Gate-tunable large-scale flexible monolayer MoS2 devices for photodetectors and optoelectronic synapses

被引:0
作者
Na Li
Congli He
Qinqin Wang
Jianshi Tang
Qingtian Zhang
Cheng Shen
Jian Tang
Heyi Huang
Shuopei Wang
Jiawei Li
Biying Huang
Zheng Wei
Yutuo Guo
Jiahao Yuan
Wei Yang
Rong Yang
Dongxia Shi
Guangyu Zhang
机构
[1] Songshan Lake Materials Laboratory,Beijing National Laboratory for Condensed Matter Physics, Key Laboratory for Nanoscale Physics and Devices, Institute of Physics
[2] Chinese Academy of Sciences,Institute of Advanced Materials
[3] Beijing Normal University,School of Physical Sciences
[4] University of Chinese Academy of Sciences,School of Integrated Circuits, Beijing Innovation Center for Future Chips (ICFC)
[5] Tsinghua University,Beijing National Research Center for Information Science and Technology (BNRist)
[6] Tsinghua University,undefined
[7] Beijing Key Laboratory for Nanomaterials and Nanodevices,undefined
来源
Nano Research | 2022年 / 15卷
关键词
MoS; flexible devices; gate-tunable; photodetector; optoelectronic synapse;
D O I
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中图分类号
学科分类号
摘要
Photodetectors and optoelectronic synapses are vital for construction of artificial visual perception system. However, the hardware implementations of optoelectronic-neuromorphic devices based on conventional architecture usually suffer from poor scalability, light response range, and limited functionalities. Here, large-scale flexible monolayer MoS2 devices integrating photodetectors and optoelectronic synapses over the entire visible spectrum in one device have been realized, which can be used in photodetection, optical communication, artificial visual perception system, and optical artificial neural network. By modulating gate voltages, we enable MoS2-based devices to be photodetectors and also optoelectronic synapses. Importantly, the MoS2-based optoelectronic synapses could implement many synaptic functions and neuromorphic characteristics, such as short-term memory (STM), long-term memory (LTM), paired-pulse facilitation (PPF), long-term potentiation (LTP)/long-term depression (LTD), and “learning-experience” behavior. Furthermore, an associative learning behavior (the classical conditioning Pavlov’s dog experiment) was emulated using paired stimulation of optical and voltage pulses. These results facilitate the development of MoS2-based multifunctional optoelectronic devices with a simple device structure, showing great potential for photodetection, optoelectronic neuromorphic computing, human visual systems mimicking, as well as wearable and implantable electronics.
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页码:5418 / 5424
页数:6
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