Multi-nanolayered VO2/Sapphire Thin Film via Spinodal Decomposition

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作者
Guangyao Sun
Xun Cao
Yuanzheng Yue
Xiang Gao
Shiwei Long
Ning Li
Rong Li
Hongjie Luo
Ping Jin
机构
[1] Shanghai institute of Ceramics,State Key Laboratory of High Performance Ceramics and Superfine Microstructure
[2] Chinese Academy of Sciences,Section of Chemistry
[3] University of Chinese Academy of Sciences,State Key Laboratory of Silicate Materials for Architectures
[4] Aalborg University,Thin Films and Nanostructures Group
[5] Wuhan University of Technology,Department of Materials Science and Engineering, College of science
[6] Materials Science and Technology Division,School of Materials Science and Engineering
[7] Oak Ridge National Laboratory,Materials Research Institute for Sustainable Development
[8] China University of Petroleum Beijing,undefined
[9] Shanghai University,undefined
[10] National Institute of Advanced Industrial Science and Technology,undefined
来源
Scientific Reports | / 8卷
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摘要
Coating of VO2-based thin film has been extensively studied for fabricating energy-saving smart windows. One of the most efficient ways for fabricating high performance films is to create multi-nanolayered structure. However, it has been highly challenge to make such layers in the VO2-based films using conventional methods. In this work, a facile two-step approach is established to fabricate multilayered VO2-TiO2 thin films. We first deposited the amorphous thin films upon sputtering, and then anneal them to transform the amorphous phase into alternating Ti- and V-rich multilayered nanostructure via a spinodal decomposition mechanism. In particular, we take advantage of different sapphire substrate planes (A-plane (11–20), R-plane (1–102), C-plane (0001), and M-plane (10-10)) to achieve different decomposition modes. The new approach has made it possible to tailoring the microstructure of the thin films for optimized performances by controlling the disorder-order transition in terms of both kinetic and thermodynamic aspects. The derived thin films exhibit superior optical modulation upon phase transition, significantly reduced transition temperature and hysteresis loop width, and high degradation resistance, these improvements indicate a high potential to be used for fabricating the next generation of energy saving smart windows.
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