学光源开辟了道路。

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