4.8 Article

Flexible Optical Synapses Based on In2Se3/MoS2 Heterojunctions for Artificial Vision Systems in the Near-Infrared Range

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 50, Pages 55839-55849

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c19097

Keywords

optical synapses; In2Se3; MoS2; near-infrared; flexible; artificial vision systems

Funding

  1. National Key R&D Program of China
  2. National Basic Research Program of China
  3. Foundation for Innovative Research Groups of the National Natural Science Foundation of China
  4. Self-Planned Task of State Key Laboratory of Robotics and System (HIT)
  5. [2019YFA0705201]
  6. [2019YFB1310200]
  7. [51521003]
  8. [SKLRS201801B]

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This study constructs a near-infrared (NIR) synaptic device consisting of the In2Se3/MoS2 heterojunction, demonstrating fundamental synaptic functions. The research also finds that the NIR synaptic properties of the device can be improved under strain. Furthermore, an artificial NIR vision system with image sensing, learning, and storage functions is successfully fabricated.
Near-infrared (NIR) synaptic devices integrate NIR optical sensitivity and synaptic plasticity, emulating the basic biomimetic function of the human visual system and showing great potential in NIR artificial vision systems. However, the lack of semiconductor materials with appropriate band gaps for NIR photodetection and effective strategies for fabricating devices with synaptic behaviors limit the further development of NIR synaptic devices. Here, a two-terminal NIR synaptic device consisting of the In2Se3/ MoS2 heterojunction has been constructed, and it exhibits fundamental synaptic functions. The reduced band gap and potential barrier of In2Se3/MoS2 heterojunctions are essential for NIR synaptic plasticity. In addition, the NIR synaptic properties of In2Se3/MoS2 heterojunctions under strain have been studied systematically. The Delta EPSC of the In2Se3/MoS2 synaptic device can be improved from 38.4% under no strain to 49.0% under a 0.54% strain with a 1060 nm illumination for 1 s at 100 mV. Furthermore, the artificial NIR vision system consisting of a 10 x 10 In2Se3/MoS2 device array has been fabricated, exhibiting image sensing, learning, and storage functions under NIR illumination. This research provides new ideas for the design of flexible NIR synaptic devices based on 2D materials and presents many opportunities in artificial intelligence and NIR vision systems.

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