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Electrodeposition-based electrochromic devices with reversible three-state optical transformation by using titanium dioxide nanoparticle modified FTO electrode

机译:二氧化钛纳米粒子修饰的FTO电极具有可逆三态光学转换的基于电沉积的电致变色器件

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摘要

Reversible electrodeposition-based electrochromic devices are highly promising for extensive applications owing to their facile and low-cost fabrication. Herein, a novel electrodeposition-based electrochromic device with reversible three-state optical transformation, i.e. transparent, mirror, and black, was fabricated by introducing a fluorine-doped tin oxide (FTO) electrode modified with commonly available and inexpensive titanium dioxide (TiO2) nanoparticles. Typically, the fabricating strategy mainly involved three procedures, namely obtaining a stable dispersion of TiO2 nanoparticles by milling, achieving a surface modification of the FTO electrode with TiO2 nanoparticles by spin-coating and sintering, and assembling the device by sandwiching gel electrolyte between the modified FTO electrode and a flat FTO electrode. By applying different voltages for a short while, this transparent smart device can be immediately switched to black (+2.5 V/20 s) or mirror (-2.5 V/20 s) state by depositing Ag on the surface of the modified or unmodified FTO electrode respectively. There is below 1% transmittance in the black state and over 80% reflectance in the mirror state for the device. By changing the surface structure of the TiO2 modified FTO electrode, the optical properties of the device in different states can be controlled effectively. Moreover, the optical transformation exhibited good stability over 1500 cycles of testing.
机译:基于可逆电沉积的电致变色器件由于其制造简便且成本低廉而在广泛的应用中具有广阔的前景。本文中,通过引入用常用和廉价的二氧化钛(TiO2)改性的氟掺杂氧化锡(FTO)电极,制造了具有可逆三态光学转换(即透明,镜面和黑色)的新型电沉积基电致变色器件。纳米粒子。通常,制造策略主要涉及三个步骤,即通过研磨获得TiO2纳米颗粒的稳定分散体,通过旋涂和烧结实现TiO2纳米颗粒对FTO电极的表面改性,以及通过将凝胶电解质夹在改性的电极之间来组装器件。 FTO电极和扁平FTO电极。通过短时间施加不同的电压,可以通过将Ag沉积在改性或未改性FTO的表面上,将该透明智能设备立即切换为黑色(+2.5 V / 20 s)或镜面(-2.5 V / 20 s)状态。电极。该器件在黑色状态下的透射率低于1%,在镜面状态下的反射率超过80%。通过改变TiO2改性FTO电极的表面结构,可以有效地控制处于不同状态的器件的光学性能。此外,光学转换在1500个测试循环中显示出良好的稳定性。

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