Three-Terminal Ovonic Threshold Switch (3T-OTS) with Tunable Threshold Voltage for Versatile Artificial Sensory Neurons

Authors
Hyejin Leecho, seong wonKim, Seon JeongJaesang LeeKim, Keun SuKim, In hoPARK, JONG KEUKKwak, Joon YoungKim, Jae wookPark, JongkilJeong, Yeon JooHwang, Gyu WeonLEE, KYEONG SEOKIelmini, DanieleLee, Suyoun
Issue Date
2022-01
Publisher
American Chemical Society
Citation
Nano Letters, v.22, no.2, pp.733 - 739
Abstract
Inspired by information processing in biological systems, sensor-combined edge-computing systems attract attention requesting artificial sensory neurons as essential ingredients. Here, we introduce a simple and versatile structure of artificial sensory neurons based on a novel three-terminal Ovonic threshold switch (3T-OTS), which features an electrically controllable threshold voltage (Vth). Combined with a sensor driving an output voltage, this 3T-OTS generates spikes with a frequency depending on an external stimulus. As a proof of concept, we have built an artificial retinal ganglion cell (RGC) by combining a 3T-OTS and a photodiode. Furthermore, this artificial RGC is combined with the reservoir-computing technique to perform a classification of chest X-ray images for normal, viral pneumonia, and COVID-19 infections, releasing the recognition accuracy of about 86.5%. These results indicate that the 3T-OTS is highly promising for applications in neuromorphic sensory systems, providing a building block for energy-efficient in-sensor computing devices.
Keywords
PARALLEL; STATES; PHASE; MODEL; in-sensor computing; artificial retinal ganglion cell; gate-tunable Ovonic threshold switch; neuromorphic; spiking neural network
ISSN
1530-6984
URI
https://pubs.kist.re.kr/handle/201004/76811
DOI
10.1021/acs.nanolett.1c04125
Appears in Collections:
KIST Article > 2022
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