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Neuromorphic Active Pixel Image Sensor Array for Visual Memory

delete2021-08-31
delete72
PRE
AI
S
Seongin Hong
H
Haewon Cho
B
Byung Ha Kang
K
Kyung-Ho Park
D
Deji Akinwande *
H
Hyun Jae Kim *
S
Sunkook Kim *
DOI:10.1021/acsnano.1c06758delete
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摘要

摘要

En 中文
Neuromorphic engineering, a methodology for emulating synaptic functions or neural systems, has attracted tremendous attention for achieving next-generation artificial intelligence technologies in the field of electronics and photonics. However, to emulate human visual memory, an active pixel sensor array for neuromorphic photonics has yet to be demonstrated, even though it can implement an artificial neuron array in hardware because individual pixels can act as artificial neurons. Here, we present a neuromorphic active pixel image sensor array (NAPISA) chip based on an amorphous oxide semiconductor heterostructure, emulating the human visual memory. In the 8 x 8 NAPISA chip, each pixel with a select transistor and a neuromorphic phototransistor is based on a solution-processed indium zinc oxide back channel layer and sputtered indium gallium zinc oxide front channel layer. These materials are used as a triggering layer for persistent photoconductivity and a high-performance channel layer with outstanding uniformity. The phototransistors in the pixels exhibit both photonic potentiation and depression characteristics by a constant negative and positive gate bias due to charge trapping/detrapping. The visual memory and forgetting behaviors of the NAPISA can be successfully demonstrated by using the pulsed light stencil method without any software or simulation. This study provides valuable information to other neuromorphic devices and systems for next-generation artificial intelligence technologies.
Keyword:
neuromorphic engineering
visual memory
amorphous oxide semiconductor
phototransistor
active pixel sensor

期刊

ACS Nano 封面图
ACS Nano
IF:
16
论文数:
2.7W
被引数:
25.6W

机构

S
sungkyunkwan university (skku)
学者数:
3.7W
论文数: 3.6W
被引数: 49
U
university of texas austin
学者数:
2.4W
论文数: 2.0W
被引数: 54
U
university of texas system
学者数:
18.5W
论文数: 15.6W
被引数: 210
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