Wang Ke, Liu Qidong, Wang Zhenhong, Song Yufeng, Huang Haiming, Fan Ni, Wang Yujie, Zhang Bin
Institute of Translational Medicine, First Affiliated Hospital (Shenzhen Second People's Hospital), Health Science Center, College of Electronics and Information Engineering, Shenzhen University 518060 China
Shenzhen Han's Robot Co., Ltd. 518100 China.
RSC Adv. 2023 Aug 17;13(35):24649-24655. doi: 10.1039/d3ra04429g. eCollection 2023 Aug 11.
As one of the new nanomaterials, TiN/TiC shows excellent optoelectronic characteristics, thus it has been widely used in many applications, such as biomedicine, optical sensors, image processing, and optical switching. With the advancement of communication capabilities and communication networks, optical fiber communication has put a higher demand on signal processing. In order to overcome the limitations of the electronic transfer rate bottleneck, the concept of all-optical signal processing has been proposed. Utilizing the excellent optical nonlinear effect of the TiN/TiC heterojunction-coated microfiber (THM), a novel THM-based optical Kerr switch has been proposed. Injecting a strong control light and a signal light into the device simultaneously, and controlling the state of turn on or off of the control light, can adjust the intensity of the signal light. Based on this, the amplitude modulation of the signal light can be achieved. With a control light power of 200 mW, the maximum extinction ratio of the signal light reaches 27 dB. We believe that this type of compact device can demonstrate great potential for integration with current high-speed fiber communication networks, providing a possible method for all-optical signal processing through nonlinear effects, and has broad prospects in the field of all-optical signal processing, robots, and high-speed communication.
作为新型纳米材料之一,TiN/TiC展现出优异的光电特性,并因此被广泛应用于生物医药、光学传感器、图像处理和光开关等诸多领域。随着通信能力和通信网络的发展,光纤通信对信号处理提出了更高要求。为克服电子传输速率瓶颈的限制,全光信号处理的概念应运而生。利用TiN/TiC异质结包覆微光纤(THM)优异的光学非线性效应,一种基于THM的新型光学克尔开关被提出。同时向该器件注入强控制光和信号光,并控制控制光的开或关状态,即可调节信号光的强度。基于此,可实现信号光的幅度调制。当控制光功率为200 mW时,信号光的最大消光比达到27 dB。我们相信,这种紧凑型器件在与当前高速光纤通信网络集成方面具有巨大潜力,为通过非线性效应进行全光信号处理提供了一种可能的方法,在全光信号处理、机器人和高速通信领域具有广阔前景。