Full polarization control of photons with evanescent wave coupling in the ultra subwavelength gap of photonic molecules

IF 20.6 Q1 OPTICS
Rui Zhu, Chenjiang Qian, Shan Xiao, Jingnan Yang, Sai Yan, Hanqing Liu, Deyan Dai, Hancong Li, Longlong Yang, Xiqing Chen, Yu Yuan, Danjie Dai, Zhanchun Zuo, Haiqiao Ni, Zhichuan Niu, Can Wang, Kuijuan Jin, Qihuang Gong, Xiulai Xu
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Abstract

Polarization of photons plays a key role in quantum optics and light-matter interactions, however, it is difficult to control in nanosystems since the eigenstate of a nanophotonic cavity is usually fixed and linearly polarized. Here, we reveal the polarization control of photons using photonic molecules (PMs) that host supermodes of two coupled nanobeam cavities. In contrast to conventional PMs in a 2D photonic crystal slab, for the two 1D photonic crystal nanobeam cavities the shift and gap between them can be tuned continuously. With an ultra subwavelength gap, the coupling between the two cavities is dominated by the evanescent wave coupling in the surrounding environment, rather not the emission wave coupling for conventional PMs. As such, the non-Hermiticity of the system becomes pronounced, and the supermodes consist of a non-trivial phase difference between bare eigenstates that supports elliptical polarization. We observe that both the polarization degree and polarization angle of the antisymmetric mode strongly depend on the shift and gap between the two cavities, exhibiting polarization states from linear to circular. This full polarization control indicates the great potential of PMs in quantum optical devices and spin-resolved cavity quantum electrodynamics.

Abstract Image

光子分子超亚波长间隙中具有倏逝波耦合的光子的全偏振控制
光子的偏振在量子光学和光-物质相互作用中起着关键作用,然而,由于纳米光子腔的本征态通常是固定的和线性偏振的,因此在纳米系统中难以控制。在这里,我们揭示了利用光子分子(pm)来控制光子的偏振,光子分子是两个耦合纳米光束腔的超模。与传统的二维光子晶体板中的pm相比,对于两个一维光子晶体纳米束腔,它们之间的位移和间隙可以连续调谐。在超亚波长间隙中,两腔之间的耦合主要是由周围环境中的倏逝波耦合主导,而不是传统pm的发射波耦合。这样,系统的非厄米性变得明显,并且超模由支持椭圆偏振的裸本征态之间的非平凡相位差组成。我们观察到,反对称模的偏振度和偏振角都强烈依赖于两个腔之间的位移和间隙,呈现出从线性到圆形的偏振态。这种完全极化控制表明了pm在量子光学器件和自旋分辨腔量子电动力学中的巨大潜力。
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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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803
审稿时长
2.1 months
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