Asymmetric CNT-doped Ionogel Heterostructure with Self-powered and Efficient Photoperception for Stretchable Neuromorphic Visual Skin

Hong Chao Sun, Qi Ye Wang, Xin Kai Qian, Xue Mei Dong, Zhen Yu Zhang, Jun Yue Li, Zi Cheng Zhang, Fa Zhang, Zhen Hui Tao, Yu Han Zhang, Chao Ran Huang, Yin Xiang Li, Wei Huang, Ju Qing Liu

Research output: Contribution to journalArticlepeer-review

Abstract

Neuromorphic visual skin (NVS), capable of self-powered, fast visual perception and complex elastic deformations, is highly desirable for cephalopod skin emulation but remains challenging. Here, we present an asymmetric carbon nanotube (CNT)-doped ionogel heterojunction with self-driven, efficient photoperception for stretchable NVS arrays. By leveraging the CNT-induced photothermoelectric effect in the heterostructure under light exposure, the junction exhibits zero power consumption, fast photoresponse (3.11 s), and retina-like photosynaptic behaviors within a multispectral range from 365 to 680 nm. By assembling the photoacceptor array into skin, its intrinsically soft elastomeric features endow the skin with outstanding stretchability of up to 50%. Utilizing the sensor nerve and convolutional neural network, the architecture achieves a 93.82% accuracy in image recognition. The asymmetric doping strategy in the ionogel offers an effective way for constructing self-powered soft photonic synapses toward skin-like embodied intelligence with photoreception capability.

Original languageEnglish
JournalACS Applied Electronic Materials
DOIs
StateAccepted/In press - 2025

Keywords

  • asymmetric doping
  • ionogel heterostructure
  • neuromorphic visual skin
  • photosynapse
  • self-powered

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