光隔离器
插入损耗
传输(电信)
光电子学
波导管
材料科学
光学
硅光子学
功率(物理)
硅
传输损耗
物理
电力传输
集成光学
光功率
分离(微生物学)
电子工程
光通信
航程(航空)
光子学
时域有限差分法
光开关
功率损耗
纳米结构
共面波导
Q系数
共振(粒子物理)
动力传输
输电线路
作者
Junxian Shi,Shuai Li,Yuan Liu,Zhengqi Liu,Xianping Wang,Jing Chen,Xiaoshan Liu,Guiqiang Liu
标识
DOI:10.6084/m9.figshare.c.7942835.v1
摘要
Nonreciprocal transport is indispensable for many modern optical devices. However, traditional nonreciprocal devices heavily depend on external bias. Achieving significant nonreciprocity in practice remains challenging. In this work, we propose a Kerr-nonlinearity-based design to achieve strong nonreciprocal transmission. By leveraging high-Q guided-mode resonances (GMRs) in a Si waveguide nanostructure decorated with periodic grooves, we demonstrate magnetic-free bidirectional nonreciprocal transmission and isolation. A large nonreciprocal intensity range (NRIR ≈ 3.7) is achieved through parameter tuning under the low pump power intensity. Simultaneously, high-performance bidirectional isolation behaviors are realized including a 56.3 dB isolation with 6.16 dB insertion loss in the forward transmission and 43.8 dB isolation with 1.55 dB insertion loss in the reverse transmission. This design offers a versatility for applications in optical communication, optical switches, and bidirectional nonreciprocal devices.
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