Recently, non-Hermitian topology and skin effects resulting from imaginary gauge fields and point-gapped systems have attracted much theoretical and experimental interest. Here we experimentally demonstrate the topological skin effect and boundary sensitivity, induced by the imaginary gauge field in a two-dimensional laser array, which are fundamentally different from any Hermitian topological effects and intrinsic to open systems. By selectively and asymmetrically injecting gain into the system, we have synthesized an imaginary gauge field on chip, which can be flexibly reconfigured on demand. We show not only that the non-Hermitian topological features remain intact in a nonlinear system, but also that they can be harnessed to enable persistent phase locking with intensity morphing. Our work lays the foundation for a dynamically reconfigurable on-chip coherent system with robust scalability, attractive for building high-brightness sources with arbitrary intensity profiles.
*This work is supported by the Army Research Office (ARO) (W911NF-21-1-014) and National Science Foundation (NSF) (ECCS-1846766, ECCS-1932803, PHY-1847240, and partially through MRSEC and NNCI).
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Publication:Z. Gao, X. Qiao, M. Pan, S. Wu, J. Yim, K. Chen, B. Midya, L. Ge, and L. Feng, Two-Dimensional Reconfigurable Non-Hermitian Gauged Laser Array, Phys. Rev. Lett. 130, 263801 (2023).
Presenters
Zihe Gao
Auburn University
Authors
Zihe Gao
Auburn University
Xingdu Qiao
University of Pennsylvania
Mingsen Pan
University of Pennsylvania
Shuang Wu
University of Pennsylvania
Jieun Yim
University of Pennsylvania
Kaiyuan Chen
University of Pennsylvania
Bikashkali Midya
Indian Institute of Science Education and Research