TY - JOUR
T1 - Strong yet superelastic ceramic aerogel enabled by synergistic soft-hard inter-nanowire nodes
AU - Lu, De
AU - Su, Lei
AU - Zhuang, Lei
AU - Niu, Min
AU - Peng, Kang
AU - Zhang, Pengcheng
AU - Wang, Xiaowu
AU - Ni, Zhentao
AU - Jia, Shuhai
AU - Wang, Hongjie
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/12
Y1 - 2025/12
N2 - Elastic ceramic aerogels have drawn broad attention for use in aerospace, energy storage, and thermal protection systems, where lightweight structures with thermal stability and mechanical robustness are required. Yet their practical application is often limited by insufficient strength. Achieving both high strength and high elasticity in ceramic nanowire aerogels remains challenging because these properties are typically mutually constrained. Here we design silicon carbide nanowire aerogels reinforced by dual-phase nodes composed of pyrolytic carbon (PyC) and amorphous silica (SiO2) to resolve this conflict. Experimental measurements together with large-scale atomic/molecular massively parallel simulator (LAMMPS) and finite element simulations show that amorphous SiO2 improves load-bearing efficiency by distributing stress uniformly, while PyC relieves local stress concentrations and prevents premature SiO2 fracture, producing a clear synergistic effect. The resulting aerogels exhibit a compressive strength of 10.9 MPa at 80% strain and a resilience of about 90%. This dual-phase strategy provides an effective route to tailor the mechanical response of ceramic aerogels and expand their use in extreme environments such as high temperature, low oxygen, and vacuum conditions, where strength, elasticity, and long-term reliability are required.
AB - Elastic ceramic aerogels have drawn broad attention for use in aerospace, energy storage, and thermal protection systems, where lightweight structures with thermal stability and mechanical robustness are required. Yet their practical application is often limited by insufficient strength. Achieving both high strength and high elasticity in ceramic nanowire aerogels remains challenging because these properties are typically mutually constrained. Here we design silicon carbide nanowire aerogels reinforced by dual-phase nodes composed of pyrolytic carbon (PyC) and amorphous silica (SiO2) to resolve this conflict. Experimental measurements together with large-scale atomic/molecular massively parallel simulator (LAMMPS) and finite element simulations show that amorphous SiO2 improves load-bearing efficiency by distributing stress uniformly, while PyC relieves local stress concentrations and prevents premature SiO2 fracture, producing a clear synergistic effect. The resulting aerogels exhibit a compressive strength of 10.9 MPa at 80% strain and a resilience of about 90%. This dual-phase strategy provides an effective route to tailor the mechanical response of ceramic aerogels and expand their use in extreme environments such as high temperature, low oxygen, and vacuum conditions, where strength, elasticity, and long-term reliability are required.
UR - https://www.scopus.com/pages/publications/105026211683
U2 - 10.1038/s41467-025-66339-x
DO - 10.1038/s41467-025-66339-x
M3 - 文章
C2 - 41271755
AN - SCOPUS:105026211683
SN - 2041-1723
VL - 16
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 11527
ER -