Spin-Momentum-Locked Edge Mode for Topological Vortex Lasing

Spin-momentum locking is a direct consequence of bulk topological order and provides a basic concept to control a carrier's spin and charge flow for new exotic phenomena in condensed matter physics. However, up to date the research on spin-momentum locking solely focuses on its in-plane transpo...

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Veröffentlicht in:Physical review letters 2020-07, Vol.125 (1), p.013903-013903, Article 013903
Hauptverfasser: Yang, Zhen-Qian, Shao, Zeng-Kai, Chen, Hua-Zhou, Mao, Xin-Rui, Ma, Ren-Min
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Sprache:eng
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Zusammenfassung:Spin-momentum locking is a direct consequence of bulk topological order and provides a basic concept to control a carrier's spin and charge flow for new exotic phenomena in condensed matter physics. However, up to date the research on spin-momentum locking solely focuses on its in-plane transport properties. Here, we report an emerging out-of-plane radiation feature of spin-momentum locking in a non-Hermitian topological photonic system and demonstrate a high performance topological vortex laser based on it. We find that the gain saturation effect lifts the degeneracy of the paired counterpropagating spin-momentum-locked edge modes enabling lasing from a single topological edge mode. The near-field spin and orbital angular momentum of the topological edge mode lasing has a one-to-one far-field radiation correspondence. The methodology of probing the near-field topology feature by far-field lasing emission can be used to study other exotic phenomena. The device can lead to applications in superresolution imaging, optical tweezers, free-space optical sensing, and communication.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.125.013903