Room-temperature lasing from nanophotonic topological cavities
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Smirnova, Daria
Tripathi, Aditya
Kruk, Sergey
Hwang, Min-Soo
Kim, Ha-Reem
Park, Hong-Gyu
Kivshar, Yuri
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Nature Publishing Group
Abstract
The study of topological phases of light underpins a promising paradigm for engineering disorder-immune compact photonic devices with unusual properties. Combined with an optical gain, topological photonic structures provide a novel platform for micro- and nanoscale lasers, which could benefit from nontrivial band topology and spatially localized gap states. Here, we propose and demonstrate experimentally active nanophotonic topological cavities incorporating III-V semiconductor quantum wells as a gain medium in the structure. We observe room-temperature lasing with a narrow spectrum, high coherence, and threshold behaviour. The emitted beam hosts a singularity encoded by a triade cavity mode that resides in the bandgap of two interfaced valley-Hall periodic photonic lattices with opposite parity breaking. Our findings make a step towards topologically controlled ultrasmall light sources with nontrivial radiation characteristics.
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Light: Science & Applications
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Creative Commons Attribution 4.0 International License
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