TY - JOUR
T1 - Armoring Boron Nitride with Pyrolytic Carbon Layers for Tunable Rigidity and Flexibility
AU - Lan, Meng
AU - Pei, Yu
AU - Huang, Kexin
AU - Zhou, Yudong
AU - Han, Xiao
AU - Fu, Qiangang
N1 - Publisher Copyright:
© 2025 The Author(s). Advanced Science published by Wiley-VCH GmbH.
PY - 2025/9/18
Y1 - 2025/9/18
N2 - Ceramic aerogels are acclaimed as ideal materials for extreme environments due to their ultrahigh porosity, low density, and exceptional thermal stability. However, the practical application of traditional ceramic aerogels is constrained by their inherent mechanical brittleness. Herein, a strategy is proposed to customize mechanically tunable aerogels by armoring ceramic nanounits with pyrolytic carbon (PyC). The PyC encapsulating layers with various thicknesses are transformed into ductile tights or rigid armors, facilitating the mechanical customization of BN@PyC aerogel from superelasticity to rigidity across scales. Interestingly, the PyC armor imparts unique versatility to the aerogel, including flame retardancy, elastic response conductivity, and thermal conductivity. Furthermore, owing to the thermal stability of the PyC armor, the BN@PyC aerogel maintains its mechanical integrity even after high-temperature thermal treatment, and exhibits an unexpected resistance to butane torch ablation. Integrating mechanical stability, high-temperature resistance, and multifunctionality, BN@PyC aerogels offer new possibilities for scalable applications in extreme environments. This facile strategy of armoring brittle ceramic aerogels with PyC provides a novel reference for customizing the mechanical properties of multifunctional aerogels.
AB - Ceramic aerogels are acclaimed as ideal materials for extreme environments due to their ultrahigh porosity, low density, and exceptional thermal stability. However, the practical application of traditional ceramic aerogels is constrained by their inherent mechanical brittleness. Herein, a strategy is proposed to customize mechanically tunable aerogels by armoring ceramic nanounits with pyrolytic carbon (PyC). The PyC encapsulating layers with various thicknesses are transformed into ductile tights or rigid armors, facilitating the mechanical customization of BN@PyC aerogel from superelasticity to rigidity across scales. Interestingly, the PyC armor imparts unique versatility to the aerogel, including flame retardancy, elastic response conductivity, and thermal conductivity. Furthermore, owing to the thermal stability of the PyC armor, the BN@PyC aerogel maintains its mechanical integrity even after high-temperature thermal treatment, and exhibits an unexpected resistance to butane torch ablation. Integrating mechanical stability, high-temperature resistance, and multifunctionality, BN@PyC aerogels offer new possibilities for scalable applications in extreme environments. This facile strategy of armoring brittle ceramic aerogels with PyC provides a novel reference for customizing the mechanical properties of multifunctional aerogels.
KW - boron nitride
KW - ceramic aerogels
KW - customization
KW - mechanical properties
KW - pyrolytic carbon
UR - https://www.scopus.com/pages/publications/105008763856
U2 - 10.1002/advs.202504649
DO - 10.1002/advs.202504649
M3 - 文章
C2 - 40549884
AN - SCOPUS:105008763856
SN - 2198-3844
VL - 12
JO - Advanced Science
JF - Advanced Science
IS - 35
M1 - e04649
ER -