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Low‐Cost Hyperelastic Fuller‐Dome‐Structured Nanocellulose Aerogels by Dual Templates for Personal Thermal Management
Author(s) -
Wang Guang,
Feng Jiabing,
Zhou Zhezhe,
Liu Zheng,
Wu Jianpeng,
Li Jingchao,
Gao Qiang,
Lynch Mark,
Li Jianzhang,
Song Pingan
Publication year - 2025
Publication title -
advanced materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 10.707
H-Index - 527
eISSN - 1521-4095
pISSN - 0935-9648
DOI - 10.1002/adma.202414896
Subject(s) - aerogel , materials science , thermal conductivity , nanocellulose , thermal insulation , composite material , microstructure , polyurethane , nanotechnology , chemical engineering , cellulose , engineering , layer (electronics)
Abstract It is critically important to maintain the body's thermal comfort for human beings in extremely cold environments. Cellulose nanofibers (CNF)‐based aerogels represent a promising sustainable material for body's heat retention because of their renewability and low thermal conductivity. However, CNF‐based aerogels often suffer high production costs due to expensive CNF, poor elasticity and/or unsatisfactory thermal insulation owing to improper microstructure design. Here, a facile dual‐template strategy is reported to prepare a low‐cost, hyperelastic, superhydrophobic Fuller‐dome‐structured CNF aerogel (CNF@PU) with low thermal conductivity. The combination of air template by foaming process and ice template enables the formation of a dome‐like microstructure of CNF@PU aerogel, in which CNF serves as rope bars while inexpensive polyurethane (PU) acts as joints. The aerogel combines ultra‐elasticity, low thermal conductivity (24 mW m −1 K −1 ), and low costs. The as‐prepared CNF@PU aerogel demonstrates much better heat retention than commercial thermal retention fillers (e.g., Flannelette and goose down), promising its great commercial potential for massively producing warming garments. This work provides a facile approach for creating high‐performance aerogels with tailored microstructure for effective personal thermal management.
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