材料科学
石墨烯
光电子学
超短脉冲
硅光子学
光子学
光调制器
调制(音乐)
硅
纳米技术
光学
激光器
相位调制
物理
哲学
相位噪声
美学
作者
Hongyuan Cao,Mingfei Ding,Haitao Chen,Chaoyue Liu,Laiwen Yu,Mingyu Zhu,Weike Zhao,Jingshu Guo,Huan Li,Zejie Yu,Shiming Gao,Daoxin Dai
标识
DOI:10.1002/adom.202301549
摘要
Abstract All‐optical modulation plays a key role in next‐generation optical processing and has attracted enormous attention worldwide. With extraordinary optoelectronic characteristics and friendly integration compatibility with various nanostructures, graphene shows great potential for ultrafast and energy‐efficient all‐optical modulation. Here, high‐efficiency on‐chip all‐optical modulation is experimentally demonstrated based on ultra‐thin silicon/graphene hybrid waveguides, which are complementary‐metal‐oxide‐semiconductor‐compatible and easy to fabricate. Owing to the enhanced light‐graphene interaction enabled by the ultra‐thin silicon photonic platform, the optical nonlinear absorption in graphene is greatly enhanced and a modulation depth of >2 dB is achieved with a saturation threshold of 0.9 pJ per pulse for a 50‐µm‐long modulator. The measured modulation efficiency is as high as 0.052 dB µm −1 . Furthermore, the proposed all‐optical modulator has the potential to operate at a bandwidth of hundreds of gigahertz. The present hybrid integration of graphene on ultra‐thin silicon photonic waveguides paves the way toward the applications of on‐chip ultrafast and energy‐efficient all‐optical information processing.
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