材料科学
杰纳斯
纳米技术
超细纤维
纳米孔
热发射率
辐射冷却
仿生学
纳米纤维
红外线的
水运
光电子学
蒸发
静电纺丝
透射率
纳米材料
热的
图层(电子)
超短脉冲
复合材料
自愈水凝胶
软机器人
光学
灵活性(工程)
电子设备和系统的热管理
边界层
作者
Jie Li,Xi He,Yang Wu,Ming-Peng Zhuo,Xinyu Li,Cunmin Wang,Kunkun Tu,Jiefeng Gao,Huan Xu
标识
DOI:10.1021/acsami.6c04019
摘要
The development of biodegradable radiative cooling textiles that simultaneously deliver high solar reflectance, efficient sweat management, and long-term durability remains challenging. Here, we report a hierarchical Janus poly(lactic acid) (PLA) metafabric (J-PLA) enabled by molecular stereocomplexation and a plant-transpiration-inspired dual-gradient architecture. Stereocomplexation between poly(l-lactic acid) and poly(d-lactic acid) chains fundamentally enhanced the mechanical robustness and infrared vibrational intensity of the PLA matrix. Concurrently, a biomimetic dual-gradient structure, replicating the transpiration network of vascular plants, was constructed by electrospinning a hydrophilic stereocomplexed PLA/SiO2 nanofiber layer onto a hydrophobic PLA microfiber substrate. This unique architecture enabled ultrafast directional water transport (<21 s) and superior spectral selectivity, achieving a solar reflectance of 94.2% and a mid-infrared emittance of 93.3%. Under outdoor direct sunlight (dry condition), J-PLA achieved a maximum temperature reduction of 12.1 °C relative to bare skin and 7.2 °C relative to cotton. Under simulated sweating, directional transport and evaporation further enhance cooling, providing an additional 7.6 °C reduction at a sweat rate of 0.5 mL h-1. This work provides a novel and sustainable design paradigm for next-generation, high-performance personal thermal management textiles.
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