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Large-scale assembly of isotropic nanofiber aerogels based on columnar-equiaxed crystal transition.

Authors :
Li L
Zhou Y
Gao Y
Feng X
Zhang F
Li W
Zhu B
Tian Z
Fan P
Zhong M
Niu H
Zhao S
Wei X
Zhu J
Wu H
Source :
Nature communications [Nat Commun] 2023 Sep 05; Vol. 14 (1), pp. 5410. Date of Electronic Publication: 2023 Sep 05.
Publication Year :
2023

Abstract

Ice-templating technology holds great potential to construct industrial porous materials from nanometers to the macroscopic scale for tailoring thermal, electronic, or acoustic transport. Herein, we describe a general ice-templating technology through freezing the material on a rotating cryogenic drum surface, crushing it, and then re-casting the nanofiber slurry. Through decoupling the ice nucleation and growth processes, we achieved the columnar-equiaxed crystal transition in the freezing procedure. The highly random stacking and integrating of equiaxed ice crystals can organize nanofibers into thousands of repeating microscale units with a tortuous channel topology. Owing to the spatially well-defined isotropic structure, the obtained Al <subscript>2</subscript> O <subscript>3</subscript> ·SiO <subscript>2</subscript> nanofiber aerogels exhibit ultralow thermal conductivity, superelasticity, good damage tolerance, and fatigue resistance. These features, together with their natural stability up to 1200 °C, make them highly robust for thermal insulation under extreme thermomechanical environments. Cascading thermal runaway propagation in a high-capacity lithium-ion battery module consisting of LiNi <subscript>0.8</subscript> Co <subscript>0.1</subscript> Mn <subscript>0.1</subscript> O <subscript>2</subscript> cathode, with ultrahigh thermal shock power of 215 kW, can be completely prevented by a thin nanofiber aerogel layer. These findings not only establish a general production route for nanomaterial assemblies that is conventionally challenging, but also demonstrate a high-energy-density battery module configuration with a high safety standard that is critical for practical applications.<br /> (© 2023. Springer Nature Limited.)

Details

Language :
English
ISSN :
2041-1723
Volume :
14
Issue :
1
Database :
MEDLINE
Journal :
Nature communications
Publication Type :
Academic Journal
Accession number :
37670012
Full Text :
https://doi.org/10.1038/s41467-023-41087-y