材料科学
电子设备和系统的热管理
生物复合材料
辐射冷却
热的
过程(计算)
纳米技术
比例(比率)
辐射热
制造工艺
环境友好型
热导率
水冷
复合材料
工艺工程
热辐射
光电子学
缩放比例
热冲击
休克(循环)
可持续生产
纳米结构
发射率
可再生能源
纳米尺度
微观结构
机械工程
辐射冷却
作者
Xianxian Lin,Shuaiming He,Zhenkun Yang,Zhulin Li (10972400),Aili Ablimit,Ronggui Yang,Chaoji Chen,Yiqiang Wu
标识
DOI:10.1038/s41467-026-72439-z
摘要
Radiative cooling materials, which passively dissipate heat by reflecting sunlight and emitting infrared radiation through the atmospheric window, hold transformative potential for energy-efficient and sustainable thermal management. In particular, biomass-derived coolers have gained attention for their natural optical properties and environmental compatibility. However, such materials often depend on energy-intensive or complex processing to achieve the necessary photonic structures, while their limited mechanical strength and durability restrict practical outdoor application. Here, we report a high-performance, fully recyclable radiative cooling biocomposite fabricated directly from natural wood through an energy-efficient top-down approach that combines multi-stage crystalline restructuring with nanostructural assembly. This design synergistically combines enhanced cellulose crystallinity, capillary-driven self-densification, and hydrogen-bonded nanofiller networks to achieve exceptional mechanical properties (416.7 MPa tensile strength) and unprecedented cooling power (106 W/m2), surpassing most conventional cooling materials. During the daytime, field tests validate 8.8 °C sub-ambient temperature reduction under 879 W/m2 solar irradiance. The cooling biocomposite, produced at scale via particle-solution shock process, exhibits high recyclability and foldability, completing an environmentally conscious life cycle. The energy‑efficient manufacturing process enables meter‑scale production, offering a promising pathway toward carbon‑neutral thermal management in sustainable buildings and agricultural applications. Biomass-based radiative cooling materials face trade-offs between performance, durability, and eco-friendly processes. Here, authors report a high-performance, recyclable cooling biocomposite directly fabricated from wood via an energy-saving method.
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