A Biodegradable, Stretchable, Healable, and Self‐Powered Optoelectronic Synapse Based on Ionic Gelatins for Neuromorphic Vision System

Author:

Wang Kaili1,Wu Jicai1,Wang Min1,Zhang Fa1,Li Xiujuan1,Xu Min1,Zhu Duoyi1,Han Jikun1,Liu Juqing1,Liu Zhengdong1ORCID,Huang Wei1

Affiliation:

1. Key Laboratory of Flexible Electronics (KLoFE) & Institute of Advanced Materials (IAM) School of Flexible Electronics (Future Technologies) Nanjing Tech University (NanjingTech) 30 South Puzhu Road Nanjing 211816 China

Abstract

AbstractOptoelectronic synapses have gained increasing attentions as a fundamental building block in the development of neuromorphic visual systems. However, it remains a challenge to integrate multiple functions into a single optoelectronic synapse that can be widely applied in wearable artificial intelligence and implantable neuromorphic vision systems. In this study, a stretchable optoelectronic synapse based on biodegradable ionic gelatin heterojunction is successfully developed. This device exhibits self‐powered synaptic plasticity behavior with broad spectral response and excellent elastic properties, yet it degrades rapidly upon disposal. After complete cleavage, the device can be fully repaired within 1 min, which is mainly attributed to the non‐covalent interactions between different molecular chains. Moreover, the recovery and reprocessing of the ionic gelatins result in optoelectronic properties that are virtually indistinguishable from their original state, showcasing the resilience and durability of ionic gelatins. The combination of biodegradability, stretchability, self‐healing, zero‐power consumption, ease of large‐scale preparation, and low cost makes the work a major step forward in the development of biodegradable and stretchable optoelectronic synapses.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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1. Restructurable materials for soft actuators;Journal of Materials Research;2024-08-26

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