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A Novel Method for Notable Reducing Phase Transition Temperature of VO2 Films for Smart Energy Efficient Windows

机译:显着降低智能节能窗户的VO2薄膜相变温度的新方法

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摘要

Although Vanadium dioxide (VO ) has a potential application value for smart energy efficient windows because of its unique phase transition characteristic, there are still many obstacles that need to be overcome. One challenge is to reduce its high transition temperature ( = 68 °C) to near room temperature without causing its phase transition performance degradation. In this paper, a novel method was employed that covered a 3 nm ultra-thin heavy Cr-doped VO layer on the pure VO films. Compared with the as-grown pure VO , obviously, phase transition temperature decreasing from 59.5 °C to 48.0 °C was observed. Different from previous doping techniques, almost no phase transition performance weakening occurred. Based on the microstructure and electrical parameters measurement results, the mechanism of reducing was discussed. The upper ultra-thin heavy Cr-doped layer may act as the induced role of phase transition. With temperature increasing, carrier concentration increased from the upper heavy Cr-doped layer to the bottom pure VO layer by diffusion, and induced the carrier concentration reach to phase transition critical value from top to bottom gradually. The present method is not only a simpler technique, but also avoids expensive alloy targets.
机译:尽管由于其独特的相变特性,二氧化钒(VO)在智能节能窗户方面具有潜在的应用价值,但仍有许多障碍需要克服。一个挑战是将其高转变温度(= 68°C)降低到接近室温,而不会导致其相变性能下降。在本文中,采用了一种在纯VO膜上覆盖3 nm超薄重铬掺杂VO层的新方法。与刚生长的纯VO相比,明显观察到相变温度从59.5°C降低到48.0°C。与以前的掺杂技术不同,几乎没有发生相变性能减弱。根据组织和电参数测量结果,讨论了还原机理。上部超薄重Cr掺杂层可能起相变的诱导作用。随着温度的升高,载流子浓度通过扩散从上层重Cr掺杂层到下层纯VO层逐渐增加,并引起载流子浓度从上到下逐渐达到相变临界值。本方法不仅是较简单的技术,而且避免了昂贵的合金靶。

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