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Updated: Jan 20, 2026

Fabrication and Design of Wood-Based High-Performance Composites
Published on: November 9, 2019
Innovative Optimized Design of CeO2/SnO2 Composites for Power Equipment Oil Achieving Breakthrough in
Menghao Lin1, Yang Liu1, Tianlei Wang1
1Grid Xinjiang Company Limited Electric Power Research Institute, Urumqi 830011, China.
Abstract:
Monitoring changes in the dissolved gas compositional within transformer oil, particularly hydrogen (H2), is vital for early fault diagnosis. Among various sensing materials, SnO2 shows promise for H2 gas detection but faces challenges, such as high operating temperatures, poor selectivity, and slow response/recovery kinetics. This study successfully synthesizes a series of CeO2/SnO2 composite materials with varying Ce/Sn molar ratios using a hydrothermal method, followed by calcination. The impact of the composite ratio on its microstructure, surface chemistry, and H2 gas-sensing performance has been systematically explored. The strategic incorporation of CeO2 significantly boosts the surface oxygen vacancy concentration of SnO2. These vacancies serve as active sites, which enhance the adsorption and reactivity of gas molecules. Additionally, the addition of CeO2 synergistically enhances surface oxygen vacancy concentration (62.27%) and forms a mesoporous structure, which collectively accelerate gas diffusion and electron transfer at the heterojunction interface. The CeO2/SnO2 composite with a 3:7 Ce/Sn molar ratio shows a high response value of 35.69 to 20 ppm H2 at 175 °C, nearly three times higher than pure SnO2. The corresponding response and recovery times are reduced to 116.4 and 168.6 s, respectively. Moreover, the composite also displays excellent linearity (R 2 = 0.997), long-term stability (>30 days), and selectivity. Energy band analysis reveals a type-II band alignment and work function difference in the CeO2/SnO2 heterojunction, promoting efficient charge transfer at the interface and enhancing electrical conductivity and gas-sensing response. This work provides crucial theoretical insights and material optimization strategies for developing high-performance semiconductor gas sensors and advancing gas-sensing technologies toward H2.
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