可重构性
光子学
材料科学
循环器
光电子学
调制(音乐)
模式(计算机接口)
光学
消光比
光环行器
信号(编程语言)
光开关
光放大器
插入损耗
激光器
光通信
光隔离器
铌酸锂
小型化
光子集成电路
无线电频率
半导体激光器理论
物理
调幅
宽带
相(物质)
相位调制
硅光子学
作者
Weike Zhao,Mingyu Zhu,Aoyun Gao,Hongxuan Liu,Hengzhen Cao,Fei Huang,Weihan Wang,Zhun Wei,Zejie Yu,Liu Liu,Daoxin Dai
出处
期刊:ACS Photonics
[American Chemical Society]
日期:2025-11-28
卷期号:12 (12): 6650-6661
标识
DOI:10.1021/acsphotonics.5c01650
摘要
Nonreciprocal optical devices such as isolators and circulators form the backbone of modern optical systems by enabling unidirectional light routing and signal isolation. The rapid development of on-chip photonic systems, driven by the cointegration of semiconductor lasers and optical components, demands fully monolithic nonreciprocal devices without reliance on magneto-optical materials. We propose and demonstrate a traveling-wave-driven optical circulator on the lithium niobate-on-insulator (LNOI) platform, leveraging electro-optically induced nonreciprocal TE0-TE1 mode conversion. The device architecture combines a traveling-wave electro-optic (E-O) nonreciprocal mode converter with two mode (de)multiplexers, while a square-wave radiofrequency (RF) signal is synchronized to introduce the direction-dependent phase modulation as desired. Experimentally, the fabricated multiport optical circulator with the 1.5 cm-long modulation region shows low excess losses of 0.5–2 dB as well as high extinction ratios exceeding 15 dB (counter-propagation) and 10 dB (copropagation) across the wavelength range of 1530–1605 nm, achieved with 21 dBm and 4.1 GHz RF driving signals. Note that this approach eliminates the need for magneto-optical materials and enables full circulation-path reconfigurability through controlling the injected RF signals. The present approach of merging an E-O nonreciprocal mode converter and mode (de)multiplexers opens a promising option for developing nonmagnetic nonreciprocity in photonic integrated circuits, with direct applicability to quantum photonics, optical communications, and programmable photonic networks.
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