TY - JOUR
T1 - On-chip integrated exceptional surface microlaser
AU - Liao, Kun
AU - Zhong, Yangguang
AU - Du, Zhuochen
AU - Liu, Guodong
AU - Li, Chentong
AU - Wu, Xianxin
AU - Deng, Chunhua
AU - Lu, Cuicui
AU - Wang, Xingyuan
AU - Chan, Che Ting
AU - Song, Qinghai
AU - Wang, Shufeng
AU - Liu, Xinfeng
AU - Hu, Xiaoyong
AU - Gong, Qihuang
N1 - Publisher Copyright:
Copyright © 2023 The Authors, some rights reserved.
PY - 2023/4
Y1 - 2023/4
N2 - The on-chip integrated visible microlaser is a core unit of high-speed visible-light communication with huge bandwidth resources, which needs robustness against fabrication errors, compressible linewidth, reducible threshold, and in-plane emission. However, until now, it has been a great challenge to meet these requirements simultaneously. Here, we report a scalable strategy to realize a robust on-chip integrated visible microlaser with further improved lasing performances enabled by the increased orders (n) of exceptional surfaces, and experimentally verify the strategy by demonstrating the performances of a second-order exceptional surface–tailored microlaser. We further prove the potential application of the strategy by discussing an exceptional surface–tailored topological microlaser with unique performances. This work lays a foundation for further development of on-chip integrated high-speed visible-light communication and processing systems, provides a platform for the fundamental study of non-Hermitian photonics, and proposes a feasible method of joint research for non-Hermitian photonics with nonlinear optics and topological photonics.
AB - The on-chip integrated visible microlaser is a core unit of high-speed visible-light communication with huge bandwidth resources, which needs robustness against fabrication errors, compressible linewidth, reducible threshold, and in-plane emission. However, until now, it has been a great challenge to meet these requirements simultaneously. Here, we report a scalable strategy to realize a robust on-chip integrated visible microlaser with further improved lasing performances enabled by the increased orders (n) of exceptional surfaces, and experimentally verify the strategy by demonstrating the performances of a second-order exceptional surface–tailored microlaser. We further prove the potential application of the strategy by discussing an exceptional surface–tailored topological microlaser with unique performances. This work lays a foundation for further development of on-chip integrated high-speed visible-light communication and processing systems, provides a platform for the fundamental study of non-Hermitian photonics, and proposes a feasible method of joint research for non-Hermitian photonics with nonlinear optics and topological photonics.
UR - https://www.scopus.com/pages/publications/85152333464
U2 - 10.1126/sciadv.adf3470
DO - 10.1126/sciadv.adf3470
M3 - Article
C2 - 37043581
AN - SCOPUS:85152333464
SN - 2375-2548
VL - 9
JO - Science Advances
JF - Science Advances
IS - 15
M1 - eadf3470
ER -