A Photoelectrochemical Retinomorphic Synapse.
Jin HuMing-Jian JingYu-Ting HuangBo-Han KouZheng LiYi-Tong XuSi-Yuan YuXierong ZengJie JiangPeng LinWei-Wei ZhaoPublished in: Advanced materials (Deerfield Beach, Fla.) (2024)
Reproducing human visual functions with artificial devices is a long-standing goal of the neuromorphic domain. However, emulating the chemical language communication of the visual system in fluids remains a grand challenge. Here, a "multi-color" hydrogel-based photoelectrochemical retinomorphic synapse is reported with unique chemical-ionic-electrical signaling in an aqueous electrolyte that enables, e.g., color perception and biomolecule-mediated synaptic plasticity. Based on the specific enzyme-catalyzed chromogenic reactions, three multifunctional colored hydrogels are developed, which can not only synergize with the Bi 2 S 3 photogate to recognize the primary colors but also synergize with a given polymeric channel to promote the long-term memory of the system. A synaptic array is further constructed for sensing color images and biomolecule-coded information communication. Taking advantage of the versatile biochemistry, the biochemical-driven reversible photoelectric response of the cone cell is further mimicked. This work introduces rich chemical designs into retinomorphic devices, providing a perspective for replicating the human visual system in fluids.
Keyphrases
- drug delivery
- endothelial cells
- ionic liquid
- quantum dots
- cancer therapy
- induced pluripotent stem cells
- drug release
- hyaluronic acid
- wastewater treatment
- single cell
- autism spectrum disorder
- sensitive detection
- pluripotent stem cells
- convolutional neural network
- tissue engineering
- room temperature
- mass spectrometry
- stem cells
- extracellular matrix
- prefrontal cortex
- high density
- solid state