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连续统中的自旋轨道锁定手性束缚态。

Spin-Orbit-Locking Chiral Bound States in the Continuum.

作者信息

Zhao Xingqi, Wang Jiajun, Liu Wenzhe, Che Zhiyuan, Wang Xinhao, Chan C T, Shi Lei, Zi Jian

机构信息

State Key Laboratory of Surface Physics, Key Laboratory of Micro- and Nano-Photonic Structures (Ministry of Education) and Department of Physics, <a href="https://ror.org/013q1eq08">Fudan University</a>, Shanghai 200433, China.

Department of Physics, <a href="https://ror.org/00q4vv597">The Hong Kong University of Science and Technology</a>, Hong Kong 999077, China.

出版信息

Phys Rev Lett. 2024 Jul 19;133(3):036201. doi: 10.1103/PhysRevLett.133.036201.

Abstract

Bound states in the continuum (BICs), which are confined optical modes exhibiting infinite quality factors and carrying topological polarization configurations in momentum space, have recently sparked significant interest across both fundamental and applied physics. Here, we show that breaking time-reversal symmetry by an external magnetic field enables a new form of chiral BICs with spin-orbit locking. Applying a magnetic field to a magneto-optical photonic crystal slab lifts doubly degenerate BICs into a pair of chiral BICs carrying opposite pseudospins and orbital angular momenta. Multipole analysis verifies the nonzero angular momenta and reveals the spin-orbital-locking behaviors. In momentum space, we observe ultrahigh quality factors and near-circular polarization surrounding chiral BICs, enabling potential applications in spin-selective nanophotonics. Compared to conventional BICs, the magnetically induced chiral BICs revealed here exhibit distinct properties and origins, significantly advancing the topological photonics of BICs by incorporating broken time-reversal symmetry.

摘要

连续统中的束缚态(BICs)是一种受限光学模式,在动量空间中表现出无限品质因数并携带拓扑极化配置,最近在基础物理和应用物理领域都引发了极大的兴趣。在此,我们表明,通过外部磁场打破时间反演对称性能够实现一种具有自旋 - 轨道锁定的新型手性BICs。对磁光光子晶体平板施加磁场会将双重简并的BICs提升为一对携带相反赝自旋和轨道角动量的手性BICs。多极分析验证了非零角动量,并揭示了自旋 - 轨道锁定行为。在动量空间中,我们观察到手性BICs周围具有超高品质因数和近圆极化,这使其在自旋选择性纳米光子学中具有潜在应用。与传统BICs相比,这里揭示的磁诱导手性BICs表现出独特的性质和起源,通过纳入打破的时间反演对称性显著推动了BICs的拓扑光子学发展。

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