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Oxide semiconductor in a neuromorphic chromaticity communication loop for extreme environment exploration

作者:Shangda Qu, Qianbo Yu, Chengpeng Jiang, Taoyu Zou, Honghuan Xu, Longlong Zhang, Mengze Tao, Qingshan Zhu, Song Zhang, Cong Geng, Mingjian Yuan, Yong‐Young Noh, Wentao Xu · 发表于:Science Advances · 年份:2025 · DOI:10.1126/sciadv.adu3576 · 被引用次数:18 · 研究领域:Advanced Memory and Neural Computing、Photoreceptor and optogenetics research、Neuroscience and Neural Engineering

Space exploration, particularly in the extreme space environment, has gained increasing attention. Networked robots capable of real-time environmental perception and autonomous collaboration offer a promising alternative for executing complex precision tasks. Consequently, achieving local reliable communication and preparing irradiation-tolerant materials are essential. Here, we demonstrate a cephalopod-inspired neuromorphic loop that enables chromaticity communication between individual near-sensor processing units. A programmatically aligned aluminum zinc oxide nanofiber array was fabricated and used as conductive channels that can withstand prolonged (~10 4 seconds) and high-dose (~5 × 10 15 ions per square centimeter) proton irradiation. The neuromorphic loop, with capabilities in environmental perception, event-driven processing, adaptive learning, and chromaticity communication, enables the self-driven collaboration of robotic hands based on tactile feedback and ensures reliable mobile links for drone flight control. This work pioneers a direction in neuromorphic visible light communication and marks important progress in the field of biomimetic intelligence.