Liu Jinru, Ji Bolin, Zhong Yi, Zhang Linping, Wang Bijia, Feng Xueling, Xu Hong, Mao Zhiping
National Engineering Research Center for Dyeing and Finishing of Textiles, Innovation Center for Textile Science and Technology, College of Chemistry and Chemical Engineering, Donghua University, Shanghai 201620, P.R. China.
National Manufacturing Innovation Center of Advanced Dyeing and Finishing Technology, Taian, Shandong 271000, P.R. China.
ACS Nano. 2025 Mar 18;19(10):10263-10276. doi: 10.1021/acsnano.4c17745. Epub 2025 Mar 6.
Passive radiative cooling technology provides a sustainable thermal management strategy for outdoor workers under extremely hot environments. However, daytime radiative cooling textiles typically appear white or mirror-like due to the near-complete reflection of sunlight, which poses a significant limitation for outdoor applications where visual aesthetics are important. Herein, we designed colored photoluminescent radiative cooling (CPRC) metafabrics, which are woven from carbon-dot-based coaxial porous fibers, to achieve effective radiative cooling without sacrificing color aesthetics. The coaxial porous fibers are designed with a nanostructured light-scattering shell layer and an enhanced mid-infrared emission core layer, which together improve sunlight reflection and human infrared thermal radiation. Leveraging the photoluminescent properties of carbon dots, the CPRC metafabrics enable selective adsorption of visible light to display vivid colors while re-emitting photons to reduce solar heat generation, achieving a high light-to-photon conversion efficiency of 48.3%. Consequently, the CPRC metafabric with its colorful appearance demonstrates a maximum net cooling power of 69.2 W m, offering average cooling temperatures that are 3.7 and 3.6 °C lower than those of colored commercial wool and dye-based fabric, respectively. Furthermore, the CPRC metafabrics possess self-sensing health monitoring capability and long-time durability, ensuring both safety and thermal comfort for outdoor workers. This work effectively addresses the long-standing problem of integrating color aesthetics with daytime radiative cooling textiles, facilitating the development and application of next-generation wearable energy-saving textiles.
被动辐射冷却技术为处于酷热环境下的户外工作者提供了一种可持续的热管理策略。然而,由于对阳光的近乎完全反射,日间辐射冷却纺织品通常呈现白色或镜面状,这对视觉美学很重要的户外应用构成了重大限制。在此,我们设计了彩色光致发光辐射冷却(CPRC)超织物,其由基于碳点的同轴多孔纤维编织而成,以在不牺牲色彩美学的情况下实现有效的辐射冷却。同轴多孔纤维设计有纳米结构的光散射壳层和增强的中红外发射芯层,它们共同提高了阳光反射和人体红外热辐射。利用碳点的光致发光特性,CPRC超织物能够选择性吸附可见光以呈现鲜艳的颜色,同时重新发射光子以减少太阳热量的产生,实现了48.3%的高光到光子转换效率。因此,具有彩色外观的CPRC超织物展示出69.2 W/m的最大净冷却功率,其平均冷却温度分别比彩色商业羊毛织物和染料基织物低3.7℃和