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초록
The development of optoelectronics mimicking the functions of the biological nervous system is important to artificial intelligence. This work demonstrates an optoelectronic, artificial, afferent-nerve strategy based on memory-electroluminescence spikes, which can realize multiple action-potentials combination through a single optical channel. The memory-electroluminescence spikes have diverse morphologies due to their history-dependent characteristics and can be used to encode distributed sensor signals. As the key to successful functioning of the optoelectronic, artificial afferent nerve, a driving mode for light-emitting diodes, namely, the non-carrier injection mode, is proposed, allowing it to drive nanoscale light-emitting diodes to generate a memory-electroluminescence spikes that has multiple sub-peaks. Moreover, multiplexing of the spikes can be obtained by using optical signals with different wavelengths, allowing for a large signal bandwidth, and the multiple action-potentials transmission process in afferent nerves can be demonstrated. Finally, sensor-position recognition with the bio-inspired afferent nerve is developed and shown to have a high recognition accuracy of 98.88%. This work demonstrates a strategy for mimicking biological afferent nerves and offers insights into the construction of artificial perception systems.
키워드
- 제목
- Memory-electroluminescence for multiple action-potentials combination in bio-inspired afferent nerves
- 저자
- Wang, Kun; Liao, Yitao; Li, Wenhao; Li, Junlong; Su, Hao; Chen, Rong; Park, Jae Hyeon; Zhang, Yongai; Zhou, Xiongtu; Wu, Chaoxing; Liu, Zhiqiang; Guo, Tailiang; Kim, Tae Whan
- 발행일
- 2024-04
- 유형
- Article
- 권
- 15
- 호
- 1
- 페이지
- 1 ~ 11