AlGaN/GaN MOS-HEMT enabled optoelectronic artificial synaptic devices for neuromorphic computing

Author:

Chen Jiaxiang123ORCID,Du Haitao123ORCID,Qu Haolan123ORCID,Gao Han123ORCID,Gu Yitian123ORCID,Zhu Yitai123ORCID,Ye Wenbo123ORCID,Zou Jun4,Wang Hongzhi5ORCID,Zou Xinbo16ORCID

Affiliation:

1. School of Information Science and Technology, ShanghaiTech University 1 , Shanghai 201210, China

2. Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences 2 , Shanghai 200050, China

3. University of Chinese Academy of Sciences 3 , Beijing 100049, China

4. School of Science, Shanghai Institute of Technology 4 , Shanghai 201418, China

5. College of Materials Science and Engineering, Donghua University 5 , 201620 Shanghai, China

6. Shanghai Engineering Research Center of Energy Efficient and Custom AI IC 6 , Shanghai 200031, China

Abstract

Artificial optoelectronic synaptic transistors have attracted extensive research interest as an essential component for neuromorphic computing systems and brain emulation applications. However, performance challenges still remain for synaptic devices, including low energy consumption, high integration density, and flexible modulation. Employing trapping and detrapping relaxation, a novel optically stimulated synaptic transistor enabled by the AlGaN/GaN hetero-structure metal-oxide semiconductor high-electron-mobility transistor has been successfully demonstrated in this study. Synaptic functions, including excitatory postsynaptic current (EPSC), paired-pulse facilitation index, and transition from short-term memory to long-term memory, are well mimicked and explicitly investigated. In a single EPSC event, the AlGaN/GaN synaptic transistor shows the characteristics of low energy consumption and a high signal-to-noise ratio. The EPSC of the synaptic transistor can be synergistically modulated by both optical stimulation and gate/drain bias. Moreover, utilizing a convolution neural network, hand-written digit images were used to verify the data preprocessing capability for neuromorphic computing applications.

Funder

Shanghaitech University Startup Fund

National Natural Science Foundation of China

Natural Science Foundation of Shanghai

CAS Strategic Science and Technology Program

Publisher

AIP Publishing

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