强耦合使手性激光成为可能

IF 11.7 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Huachun Deng, Xiong Jiang, Yao Zhang, Yixuan Zeng, Hamdi Barkaoui, Shumin Xiao, Shaohua Yu, Yuri Kivshar, Qinghai Song
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引用次数: 0

摘要

连续介质中的手性准束缚态是元光子结构中自旋相关的高Q共振,这种共振是通过工程的面内和面外不对称来扰动对称保护的光态来实现的,它们支持垂直方向的手性激光。本文研究了手性超表面中两个共振之间的耦合,并介绍了高纯度手性激光发射的机制。我们揭示了两个具有近正交极化的共振在一个工程的手性超表面中成为强耦合的。共振固有的相位差,加上衰减通道上的相干破坏,可以赋予其中一种混合模式高Q因子和最大的手性。我们通过测量透射光谱、角分辨光致发光和激光发射来验证这种方法。我们认为这种机制可以打破传统手性准bic激光的限制,使手性发射在任何设计方向上都可以实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Chiral lasing enabled by strong coupling

Chiral lasing enabled by strong coupling
Chiral quasi-bound states in the continuum are spin-dependent high-Q resonances in meta-photonic structures that are realized by perturbing symmetry-protected optical states by engineering in-plane and out-of-plane asymmetries, and they support chiral lasing in the vertical direction. Here, we explore the coupling between two resonances in a chiral metasurface and introduce a mechanism for high-purity chiral laser emission. We reveal that two resonances with nearly orthogonal polarizations become strongly coupled in an engineered chiral metasurface. The inherent phase difference of the resonances, associated with the coherent destruction on the decay channel, can endow high-Q factor and maximize chirality to one of the hybrid modes. We verify this approach experimentally by measuring transmission spectra, angle-resolved photoluminescence, and laser emission. We believe that this mechanism allows breaking restrictions on conventional chiral quasi-BIC lasing, enabling the realization of chiral emission at any designed direction.
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来源期刊
Science Advances
Science Advances 综合性期刊-综合性期刊
CiteScore
21.40
自引率
1.50%
发文量
1937
审稿时长
29 weeks
期刊介绍: Science Advances, an open-access journal by AAAS, publishes impactful research in diverse scientific areas. It aims for fair, fast, and expert peer review, providing freely accessible research to readers. Led by distinguished scientists, the journal supports AAAS's mission by extending Science magazine's capacity to identify and promote significant advances. Evolving digital publishing technologies play a crucial role in advancing AAAS's global mission for science communication and benefitting humankind.
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