TY - JOUR
T1 - Ultra-low-loss on-chip zero-index materials
AU - Dong, Tian
AU - Liang, Jiujiu
AU - Camayd-Muñoz, Sarah
AU - Liu, Yueyang
AU - Tang, Haoning
AU - Kita, Shota
AU - Chen, Peipei
AU - Wu, Xiaojun
AU - Chu, Weiguo
AU - Mazur, Eric
AU - Li, Yang
N1 - Publisher Copyright:
© 2021, The Author(s).
PY - 2021/12
Y1 - 2021/12
N2 - 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.
AB - 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.
UR - https://www.scopus.com/pages/publications/85098891159
U2 - 10.1038/s41377-020-00436-y
DO - 10.1038/s41377-020-00436-y
M3 - 文章
AN - SCOPUS:85098891159
SN - 2047-7538
VL - 10
JO - Light: Science and Applications
JF - Light: Science and Applications
IS - 1
M1 - 10
ER -