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基于二维MoS中空间自相位调制的高斯涡旋干涉光束激发的光学逻辑门

Optical Logic Gates Excited by a Gauss Vortex Interference Beam Based on Spatial Self-Phase Modulation in 2D MoS.

作者信息

Chen Xueyu, Ding Ge, Tang Linwei, Zou Haijian, Wang Chaofeng, Chen Shuqing, Su Chenliang, Li Ying

机构信息

International Collaborative Laboratory of 2D Materials for Optoelectronics Science & Technology of Ministry of Education, Engineering Technology Research Center for 2D Material Information Function Devices and Systems of Guangdong Province, Institute of Microscale Optoelectronics, Shenzhen University, Shenzhen 518060, China.

BYD Semiconductor Company Limited, Shenzhen 518060, China.

出版信息

Nanomaterials (Basel). 2023 Apr 20;13(8):1423. doi: 10.3390/nano13081423.

Abstract

Vortex beams with optical orbital angular momentum have broad prospects in future high-speed and large-capacity optical communication. In this investigation of materials science, we found that low-dimensional materials have feasibility and reliability in the development of optical logic gates in all-optical signal processing and computing technology. We found that spatial self-phase modulation patterns through the MoS dispersions can be modulated by the initial intensity, phase, and topological charge of a Gauss vortex superposition interference beam. We utilized these three degrees of freedom as the input signals of the optical logic gate, and the intensity of a selected checkpoint on spatial self-phase modulation patterns as the output signal. By setting appropriate thresholds as logic codes 0 and 1, two sets of novel optical logic gates, including AND, OR, and NOT gates, were implemented. These optical logic gates are expected to have great potential in optical logic operations, all-optical networks, and all-optical signal processing.

摘要

具有光学轨道角动量的涡旋光束在未来高速大容量光通信中具有广阔前景。在本次材料科学研究中,我们发现低维材料在全光信号处理与计算技术中的光逻辑门开发方面具有可行性和可靠性。我们发现,通过二硫化钼色散产生的空间自相位调制图案可由高斯涡旋叠加干涉光束的初始强度、相位和拓扑电荷进行调制。我们将这三个自由度用作光逻辑门的输入信号,并将空间自相位调制图案上选定检查点的强度作为输出信号。通过设置适当阈值作为逻辑码0和1,实现了包括与门、或门和非门在内的两组新型光逻辑门。这些光逻辑门有望在光逻辑运算、全光网络和全光信号处理中具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f4d/10145341/5ac985ee253d/nanomaterials-13-01423-g001.jpg

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