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Published on: December 21, 2015
Solid-State Dewetting of Tungsten-Doped Vanadium Dioxide Nanoparticles: Implications for Thermochromic Coatings
Samuel T White1, James R Taylor1, Ivan Chukhryaev1
1Department of Physics and Astronomy, Vanderbilt University, Nashville, Tennessee 37235, United States.
Abstract:
Doped vanadium dioxide (VO2) nanoparticles (NPs) have significant potential for applications requiring temperature-dependent emissivity, reflectivity, or transmission. Thermochromic coatings in particular enable energy-saving smart windows and passive thermal radiators but are subject to tight performance constraints. A major challenge is preparing uniform layers of NPs, over large areas, with controllable size distributions and transition temperatures (T c). We describe the growth and transition characteristics of randomly distributed undoped and W-doped VO2 NPs formed by solid-state dewetting. Sizes and size distributions are controlled by anneal time, as particles grow via Smoluchowski aggregation before oxidizing into V2O5; shapes are determined by the interfacial energies between VO2 (V2O5) and the silicon substrate. Tungsten dopants concentrate at the NP surface, increasing the energy barrier for and slowing the rate of dewetting, aggregation, and oxidization. Surprisingly, the doped NPs exhibit lower T c and sharper hysteresis than comparably doped thin films. These results advance our capacity to engineer doped VO2 NPs, yield valuable insights into VO2-substrate interactions, and highlight the distribution of W-dopants in VO2 NPs.

