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Progress in Metafibers for Sustainable Radiative Cooling and Prospects of Achieving Thermally Drawn Metafibers

  • Miao Qi
  • , Tingting Wu
  • , Zhe Wang
  • , Zhixun Wang
  • , Bing He
  • , Haozhe Zhang
  • , Yanting Liu
  • , Jiwu Xin
  • , Tianzhu Zhou
  • , Xuhui Zhou
  • , Lei Wei

Research output: Journal article publicationReview articleAcademic researchpeer-review

Abstract

The growing awareness of the energy crisis and global warming has inspired researchers to pursue alternative cooling strategies. Radiative cooling is an environmentally friendly approach that dissipates excessive heat through the atmospheric long-wave infrared transmission window (8–13 μm) to the cold universe. Metamaterials with unique photonic structures are applicable to radiative cooling and have been extensively studied. Incorporating meta-elements to the fiber level of the fabric to construct metafibers is expected to achieve personal thermal management through radiative cooling. Compared with the conventional fiber manufacturing methods, the thermal drawing technique can mass-produce multimaterial and multifunctional fibers with well-defined structures. These in-fiber micro- and nanostructures of light wavelength scale possess great potentials in radiative cooling applications, providing bright prospects for a new generation of metafiber-based smart fabrics. Herein, the fundamental principles of radiative cooling and the metamaterials being used for radiative cooling are summarized. The textiles used for personal cooling and their preparation methods are also introduced. Finally, the article focuses on the preparation of micro- and nanostructures by the thermal drawing technique, which provides a potential solution for the large-scale manufacture of metafibers for sustainable radiative cooling.

Original languageEnglish
Article number2100168
JournalAdvanced Energy and Sustainability Research
Volume3
Issue number5
DOIs
Publication statusPublished - Nov 2021

Keywords

  • metafibers
  • metamaterials
  • radiative cooling
  • thermal drawing techniques

ASJC Scopus subject areas

  • Energy Engineering and Power Technology
  • Ecology
  • Waste Management and Disposal
  • Environmental Science (miscellaneous)

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