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Temperature tunable flexible photo absorbers based on near-infrared 1D photonic crystal hybridized W-doped VO2 nanostructures

机译:基于近红外一维光子晶体杂化W掺杂VO2纳米结构的温度可调柔性光吸收体

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摘要

Vanadium dioxide is a potential candidate for energy efficient smart windows and have crystalline phase transition temperature (T (c)) at 68 degrees C. So far, literatures mainly emphasis on different synthetic strategies of tungsten doped VO2 which is a most effective dopant to reduce T (c) of VO2 to near room temperatures. Until now, there is no report shows the incorporation of flexible 1D photonic crystals as spectrally selective, temperature tunable device to control the changes in optical transmission modulations of W-VO2 nanostrtcures, especially in the near IR region for smart window application. W-doped VO2 with various tungsten contents were synthesized with a facile hydrothermal route. We found that, with 1.1 at of tungsten doping in intrinsic VO2, the metal to insulator transition temperature is brought down to 37 degrees C from 68 degrees C. IR transmission of VO2 thin film can be reduced from 70 to 40 around room temperature, after doping. Significant absorption enhancement has been observed for both VO2 and W-doped VO2 films, deposited over tunable SiO2/Ta2O5 based distributed Bragg reflector (DBR) fabricated over flexible PET (poly-ethylene terephthalate) substrates. On depositing VO2 over similar to 70 reflecting DBR, optical transmission is reduced to similar to 15 from 35 while the temperature varies to 380 K from 300 K in IR regime. Number of stacks plays a crucial role for effective IR extinctions. A high quality DBR is fabricated by increasing no. of stacks from 4 to 7, with optical transmission of DBR reduced to nearly 5 in stop band. However, with 1.1 at of W-VO2 over such 95 reflecting flexible DBR, optical transmission vanishes nearly, around room temperature itself in the stop bands of that DBR, which clearly indicates the significant absorption enhancement. W-VO2/DBR hybrid can substantially modulate the solar heat flux and also imbuing DBR over flexible PET substrates offers retrofitting of the existing windows for energy economy. Thus these structures have promising potential applications for optical devices and practical design for smart windows.
机译:二氧化钒是节能智能窗户的潜在候选者,其结晶相变温度(T(c))为68°C。迄今为止,文献主要强调钨掺杂VO2的不同合成策略,钨掺杂VO2是将VO2的T(c)降低到接近室温的最有效掺杂剂。到目前为止,还没有报道显示柔性一维光子晶体作为光谱选择性、温度可调器件来控制 W-VO2 纳米晶体的光传输调制变化,特别是在智能窗应用的近红外区域。采用简单的热液途径合成了不同钨含量的W掺杂VO2。我们发现,在钨掺杂1.1%的钨在本征VO2中时,金属到绝缘体的转变温度从68°C降至37°C,掺杂后VO2薄膜的红外透射率可以在室温下从70%降低到40%。VO2 和 W 掺杂的 VO2 薄膜都观察到显着的吸收增强,这些薄膜沉积在可调谐的 SiO2/Ta2O5 基分布式布拉格反射器 (DBR) 上,该反射器在柔性 PET(聚对苯二甲酸乙二醇酯)基板上制造。在将VO2沉积到类似于70%反射DBR上时,光透射率从35%降低到15%,而温度从红外模式下的300 K变化到380 K。堆栈数量对于有效的 IR 消光起着至关重要的作用。通过增加 no.从 4 到 7 的堆栈,DBR 的光传输在阻带中降低到近 5%。然而,在95%的反射柔性DBR上,W-VO2的1.1 at%几乎消失,在室温附近,光传输在该DBR的阻带中消失,这清楚地表明了显着的吸收增强。W-VO2/DBR混合可以大大调节太阳热通量,并且还可以将DBR注入柔性PET基材上,从而对现有窗户进行改造,以实现能源经济。因此,这些结构在光学器件和智能窗户的实用设计中具有广阔的应用前景。

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