4.7 Article

Ultralight and superelastic fibrous sponges with effective heat preservation and photo-thermal conversion for personal cold protection

Journal

COMPOSITES COMMUNICATIONS
Volume 25, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.coco.2021.100766

Keywords

Ultralight and superelastic; Fibrous sponge; Photo-thermal conversion; Warmth retention

Funding

  1. National Natural Science Foundation of China [51925302]
  2. National Key R&D Program - Science and Technology Winter Olympics Key Special Project [2019YFF0302105]
  3. Shanghai Rising-Star Program [20QA1400500]
  4. Fundamental Research Funds for the Central Universities [2232020A-06, CUSF-DH-D-2019041]

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The study developed a novel fibrous sponge material with high heat preservation ability and good functionality for personal cold protection. The fibrous sponge demonstrated excellent insulation, effective photo-thermal conversion performance, and good physical properties, making it a promising option for warmth retention materials.
Advanced warming materials integrating functions of reducing heat loss and providing extra heat for the body have attracted much attention. In this work, an ultralight and superelastic fibrous sponge serving as novel warmth retention materials was obtained by assembling the fibers contained zirconium carbide nanoparticles (ZrC NPs) into three-dimension (3D) configuration and creating the semi-interpenetrating polymer networks (semi-IPNs) within fibers via humidity-induced electrospinning and the thermal crosslinking technology. The resulting fibrous sponge (PCFS-12) exhibits high heat preservation ability (similar to 25.2 mW m(-1) K-1) and effective photo-thermal conversion performance that could improve the temperature of PCFS-12 to 70.3 degrees C under the sunlight irradiation. Moreover, the PCFS-12 showed a low density of 2.8 mg cm(-3), low-temperature super-elasticity with minor plastic deformation after 1000 compression, and good hydrophobic property (WCA = 132.). This work provides a novel approach to develop high-performance warmth retention materials for personal cold protection.

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