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Thermally Conductive and UV-EMI Shielding Electronic Textiles for Unrestricted and Multifaceted Health Monitoring

作者:Yidong Peng, Jiancheng Dong, Jiayan Long, Yuxi Zhang, Xinwei Tang, Xi Lin, Haoran Liu, Tuoqi Liu, Tuoqi Liu, Wei Fan, Tianxi Liu, Tianxi Liu, Yunpeng Huang · 发表于:Nano-Micro Letters · 年份:2024 · DOI:10.1007/s40820-024-01429-x · 被引用次数:64 · 研究领域:Advanced Sensor and Energy Harvesting Materials、Electromagnetic wave absorption materials、Advanced Battery Technologies Research

Abstract Skin-attachable electronics have garnered considerable research attention in health monitoring and artificial intelligence domains, whereas susceptibility to electromagnetic interference (EMI), heat accumulation issues, and ultraviolet (UV)-induced aging problems pose significant constraints on their potential applications. Here, an ultra-elastic, highly breathable, and thermal-comfortable epidermal sensor with exceptional UV-EMI shielding performance and remarkable thermal conductivity is developed for high-fidelity monitoring of multiple human electrophysiological signals. Via filling the elastomeric microfibers with thermally conductive boron nitride nanoparticles and bridging the insulating fiber interfaces by plating Ag nanoparticles (NPs), an interwoven thermal conducting fiber network (0.72 W m −1 K −1 ) is constructed benefiting from the seamless thermal interfaces, facilitating unimpeded heat dissipation for comfort skin wearing. More excitingly, the elastomeric fiber substrates simultaneously achieve outstanding UV protection (UPF = 143.1) and EMI shielding (SE T > 65, X-band) capabilities owing to the high electrical conductivity and surface plasmon resonance of Ag NPs. Furthermore, an electronic textile prepared by printing liquid metal on the UV-EMI shielding and thermally conductive nonwoven textile is finally utilized as an advanced epidermal sensor, which succeeds in monitoring different electrophysiological signals under vigorous electromagnetic i...