数码产品
可穿戴计算机
可穿戴技术
电子元件
织物
发射率
计算机科学
可扩展性
材料科学
涂层
辐射冷却
机械工程
电子设备和系统的热管理
汽车工程
被动冷却
热流密度
热舒适性
热的
柔性电子器件
电子设备冷却
宽带
重新使用
辐射传输
热辐射
集成平台
环境科学
电子系统
包层(金属加工)
电气工程
砖石建筑
作者
Lung Chow,Jianpeng Zhang,Zehua Peng,D. Ye,Binbin Zhang,Jian Li,Jian Li,Woo‐Young Park,Chentao Du,Xingcan Huang,Chun Ki Yiu,Yuze Qiu,Jingkun Zhou,Zhenlin Chen,Yuyu Gao,Weibin Zhu,Pengcheng Wu,Guangyao Zhao,Qiang Zhang,Yuan Guo
标识
DOI:10.1002/advs.202524380
摘要
ABSTRACT Textiles are ideal platforms for wearable electronics due to their inherent softness and superior thermophysiological comfort. However, conventional textiles prioritize wearer comfort at the cost of the stringent thermal‐optical demands imposed by embedded electronics, often sacrificing scalability, breathability, electronic integrability, device performance, and user safety. Here, we report a wearable tailored passive radiative cooling textile (WRCT) for seamless integration of flexible electronics. The WRCT was fabricated via a scalable, one‐step, and additive‐free wet‐spinning technique. Hierarchical phase inversion kinetics create microfibers with multiscale porosity and surface nodules, achieving solar reflectance (>95%) and mid‐infrared emissivity (0.96). This single‐material platform satisfies the conflicting requirements of wearing comfort and electronic functionality by providing breathability, flexibility, and passive daytime thermal management. These properties thermally decouple electronics from the skin and keep skin temperature below 41°C even under intense sunlight (500 W/m 2 ) combined with a localized heat load equivalent to a heat flux of approximately 17 kW/m 2 over a 142 mm 2 area, simulating high‐power microcontrollers, conditions that cause low‐temperature burns within minutes on conventional textiles. By converting a commodity polymer into an advanced thermal‐optical regulator through a mature and scalable fiber‐production process, this textile establishes a practical, safe, and manufacturable foundation for reliable, all‐day wearable electronic systems.
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