Wang Zeqiang, Cai Boyuan, Wan Zhengfen, Zhang Yunyue, Ma Xiaoguang, Gu Min, Zhang Qiming
Institute of Photonic Chips, University of Shanghai for Science and Technology, Shanghai 200093, China.
Centre for Artificial-Intelligence Nanophotonics, School of Optical-Electrical and Computer Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China.
Nanomaterials (Basel). 2022 Mar 28;12(7):1117. doi: 10.3390/nano12071117.
Here, we propose an optical bistable device structure with a few layers of graphene oxide integrated in the metal-dielectric-metal based asymmetric nanocavity. Through the light confinement in the nanocavity, the third order nonlinear absorption of graphene oxide can be significantly enhanced, which experimentally delivers low-threshold optical bistability at the visible wavelength of 532 nm with only 267 KW/cm intensity. In addition, the switching threshold can be further reduced via increasing the graphene oxide thickness, hence paving a new way for achieving tunable optical bistable devices at visible light frequencies.
在此,我们提出一种光学双稳器件结构,其中有几层氧化石墨烯集成在基于金属 - 电介质 - 金属的非对称纳米腔中。通过纳米腔内的光限制,氧化石墨烯的三阶非线性吸收可得到显著增强,这在实验上仅以267千瓦/平方厘米的强度在532纳米的可见波长下实现了低阈值光学双稳性。此外,通过增加氧化石墨烯的厚度可以进一步降低开关阈值,从而为在可见光频率下实现可调谐光学双稳器件开辟了一条新途径。