论文标题

泄漏辐射的相互作用和拓扑光子晶体腔的保护

Interplay of leakage radiation and protection in topological photonic crystal cavities

论文作者

Barczyk, René, Parappurath, Nikhil, Arora, Sonakshi, Bauer, Thomas, Kuipers, L., Verhagen, Ewold

论文摘要

由于拓扑保护的前景,将拓扑概念引入光子晶体腔设计对综合光子学的应用有很大的希望。这项研究检查了二维拓扑光子晶体腔泄漏辐射中拓扑光限制的特征。这些空腔是在一个全dielectric平台中实现的,该平台在电信波长处具有光子量子旋转大厅效应,并支持螺旋边缘状态,这些状态弱耦合到辐射连续体。通过光谱位置和特征态的多极性来表征周围散装晶格中缩放到单点缺陷的谐振器模式。实际和动量空间中的模式曲线使用远场成像和傅立叶光谱法映射,从而揭示了空腔模式的某些特性如何反映其在拓扑带结构中的起源。这包括散发性和拓扑缺陷腔的模式光谱的带状诱导的限制和倒立尺度。此外,证明了损失率中拓扑保护的标志,这在很大程度上不受空腔形状和大小的影响。该结果构成了使用辐射拓扑腔来在光线上限制光线,控制波浪前的控制以及增强光 - 物质相互作用的重要步骤。

The introduction of topological concepts to the design of photonic crystal cavities holds great promise for applications in integrated photonics due to the prospect of topological protection. This study examines the signatures of topological light confinement in the leakage radiation of two-dimensional topological photonic crystal cavities. The cavities are implemented in an all-dielectric platform that features the photonic quantum spin Hall effect at telecom wavelengths and supports helical edge states that are weakly coupled to the radiation continuum. The modes of resonators scaling down to single point defects in the surrounding bulk lattice are characterized via spectral position and multipolar nature of the eigenstates. The mode profiles in real and momentum space are mapped using far field imaging and Fourier spectropolarimetry, revealing how certain properties of the cavity modes reflect on their origin in the topological bandstructure. This includes band-inversion-induced confinement and inverted scaling of mode spectra for trivial and topological defect cavities. Furthermore, hallmarks of topological protection in the loss rates are demonstrated, which are largely unaffected by cavity shape and size. The results constitute an important step toward the use of radiative topological cavities for on-chip confinement of light, control of emitted wave fronts, and enhancing light-matter interactions.

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