多稳态
光学双稳态
物理
光子晶体
联轴节(管道)
双稳态
非线性系统
磁滞
光子学
简并能级
非线性光学
光电子学
实现(概率)
光开关
拓扑(电路)
光学
约束(计算机辅助设计)
点(几何)
耦合模理论
失真(音乐)
质量(理念)
波长
作者
Zhen Liu,Xuefan Yin,Andrey Bogdanov,Yujia Nie,Yi Zuo,Hongbin Li,Feifan Wang,Chao Peng
标识
DOI:10.48550/arxiv.2511.12037
摘要
Multistability -- the emergence of multiple stable states under identical conditions -- is a hallmark of nonlinear complexity and an enabling mechanism for multilevel optical memory and photonic computing. Its realization in a compact footprint, however, is limited by intrinsically weak optical nonlinearities and the enlarged free spectral range that raises the multistability threshold. Here, we overcome this constraint by engineering a pair of spectrally close, ultra-high-Q resonances in a photonic crystal microcavity. Leveraging structural perturbations that deliberately introduce non-Hermitian coupling through a shared radiation channel, we drive the resonances toward an exceptional point with nearly degenerate wavelengths and balanced quality factors approaching $10^6$. This configuration substantially enhances thermo-optical nonlinearity and produces pronounced tristability and hysteresis loops within a footprint of 20 μm at input powers below 240 μW. We further demonstrate proof-of-concept optical random-access memory through controlled switching among multistable states. These results establish a general strategy for nonlinear microcavities to achieve energy-efficient multistability for reconfigurable all-optical memories, logic, and neuromorphic processors.
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