材料科学
气凝胶
复合材料
保温
热的
热稳定性
激光器
热膨胀
热导率
抗压强度
结晶
各向异性
辐照
灾难性故障
热阻
抗剪强度(土壤)
熔融石英
热失控
航天飞机热防护系统
剪切(地质)
作者
Huihuang Ma,Yikun Liu,Jian‐Fei Gao,Qunfang Lin,Chuanjie Fan,Xiaodong Zhou,Liangshun Zhang
标识
DOI:10.1021/acsami.5c14180
摘要
While silica aerogels have emerged as promising thermal management materials, their practical applications under extreme conditions such as ultrahigh-energy laser irradiation or thermal shocks exceeding 2000 °C are fundamentally limited by catastrophic thermal insulation failure and mechanical instability. Herein, we report a breakthrough multiphase subcrystalline silica aerogel (MSC-SA) architecture engineered through interfacial-induced crystallization with quartz fibers. By implementing a "inter-layered insulation/in-plane conduction" design paradigm, the MSC-SAs can achieve a feature of extreme thermal anisotropy─combining unprecedented axial insulation with ultraefficient radial heat dissipation. This unique thermal management strategy enables the simultaneous achievement of record-high laser damage resistance with a threshold of 3.0 × 104 W·cm-2 and protection duration exceeding 5 min, exceptional thermal stability of an ultralow thermal expansion coefficient of 1.0 × 10-6 °C1- at 1200 °C, and remarkable mechanical robustness evidenced by interfacial shear strength of 43.7 MPa and compressive strength of 32.0 MPa at 95% strain. Our proposed MSC-SAs are ideal for thermal superinsulation materials capable of withstanding extreme environments, particularly in advanced defense applications against high-energy laser threats.
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