Stabilizing Analog Signal Processing of Artificial Synapse Under Heat Fluctuations Through Light‐Temperature Antagonistic Operation

Author:

Chen Diandian1,Choi Yongsuk2,Qian Chuan1,Roe Dong Gue3,Kim Hyungjin4,Jo Sae Byeok5,Yoo Youngjae6,Tang Dongsheng1,Cho Jeong Ho7ORCID

Affiliation:

1. Key Laboratory of Low‐Dimensional Quantum Structures and Quantum Control of Ministry of Education Key Laboratory for Matter Microstructure and Function of Hunan Province Department of Physics and Synergetic Innovation Center for Quantum Effects and Application Hunan Normal University Changsha 410081 P. R. China

2. Andrew and Peggy Cherng Department of Medical Engineering California Institute of Technology Pasadena CA 91125 USA

3. School of Electrical and Electronic Engineering Yonsei University Seoul 120‐749 Republic of Korea

4. Department of Materials Science and Engineering Yonsei University Seoul 03722 Republic of Korea

5. School of Chemical Engineering SKKU Institute of Energy Science and Technology (SIEST) Sungkyunkwan University Suwon 16419 Republic of Korea

6. Department of Advanced Materials Engineering Chung‐Ang University Anseong 17546 Republic of Korea

7. Department of Chemical and Biomolecular Engineering Yonsei University Seoul 120‐749 Republic of Korea

Abstract

AbstractData processing through artificial synapses is gaining attention owing to the emergence of neuromorphic computing. Analog processing via these synapses can simultaneously handle large volumes of data; however, it is susceptible to interference from various environmental factors. Specifically, temperature changes can significantly affect overall signal characteristics, leading to substantial errors. Herein, an organic heterojunction‐based artificial synapse is presented that is capable of light–temperature antagonistic operations. The properly aligned band structure and trap sites, which are facilitated by oxygen penetration, enable the implementation of controlled synaptic characteristics, depending on temperature and light conditions. An increase in temperature resulted in a thermally enhanced synaptic current, while light irradiation reduced the synaptic current, with the reduction degree being dependent on the light intensity. Finally, a biomimetic analog processor system capable of signal stabilization under drastic temperature changes is implemented. The artificial synapse, which operates using a light–temperature antagonistic operation, can significantly expand the potential applications of artificial intelligence hardware.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Hunan Province

National Research Foundation of Korea

Ministry of Trade, Industry and Energy

Science and Technology Innovative Research Team in Higher Educational Institutions of Hunan Province

Publisher

Wiley

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