| Literature DB >> 33888640 |
Xingdu Qiao1, Bikashkali Midya2,3, Zihe Gao2, Zhifeng Zhang1, Haoqi Zhao1, Tianwei Wu2, Jieun Yim2, Ritesh Agarwal2, Natalia M Litchinitser4, Liang Feng5,1.
Abstract
The nonlinear scaling of complexity with the increased number of components in integrated photonics is a major obstacle impeding large-scale, phase-locked laser arrays. Here, we develop a higher-dimensional supersymmetry formalism for precise mode control and nonlinear power scaling. Our supersymmetric microlaser arrays feature phase-locked coherence and synchronization of all of the evanescently coupled microring lasers-collectively oscillating in the fundamental transverse supermode-which enables high-radiance, small-divergence, and single-frequency laser emission with a two-orders-of-magnitude enhancement in energy density. We also demonstrate the feasibility of structuring high-radiance vortex laser beams, which enhance the laser performance by taking full advantage of spatial degrees of freedom of light. Our approach provides a route for designing large-scale integrated photonic systems in both classical and quantum regimes.Year: 2021 PMID: 33888640 DOI: 10.1126/science.abg3904
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728