Wangwang Ke, Tingfeng Li, Yu He, Hongyi Chen, Zhanfeng Jiang, Xiangmeng Lu, Xiaoshan Wu, Hong-Ling Cai, Qi Qin
Abstract Photonic-crystal surface-emitting lasers (PCSELs) can deliver watt-level, diffraction-limited emission from millimeter-scale, lens-free systems. However, scaling this performance to high-power red PCSELs remains challenging, as strong intrinsic absorption in III-V materials obstructs the integration in a common platform for embedded air holes and substrate-side emission. Here we introduce a novel red-emission PCSEL based on the air-column architecture that breaks the mirror symmetry of the double-lattice photonic-crystal along y = x diagonal to enhance its output efficiency. Three-dimensional coupled-wave theory (3D-CWT) combined with multi-parameter scanning is employed to quantify the radiative ability, inter-modal crosstalk, and coupling strength in infinite structures, as well as to extract the slope efficiency and threshold margin of finite devices. The optimized double-ellipse lattice with a 14 ° rotation yields a high slope efficiency of 0.82 W A − 1 while maintaining robust transverse-mode discrimination and exhibiting tolerance to ± 0.01 variations in the filling factor. Our work demonstrates that the symmetry deliberately broken by rotation in plane geometry provides an additional degree of freedom for maximizing the radiation efficiency of double-lattice PCSELs and enables a compact high-brightness red laser design for laser display and medical lighting.