Synaptic solar-blind UV PD based on STO/AlXGa1−XN heterostructure for neuromorphic computing
Abstract
The rapid advancements in artificial intelligence and high-performance computing have emphasized the need for efficient optoelectronic artificial synapses, essential elements in neuromorphic computing. This study proposes a solar-blind ultraviolet (UV) photodetector (PD) based on the SrTiO3/AlXGa1−XN heterostructure to serve as an optoelectronic synapse. Under 265 nm illumination, the device demonstrates a remarkably low dark current of 1.08 × 10−11 A and an impressive peak responsivity of 36.43 A/W at −15 V. Notably, the UV PD functions as an optoelectronic synapse that emulates a biological neuron, simulating the fundamental operations of various biological synapses. Moreover, the research extends to the promising field of neuromorphic computing. The photoelectric artificial synapse device achieved an exceptional 97.91% accuracy rate in the challenging MNIST handwritten digit recognition task, further validating its potential in neural computing applications.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (8)
Xu Qi
Shiting Dai
School of Science, Jiangsu Provincial Research Center of Light Industrial Optoelectronic Engineering and Technology, Jiangnan University 1 , Wuxi 214122,
Chunshuang Chu
School of Integrated Circuits, Guangdong University of Technology 1 , Panyu, Guangzhou 510006,
Shunjie Yu
School of Microelectronics, University of Science and Technology of China 3 , Hefei, Anhui 230026,
Xiao Wang
Shu Yang
Francis Chi-Chung Ling
Department of Physics, The University of Hong Kong 2 , Hong Kong,
Guofeng Yang