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基于二维偏振敏感光电二极管的抗干扰全光逻辑计算

Anti-Interference All-Optical Logic Computing Based on a 2D Polarization-Sensitive Photodiode.

作者信息

Li Xueping, Tang Xiaojie, Yuan Peize, Qiu Siqi, Jiang Yurong, Song Xiaohui, Yu Yali, Xia Congxin, Wei Zhongming

机构信息

College of Electronic and Electrical Engineering, Henan Normal University, Xinxiang, Henan 453007, China.

School of Physics, Henan Key Laboratory of Advanced Semiconductor & Functional Device Integration, Henan Normal University, Xinxiang 453007, China.

出版信息

Nano Lett. 2025 Jan 15;25(2):747-753. doi: 10.1021/acs.nanolett.4c05091. Epub 2024 Dec 5.

Abstract

Optical logic operation is promising for ultrafast information processing and optical computing due to the high computation speed and low power consumption. However, conventional optical logic devices require either a complex structure and circuit design or a constant voltage supply, which impedes the development of high-density integrated circuits. Here, all-optical logic devices are designed using a self-powered polarization-sensitive photodiode of the GeSe homojunction, which is attributed to an anisotropic band structure and built-in electric field. The single photodiode can realize linear logic functions (AND, OR, NAND) and a nonlinear logic gate (XOR) by programming wavelength, power density, and polarization angle. Moreover, complex logic functions (XNOR, Y = IN1, Y = IN2, Y = IN1, and Y = IN2) can be achieved through integrating two photodiodes in parallel. In addition, the neural network algorithm is utilized to validate the feasibility of all-optical logic computing and anti-interference. This work proposes an avenue to design an all-optical reconfigurable logic operation in polarization-sensitive devices.

摘要

由于具有高计算速度和低功耗,光学逻辑运算在超快信息处理和光学计算方面具有广阔前景。然而,传统的光学逻辑器件要么需要复杂的结构和电路设计,要么需要恒定的电压供应,这阻碍了高密度集成电路的发展。在此,利用具有自供电特性的GeSe同质结偏振敏感光电二极管设计了全光逻辑器件,这归因于其各向异性的能带结构和内建电场。单个光电二极管可通过对波长、功率密度和偏振角进行编程来实现线性逻辑功能(与、或、与非)和非线性逻辑门(异或)。此外,通过将两个光电二极管并联可实现复杂逻辑功能(同或、Y = IN1、Y = IN2、Y = IN1和Y = IN2)。此外,利用神经网络算法验证了全光逻辑计算的可行性和抗干扰能力。这项工作为在偏振敏感器件中设计全光可重构逻辑运算提供了一条途径。

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