纳米工程
保温
多孔性
热导率
复合材料
陶瓷
多孔介质
材料科学
纳米技术
图层(电子)
作者
Lu An,Massimigliano Di Luigi,Donald Petit,Yong Hu,Ying‐Jie Chen,Jason N. Armstrong,Yuguang C. Li,Shenqiang Ren
标识
DOI:10.1021/acsanm.1c04354
摘要
Thermal insulation of solid materials originates from the nanoscale porous architectures to regulate thermal management in energy-critical applications from energy-efficient buildings to heat-sensitive energy devices. Here, we show nanoengineering of porous silica materials to control the architecture transition from mesoporous to nanocage networks. A low thermal conductivity of such a porous silica network is achieved at 0.018 W/(m K) while exhibiting a porosity of 92.05%, specific surface area of 504 m2/g, and pore volume of 2.37 cm3/g after ambient pressure drying. Meanwhile, the crosslinking of the porous silica and ceramic fiber frameworks show a tensile Young’s modulus of 2.8 MPa while maintaining high thermal insulation, which provides an effective thermal runway mitigation strategy for rechargeable lithium-ion batteries. The nanoengineering strategy reported here would shed light on achieving superthermal insulation of nanostructures for energy-critical applications.
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