China Plastics ›› 2025, Vol. 39 ›› Issue (9): 26-37.DOI: 10.19491/j.issn.1001-9278.2025.09.005

• Materials and Properties • Previous Articles     Next Articles

Fabrication and radiative cooling properties of polyoxymethylene fiber⁃based composite aerogels

CHEN Xi1,3, DONG Jinming1,3, WANG Yatao1,3, BAI Ruyi2, SHI Tao2, LIU Huan2, MA Xiaofeng1,3(), WANG Xiaodong2()   

  1. 1.Coal Chemical R&D Center of Kailuan Group,Tangshan 063018,China
    2.State Key Laboratory of Organic?Inorganic Composites,Beijing University of Chemical Technology,Beijing 100029,China
    3.Hebei Provincial Technology Innovation Centre of Coal?based Materials and Chemicals,Tangshan 063018,China
  • Received:2025-06-19 Online:2025-09-26 Published:2025-09-22

Abstract:

In this study, polyoxymethylene (POM)/cellulose nanofiber (CNF) composite aerogels were fabricated via vacuum freeze⁃drying, and the influence of fiber length on their structure and properties was systematically investigated. Nano⁃silica (SiO₂) was incorporated at varying mass percentages to produce POM/CNF/SiO₂ composite aerogels, and their radiative cooling performance was evaluated. Temperature variations of the aerogels were monitored under direct sunlight and shaded conditions on a clear day. Results indicated that the POM/CNF aerogel prepared with 1 mm fibers achieved a maximum sub⁃ambient cooling of 8.7 ℃ under direct sunlight. With the addition of nano⁃SiO₂, the composite aerogel exhibited enhanced cooling performance, reaching a maximum temperature reduction of 12.2 ℃. Under shaded conditions, the temperature drops were 2.5 and 1.6 ℃ for the POM/CNF and POM/CNF/SiO₂ composite aerogels, respectively. Notably, the optimal incorporation of nano⁃SiO₂ significantly improved solar reflectance (up to 92.44 %) and compressive strength while maintaining high infrared emissivity (82.56 %) and low thermal conductivity [0.048 W/(m·K)]. These findings indicate that POM⁃based composite aerogels exhibit exceptional radiative cooling performance and favorable mechanical properties, offering a viable strategy for energy⁃efficient cooling applications and the development of high⁃performance radiative cooling textiles.

Key words: polyoxymethylene fibers, aerogel, radiative cooling, thermal management

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