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Cointegration of single-transistor neurons and synapses by nanoscale CMOS fabrication for highly scalable neuromorphic hardware

Cited 78 time in Web of Science Cited 58 time in Scopus
Authors

Han, Joon-Kyu; Oh, Jungyeop; Yun, Gyeong-Jun; Yoo, Dongeun; Kim, Myung-Su; Yu, Ji-Man; Choi, Sung-Yool; Choi, Yang-Kyu

Issue Date
2021-08
Publisher
AMER ASSOC ADVANCEMENT SCIENCE
Citation
SCIENCE ADVANCES, Vol.7 No.32
Abstract
Cointegration of multistate single-transistor neurons and synapses was demonstrated for highly scalable neuromorphic hardware, using nanoscale complementary metal-oxide semiconductor (CMOS) fabrication. The neurons and synapses were integrated on the same plane with the same process because they have the same structure of a metal-oxide semiconductor field-effect transistor with different functions such as homotype. By virtue of 100% CMOS compatibility, it was also realized to cointegrate the neurons and synapses with additional CMOS circuits. Such cointegration can enhance packing density, reduce chip cost, and simplify fabrication procedures. The multistate single-transistor neuron that can control neuronal inhibition and the firing threshold voltage was achieved for an energy-efficient and reliable neural network. Spatiotemporal neuronal functionalities are demonstrated with fabricated single-transistor neurons and synapses. Image processing for letter pattern recognition and face image recognition is performed using experimental-based neuromorphic simulation.
URI
https://hdl.handle.net/10371/218715
DOI
https://doi.org/10.1126/sciadv.abg8836
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  • Department of Materials Science & Engineering
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