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Thermally Conductive and UV-EMI Shielding Electronic Textiles for Unrestricted and Multifaceted Health Monitoring 被引量:1
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作者 Yidong Peng jiancheng dong +8 位作者 Jiayan Long Yuxi Zhang Xinwei Tang Xi Lin Haoran Liu Tuoqi Liu Wei Fan Tianxi Liu Yunpeng Huang 《Nano-Micro Letters》 SCIE EI CAS CSCD 2024年第10期149-162,共14页
Skin-attachable electronics have garnered considerable research attention in health monitoring and artificial intelligence domains,whereas susceptibility to elec-tromagnetic interference(EMI),heat accumulation issues,... Skin-attachable electronics have garnered considerable research attention in health monitoring and artificial intelligence domains,whereas susceptibility to elec-tromagnetic interference(EMI),heat accumulation issues,and ultraviolet(UV)-induced aging problems pose significant constraints on their potential applications.Here,an ultra-elas-tic,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 con-ducting 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(SET>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 interference.This research paves the way for developing protective and environmentally adaptive epidermal electronics for next-generation health regulation. 展开更多
关键词 Skin electronics Thermal regulating textiles Electromagnetic interference shielding Ultraviolet proof Health monitoring
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再生纤维素基光敏抗菌纳米纤维膜的制备及表征 被引量:1
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作者 董建成 张权 +2 位作者 王清清 蔡以兵 魏取福 《高分子材料科学与工程》 EI CAS CSCD 北大核心 2018年第12期138-142,149,共6页
利用静电纺丝技术制备纳米醋酸纤维素膜(CA),经高温热处理后碱液水解得再生纤维素(RC),然后以二乙烯三胺(DETA)为间隔臂接枝了原卟啉(PPIX),制备了PPIX接枝纳米纤维膜(RC-PPIX)。通过差示扫描量热分析、拉伸断裂仪、扫描电镜探究了CA热... 利用静电纺丝技术制备纳米醋酸纤维素膜(CA),经高温热处理后碱液水解得再生纤维素(RC),然后以二乙烯三胺(DETA)为间隔臂接枝了原卟啉(PPIX),制备了PPIX接枝纳米纤维膜(RC-PPIX)。通过差示扫描量热分析、拉伸断裂仪、扫描电镜探究了CA热处理前、后及水解后的热学性能、力学性能及形貌变化。利用红外光谱、X射线光电子能谱表征了CA在反应过程中的化学结构变化,最后评价了RC-PPIX纤维膜对大肠杆菌的灭活作用。实验结果表明,热处理后的CA纳米纤维彼此熔合在一起,同时纳米纤维结构保持不变,纤维膜的力学强度显著提高;成功接枝制备了光敏抗菌型RC-PPIX纳米纤维膜,其对大肠杆菌的抗菌效果随着光照时间的延长,在氙灯光照30min时,其对大肠杆菌的灭活率可达99.99%。 展开更多
关键词 醋酸纤维素 热处理 水解 间隔臂 光动力抗菌
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Superelastic Radiative Cooling Metafabric for Comfortable Epidermal Electrophysiological Monitoring 被引量:3
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作者 jiancheng dong Yidong Peng +6 位作者 Yiting Zhang Yujia Chai Jiayan Long Yuxi Zhang Yan Zhao Yunpeng Huang Tianxi Liu 《Nano-Micro Letters》 SCIE EI CAS CSCD 2023年第10期449-462,共14页
Epidermal electronics with superb passive-cooling capabilities are of great value for both daytime outdoor dressing comfort and low-carbon economy. Herein, a multifunctional and skinattachable electronic is rationally... Epidermal electronics with superb passive-cooling capabilities are of great value for both daytime outdoor dressing comfort and low-carbon economy. Herein, a multifunctional and skinattachable electronic is rationally developed on a porous all-elastomer metafabric for efficient passive daytime radiative cooling(PDRC) and human electrophysiological monitoring. The cooling characteristics are realized through the homogeneous impregnation of polytetrafluoroethylene microparticles in the styrene–ethylene–butylene–styrene fibers, and the rational regulation of microporosity in SEBS/PTFE metafabrics, thus synergistically backscatter ultraviolet–visible–near-infrared light(maximum reflectance over 98.0%) to minimize heat absorption while efficiently emit human-body midinfrared radiation to the sky. As a result, the developed PDRC metafabric achieves approximately 17℃ cooling effects in an outdoor daytime environment and completely retains its passive cooling performance even under 50% stretching. Further, high-fidelity electrophysiological monitoring capability is also implemented in the breathable and skin-conformal metafabric through liquid metal printing, enabling the accurate acquisition of human electrocardiograph, surface electromyogram, and electroencephalograph signals for comfortable and lengthy health regulation. Hence, the fabricated superelastic PDRC metafabric opens a new avenue for the development of body-comfortable electronics and low-carbon wearing technologies. 展开更多
关键词 Passive radiative cooling Human electrophysiological monitoring Superelastic metafabrics Spectrally selective reflecting microfibers Liquid metals
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