材料科学
热敏电阻器
大气温度范围
热稳定性
陶瓷
工程物理
热的
热力学
晶界
分析化学(期刊)
电气工程
复合材料
化学工程
微观结构
物理
工程类
化学
色谱法
作者
Hao Sun,Yunfei Wang,Yafei Liu,Ruifeng Wu,Aimin Chang,Pengjun Zhao,Bo Zhang
标识
DOI:10.1021/acsami.4c00187
摘要
Next-generation high-temperature applications increasingly rely heavily on advanced thermistor materials with enhanced thermal stability and electrical performance. However, thus far, the great challenge of realizing high thermal stability and precision in a wide temperature range has become a key bottleneck restricting the high-temperature application. Here, we propose a high-entropy strategy to design novel high-temperature thermistor ceramics (La0.2Ce0.2Nd0.2Sm0.2Eu0.2)NbO4. Differences in atomic size, mass, and electronegativity in this high-entropy system cause high lattice distortion, substantial grain boundaries, and high dislocation density. These enhance the charge carrier transport and reduce the grain boundary resistance, thus synergistically broadening the temperature range. Our samples maintain high precision and thermal stability over a wide temperature range from room temperature to 1523 K (ΔT = 1250 K) with an aging value as low as 0.42% after 1000 h at 1173 K, showing breakthrough progress in high-temperature thermistor ceramics. This study establishes an effective approach to enhancing the performance of high-temperature thermistor materials through high-entropy strategies.
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