TY - JOUR
T1 - Synergistic microstructural and chemical engineering
T2 - A novel strategy for constructing robust piezoresistive films in extreme environments
AU - Zhang, Tao
AU - Ma, Binghe
AU - Zhang, Xingxu
AU - Ye, Tao
AU - Jia, Qiusheng
AU - Nie, Lingcong
AU - An, Luwei
AU - Yuan, Weizheng
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/7/10
Y1 - 2026/7/10
N2 - Precise monitoring in extreme aerodynamic environments requires sensing materials with high thermal endurance. However, the application of traditional metal oxide sensing films is often limited by coupled microstructural and chemical degradation driven by thermodynamic and kinetic instabilities. In this work, alumina-reinforced indium tin oxide (ITO-Al2O3) composite films are developed via standard Micro-Electromechanical Systems (MEMS) processes. The modified films exhibit improved electrical stability and piezoresistive performance at elevated temperatures up to 900 °C, with a reduced resistance drift rate of 0.001%/h. Microstructural characterization indicates that this enhancement is associated with the formation of a core-shell structure, which mitigates detrimental degradation pathways like grain growth, defect evolution, and elemental diffusion in pristine ITO films, thereby improving their structural, chemical, and electrical stability at elevated temperatures. These results demonstrate the feasibility of tailoring thermally stable sensing films via composite engineering, providing a promising approach for the development of robust sensing devices for next-generation aerospace and energy applications.
AB - Precise monitoring in extreme aerodynamic environments requires sensing materials with high thermal endurance. However, the application of traditional metal oxide sensing films is often limited by coupled microstructural and chemical degradation driven by thermodynamic and kinetic instabilities. In this work, alumina-reinforced indium tin oxide (ITO-Al2O3) composite films are developed via standard Micro-Electromechanical Systems (MEMS) processes. The modified films exhibit improved electrical stability and piezoresistive performance at elevated temperatures up to 900 °C, with a reduced resistance drift rate of 0.001%/h. Microstructural characterization indicates that this enhancement is associated with the formation of a core-shell structure, which mitigates detrimental degradation pathways like grain growth, defect evolution, and elemental diffusion in pristine ITO films, thereby improving their structural, chemical, and electrical stability at elevated temperatures. These results demonstrate the feasibility of tailoring thermally stable sensing films via composite engineering, providing a promising approach for the development of robust sensing devices for next-generation aerospace and energy applications.
KW - Composite engineering
KW - High temperatures
KW - Piezoresistive sensors
KW - Sensing films
KW - Thermal stability
UR - https://www.scopus.com/pages/publications/105042980260
U2 - 10.1016/j.jallcom.2026.189234
DO - 10.1016/j.jallcom.2026.189234
M3 - 文章
AN - SCOPUS:105042980260
SN - 0925-8388
VL - 1076
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 189234
ER -