机器人
机器人学
计算机科学
触觉传感器
人工智能
热的
信号(编程语言)
各向异性
触觉知觉
材料科学
生物系统
感知
复制
热感受器
机械工程
工作(物理)
离子键合
纳米技术
计算机视觉
仿生学
编码
温度测量
热接触
感觉系统
触觉技术
声学
作者
Xuan Cai,Yilin Zeng,P Liu,Yifan Zhang,Linfeng Wang,Huaiyu Ke,Xue Long,H W Jiang,Wendong Yang,Zuoxuan Gan,Shuwen Chen,Jiangjiang Duan
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-05-20
卷期号:12 (21): eaed5473-eaed5473
标识
DOI:10.1126/sciadv.aed5473
摘要
Emulating human skin's ability to perceive temperature and identify material through thermotactile perception is critical for human-machine interaction, robotics operation, and prosthetic sensory feedback systems. However, conventional artificial thermal sensors are largely limited to temperature measurement and cannot replicate the thermotactile-mediated material recognition capabilities inherent in biological systems. Here, we present a bioinspired ionic thermoreceptor with anisotropic thermal response characteristics, enabling high-fidelity material recognition and accurate temperature monitoring. The device incorporates spatially specialized sensing elements that encode thermal signals into modality-specific temporal response patterns, allowing the extraction of the thermal contact coefficient for material discrimination and the absolute temperature for precise thermal monitoring. It achieves high-accuracy material recognition (98.9%) and substantial temperature resolution (0.81 millikelvins). Furthermore, robust covalent bonding between functional layers ensures mechanical durability, signal stability, and environmental resilience. This work establishes a physically grounded and energy-autonomous thermotactile sensing platform for safe, intuitive, and intelligent human-machine interaction.
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