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原子级薄半导体中高谷相干激子极化激元的光学谷霍尔效应

Optical valley Hall effect for highly valley-coherent exciton-polaritons in an atomically thin semiconductor.

作者信息

Lundt Nils, Dusanowski Łukasz, Sedov Evgeny, Stepanov Petr, Glazov Mikhail M, Klembt Sebastian, Klaas Martin, Beierlein Johannes, Qin Ying, Tongay Sefaattin, Richard Maxime, Kavokin Alexey V, Höfling Sven, Schneider Christian

机构信息

Technische Physik and Wilhelm-Conrad-Röntgen-Research Center for Complex Material Systems, Universität Würzburg, Würzburg, Germany.

Physics and Astronomy School, University of Southampton, Southampton, UK.

出版信息

Nat Nanotechnol. 2019 Aug;14(8):770-775. doi: 10.1038/s41565-019-0492-0. Epub 2019 Jul 22.

Abstract

Spin-orbit coupling is a fundamental mechanism that connects the spin of a charge carrier with its momentum. In the optical domain, an analogous synthetic spin-orbit coupling is accessible by engineering optical anisotropies in photonic materials. Both yield the possibility of creating devices that directly harness spin and polarization as information carriers. Atomically thin transition metal dichalcogenides promise intrinsic spin-valley Hall features for free carriers, excitons and photons. Here we demonstrate spin- and valley-selective propagation of exciton-polaritons in a monolayer of MoSe that is strongly coupled to a microcavity photon mode. In a wire-like device we trace the flow and helicity of exciton-polaritons expanding along its channel. By exciting a coherent superposition of K and K' tagged polaritons, we observe valley-selective expansion of the polariton cloud without either an external magnetic field or coherent Rayleigh scattering. The observed optical valley Hall effect occurs on a macroscopic scale, offering the potential for applications in spin-valley-locked photonic devices.

摘要

自旋轨道耦合是一种将电荷载流子的自旋与其动量联系起来的基本机制。在光学领域,通过在光子材料中设计光学各向异性,可以实现类似的合成自旋轨道耦合。这两者都为制造直接利用自旋和极化作为信息载体的器件提供了可能性。原子级薄的过渡金属二卤化物有望为自由载流子、激子和光子提供本征自旋谷霍尔特性。在此,我们展示了激子极化激元在与微腔光子模式强耦合的单层MoSe中自旋和谷选择性传播。在一个线状器件中,我们追踪了沿其通道扩展的激子极化激元的流动和螺旋度。通过激发K和K'标记的极化激元的相干叠加,我们观察到在没有外部磁场或相干瑞利散射的情况下,极化激元云的谷选择性扩展。观察到的光学谷霍尔效应发生在宏观尺度上,为自旋谷锁定光子器件的应用提供了潜力。

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