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Published on: July 25, 2014
Thermally Activated Electric-Field Relay for Ultrafast and Stable NO2 Detection over Wide Temperature Range
Yucheng Ou1, Bing Wang1, Nana Xu1
1Science and Technology on Advanced Ceramic Fiber and Composites Laboratory, College of Aerospace Science and Engineering, National University of Defense Technology, Changsha 410073, China.
Abstract:
Conventional metal oxide sensors often suffer from limited long-term stability over an ultrabroad temperature range, primarily due to their single-type active sites and a static electronic configuration. To overcome this limitation, we constructed a dual local electric field (LEF) with a graded electron concentration profile by precisely modulating the local chemical environment of CeO2. This design introduces a thermally activated electric-field switching mechanism, which enables ultrafast and stable response value toward NO2 detection from -50 to 800 °C. We demonstrate that at low temperatures, the divergent hybridization between Pt and Ce orbitals leads to a lower thermal activation energy for LEF-1 than for LEF-2. As temperature rises, electron migration from the 4f orbitals of Ce3+ to adjacent Ce4+ weakens LEF-1, whereas thermal activation promotes efficient electron transfer in LEF-2, allowing LEF-2 to dominate at high temperatures and ensuring continuous activity. This relay sensing mechanism sustains rapid response (within 12 s) and long-term stability (over 75 d) at both -50 and 800 °C. This work presents an adaptive sensing mechanism through electron gradient differentiation and thermal-driven field switching, offering a new paradigm for the design of intelligent sensors under extreme conditions.
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