• Chip
  • Vol. 3, Issue 4, 100112 (2024)
Haiqi Gao1,3,4,†, Yu Shao1,3,4,†, Yipeng Chen1,4, Junren Wen1,3,4..., Yuchuan Shao1,3,4, Yueguang Zhang2, Weidong Shen2,* and Chenying Yang1,2,**|Show fewer author(s)
Author Affiliations
  • 1Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences, Hangzhou 310024,
  • 2State key Laboratory of Modern Optical Instrumentation, Department of Optical Engineering, Zhejiang University, Hangzhou 310027,
  • 3Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800,
  • 4Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049,
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    DOI: 10.1016/j.chip.2024.100112 Cite this Article
    Haiqi Gao, Yu Shao, Yipeng Chen, Junren Wen, Yuchuan Shao, Yueguang Zhang, Weidong Shen, Chenying Yang. All-optical combinational logical units featuring fifth-order cascade[J]. Chip, 2024, 3(4): 100112 Copy Citation Text show less

    Abstract

    Modern computational technologies are gradually encountering significant limitations, driving a shift toward alternative paradigms such as optical computing. In this study, novel all-optical combinational logic units based on diffractive neural networks (D2NNs) were introduced, which were designed to perform high-order logical operations efficiently and swiftly with the adoption of only two modulation layers. This innovative design exhibits increased processing speed, improved energy efficiency, robust environmental stability, and high error tolerance, making it exceptionally well-suited for a broad spectrum of applications in optical computing and communications. By leveraging the transfer learning, we successfully developed a fifth-order cascaded combinational logic circuit for a practical information transmission system. Furthermore, we revealed a pioneering application of the device in optical time division multiplexing (OTDM), demonstrating its capability to manage high-speed data transfer seamlessly without the need for electronic conversion. Extensive simulations and experimental validations demonstrate the potential of the model as a foundational technology for future optical computing architectures, which paves the way toward more sustainable and efficient optical data processing platforms.
    Haiqi Gao, Yu Shao, Yipeng Chen, Junren Wen, Yuchuan Shao, Yueguang Zhang, Weidong Shen, Chenying Yang. All-optical combinational logical units featuring fifth-order cascade[J]. Chip, 2024, 3(4): 100112
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