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Ultra-low-loss on-chip zero-index materials

Engineering and Technology

Ultra-low-loss on-chip zero-index materials

T. Dong, J. Liang, et al.

Explore the fascinating world of zero-index materials that promise perfect spatial coherence! This innovative research, conducted by prominent scientists including Tian Dong and Sarah Camayd-Muñoz, reveals an ultra-low-loss integrated Dirac cone material, paving the way for groundbreaking applications in optics.... show more
Abstract
Light travels in a zero-index medium without accumulating a spatial phase, resulting in perfect spatial coherence. Such coherence brings several potential applications, including arbitrarily shaped waveguides, phase-mismatch-free nonlinear propagation, large-area single-mode lasers, and extended superradiance. A promising platform to achieve these applications is an integrated Dirac-cone material that features an impedance-matched zero index. Although an integrated Dirac-cone material eliminates ohmic losses via its purely dielectric structure, it still entails out-of-plane radiation loss, limiting its applications to a small scale. We design an ultra-low-loss integrated Dirac cone material by achieving destructive interference above and below the material. The material consists of a square array of low-aspect-ratio silicon pillars embedded in silicon dioxide, featuring easy fabrication using a standard planar process. This design paves the way for leveraging the perfect spatial coherence of large-area zero-index materials in linear, nonlinear, and quantum optics.
Publisher
Light: Science & Applications
Published On
Oct 10, 2021
Authors
Tian Dong, Jiujiu Liang, Sarah Camayd-Muñoz, Yueyang Liu, Haoning Tang, Shota Kita, Peipei Chen, Xiaojun Wu, Weiguo Chu, Eric Mazur, Yang Li
Tags
zero-index medium
spatial coherence
Dirac cone material
nonlinear propagation
optics
waveguides
superradiance
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