Core-Shell Composite Nanofibers with High Temperature Resistance, Hydrophobicity and Breathability for Efficient Daytime Passive Radiative Cooling

被引:9
|
作者
Fan, Hong [1 ]
Wang, Kefan [1 ]
Ding, Yangjian [1 ]
Qiang, Yueyue [1 ]
Yang, Zhuo [1 ]
Xu, Huan [1 ]
Li, Min [1 ]
Xu, Zewen [1 ]
Huang, Cheng [1 ,2 ,3 ,4 ]
机构
[1] Soochow Univ, Key Lab Adv Carbon Mat & Wearable Energy Technol J, Soochow Innovat Consortium Intelligent Fibers & We, Coll Energy,Soochow Inst Energy & Mat Innovat SIEM, 688 Moye Rd, Suzhou 215006, Peoples R China
[2] Suzhou City Univ, Sch Opt & Elect Informat & Jiangsu, Suzhou Key Lab Biophoton & Int Joint Metacenter Ad, 1188 Wuzhong Dist, Suzhou 215006, Peoples R China
[3] Sun Yat Sen Univ, Sch Flexible Elect, 66 Gongchang Rd, Shenzhen 518107, Peoples R China
[4] Sun Yat Sen Univ, State Key Lab Optoelect Mat & Technol, 66 Gongchang Rd, Shenzhen 518107, Peoples R China
关键词
core-shell composite nanofibers; electrostatic spinning; PVDF@PEI; radiative cooling; FIBER;
D O I
10.1002/adma.202406987
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Radiative cooling technology, which is renowned for its ability to dissipate heat without energy consumption, has garnered immense interest. However, achieving high performance, multifunctionality, and smart integration while addressing challenges such as film thickness and enhancing anisotropic light reflection remains challenging. In this study, a core-shell composite nanofiber, PVDF@PEI, is introduced and designed primarily from a symmetry-breaking perspective to develop highly efficient radiative cooling materials. Using a combination of solvent-induced phase separation (EIPS) inverse spinning and (aggregation) self-assembly methods (EISA or EIAA) and coaxial electrostatic spinning (ES), superconformal surface anisotropic porous nanofiber membranes are fabricated. These membranes exhibit exceptional thermal stability (up to 210 degrees C), high hydrophobicity (contact angle of 126 degrees), robust UV protection (exceeding 99%), a fluorescence multiplication effect (with a 0.6% increase in fluorescence quantum efficiency), and good breathability. These properties enable the material to excel in a wide range of application scenarios. Moreover, this material achieved a remarkable daytime cooling temperature of 8 degrees C. The development of this fiber membrane offers significant advancements in the field of wearables and the multifunctionality of materials, paving new paths for future research and innovation. PVDF@PEI core-shell nanofibers are developed via symmetry-breaking design for efficient radiative cooling. The membranes show high thermal stability, hydrophobicity, UV protection, fluorescence enhancement, and breathability, enabling 8 degrees C daytime cooling. This innovation advances wearables and multifunctional materials research. image
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页数:9
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