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Superdurable, Flexible Ceramic Nanofibers for Sustainable Passive Radiative Cooling
Journal article   Peer reviewed

Superdurable, Flexible Ceramic Nanofibers for Sustainable Passive Radiative Cooling

Dai-Chi Chen, Ching-Wen Hwang, Ching Yin Chang, Chia-Ling Kuo, Hsuen-Li Chen, Pin-Hui Lan, Meng-Ting Tsai, Tzu-Wei Wang and Dehui Wan
ACS nano, Vol.19(31), pp.28280-28294
12/08/2025
PMID: 40742296

Abstract

Chemistry Chemistry, Multidisciplinary Chemistry, Physical Materials Science Materials Science, Multidisciplinary Nanoscience & Nanotechnology Physical Sciences Science & Technology Science & Technology - Other Topics Technology
Passive daytime radiative cooling can mitigate global warming but requires durable and resilient materials for real-world applications. Here, a robust superhydrophobic ZrO2-Al2O3 nanofiber (sh-ZANF) membrane is fabricated via electrospinning followed by fluorine-free surface modification. Optically engineered sh-ZANF attains an extremely high solar reflectivity of 97.7% due to strong scattering at numerous fiber/air interfaces with a high refractive index contrast (n fiber = 2.04, n air = 1). sh-ZANF also possesses a high atmospheric transparency window emissivity of 95.6% originating from phonon-polariton resonances of abundant Al-O/Zr-O bonds without a strong Reststrahlen effect. The optimal sh-ZANF membrane demonstrates subambient cooling of 6.6 degrees C and a maximum cooling power of 125 W/m2 under 817 W/m2 solar irradiance. Coverage by sh-ZANF cools building models, automobile models, and hand-held cameras under sunlight by 14.7 degrees C, 16.8 degrees C, and 11.1 degrees C, respectively. Equipping buildings with sh-ZANF is estimated to save more than 10 MJ/m2 annually and reduce CO2 emission by up to 27%. Moreover, these all-ceramic nanofibers can withstand temperatures exceeding 1400 degrees C, safeguarding buildings and their occupants during fire emergencies. Our sh-ZANF also displays attractive self-cleaning properties and successfully passes accelerated environmental aging tests, suggesting its applicability for future energy-efficient and sustainable cooling strategies.
url
https://doi.org/10.1021/acsnano.5c05958View
Published (Version of record) Open

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