光子学
材料科学
光电子学
光开关
超短脉冲
石墨烯
非线性系统
光通信
聚二甲基硅氧烷
复合数
激光器
电子工程
非线性光学
非线性光学
光学计算
调制(音乐)
硅光子学
超材料
计算机科学
光功率
还原(数学)
光子超材料
逻辑门
激发
光子晶体
光学性能监测
纳米技术
光学
光交叉连接
光学晶体管
作者
Zexin Cui,Lihua Tong,Yuehua Wang,Mengting Jiang,Jiaxu Sun,Huabo Song,Qifan Li,Guangyuan Cui,Churui Guo,Wentao Meng,Shaoya Wang,Y D Chen,Yanling Wu,Xiaodan Xu
摘要
ABSTRACT All‐optical information processing, featuring ultrafast response and immunity to electromagnetic interference, plays a pivotal role in future communications and computing technologies. Graphene, with its exceptional nonlinear optical properties and mechanical flexibility, emerges as an ideal candidate for flexible photonic devices. However, graphene‐based photonic components are typically functionally fixed and lack dynamic reconfigurability. Here, we integrate graphene with polydimethylsiloxane (PDMS) to fabricate a flexible graphene/PDMS composite and investigate its spatial self‐phase modulation (SSPM) effect under mechanical strain. Our results demonstrate that the nonlinear optical response of the composite can be dynamically tuned by strain. Under 532 nm laser excitation (intensity 35 W/cm 2 ), increasing the tensile strain from 0% to 40% continuously suppresses the number of SSPM diffraction rings from 8 to 0, while accompanied by a reduction in the third‐order nonlinear susceptibility from 1.357 × 10 −7 to 6.125 × 10 −8 e.s.u. This tunable SSPM effect originates from strain‐induced modifications in both the effective number of optically interacting layers and the electronic band structure of graphene. Leveraging this mechanism, we further designed a strain‐gated optical switch and reconfigurable optical logic gates, enabling flexible switching between “OR” and “AND” gates. This work opens new avenues for graphene‐based tunable nonlinear photonic devices.
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