材料科学
气凝胶
陶瓷
光子上转换
纳米纤维
声子
复合材料
光电子学
发光
无定形固体
热的
纳米技术
纳米晶
猝灭(荧光)
压缩(物理)
棒
应变工程
工作(物理)
制作
压电
保温
纳米材料
弹性(物理)
作者
Chenhao Ding,Jiawei Wu,Weiyan Zhu,M.L. Zhang,Xinyi Wang,Qian Liu,Xinyu Li,Liyuan Fu,Shude Liu,Jianhua Yan
摘要
Real-time noncontact temperature detection is critical for the reliable operation of specialized robots in extreme thermodynamic environments. Upconversion (UC) luminescent materials, owing to their temperature-sensitive emission, offer a promising solution. However, traditional UC crystals are fundamentally limited by both severe thermal quenching above 250°C and intrinsic brittleness. Here, we break these barriers by developing a subcrystalline upconversion ceramic nanofiber aerogel through an interfacial phonon engineering strategy. Our approach embeds active rare-earth nanocrystals within an amorphous alumina matrix, creating a tensile-strained heterointerface that softens local phonon modes and efficiently scatters high-frequency vibrations. This unique "phonon cage" architecture suppresses nonradiative decay pathways, enabling stable UC emission at the unprecedented temperature of 1300°C. Furthermore, the subcrystalline structure induces a higher-order sinusoidal buckling behavior, endowing the aerogel with thermomechanical superelasticity. The aerogel fully recovers from 95% compressive strain and survives over 1000 fatigue cycles, retaining >80% of its elasticity after 100 rigorous compression cycles under 1300°C thermal load. This work paves the way for noncontact thermal sensing in extreme environments.
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