材料科学
膜
气凝胶
极限抗拉强度
原材料
抗弯刚度
复合材料
可再生能源
智能材料
热导率
纤维素
纳米技术
化学工程
化学
遗传学
有机化学
电气工程
生物
工程类
作者
Massimigliano Di Luigi,Yu Fu,Zheng Li,Jason N. Armstrong,Fei Yao,Shenqiang Ren
标识
DOI:10.1002/adem.202300124
摘要
The environment‐friendly components coupled with the ability to mimic the simplicity and originality of nature necessitate advanced sustainable materials with structural capabilities for energy‐efficient applications. The use of feedstock deriving from plant‐based, renewable organic material to produce nanofibril that embodies enhanced insulating properties and high mechanical strength constitutes an efficient development strategy. Herein, a free‐standing, hierarchical superinsulation membrane by leveraging the principle of the bottom‐up method is reported. The electrospun cellulose nanofibrils/aerogel‐based core layer provides exceptional thermal properties with its thermal conductivity of 10.2 mW m −1 K −1 . The lightweight, flexible, and durable paper‐like membrane features a tensile strength of 11.3 MPa and a bending rigidity in the order of 4.6 cN mm −1 . The hydrophobic superinsulation membrane material also exhibits a Δ T of ≈25 °C under continuous sunlight illumination and allows thermal runaway mitigation of rechargeable lithium‐ion batteries. All the aforementioned properties position this hybrid superinsulation membrane as a promising material for energy‐saving thermal management applications.
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