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Nb-Dopant-lnduced Tuning of Optical and Electrical Property of Anatase TiO2 Nanocrystals

机译:NB掺杂型的氧化酶TiO2纳米晶体的光学和电性能调整

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For increasing demand of electrochromic smart window, flat panel display synthesis of high quality aliovalent doped wide bandgap semiconductor nanocrystals are gaining interest. In our manuscript we synthesized pure and Nb~(5+) doped anatase TiO2 nanocrystals by colloidal process. On increasing doping percentage size of TiO2 nanoparticle was found to be decreased. Although pure TiO2 nanocrystals are terminated with thermodynamically stable {101} facets but Nb~(5+) doped TiO2 was found to be terminated with high energy {103} facet by lowering the surface energy. Successful doping in anatase TiO2 has been characterized by Raman spectroscopy, X-ray photoelectron spectroscopy (XPS) and electron paramagnetic resonance spectroscopy (EPR) analysis. Aliovalent dopant Nb~(5+) generated free carriers in conduction band of TiO2. These free electrons results distinct plasmon absorption peak which appeared at wavelength of 1900 nm to 2700 nm. Plasmon peak found to be blue shifted with increase of dopant amount. Broad emission bands correspond to distinct transitions related to intermediate energy levels induced by oxygen vacancy. High colloidaly stable nanocrystals was deposited as crack free transparent conducting oxide thin film where we obtained very low sheet resistance with high optical transparency that leads to good figure of merit of thin film. Temperature driven metal-insulator transition for the lowest resistance film is explained by electron localization origination from random substitution of Nb into TiO2 nanocrystals.
机译:为了增加对电致变色智能窗口的需求,平面面板显示的合成高质量的掺杂宽带宽带半导体纳米晶体的综合引起了人们的兴趣。在我们的手稿中,我们通过胶体过程合成了纯和Nb〜(5+)(5+)掺杂剖腹酶TiO2纳米晶体。发现TiO2纳米颗粒的掺杂百分比大小的浓度降低。尽管纯TIO2纳米晶体以热力学稳定{101}的范围终止,但发现NB〜(5+)掺杂的TiO2被降低表面能终止于高能量{103}方面终止。通过拉曼光谱,X射线光电子光谱(XPS)和电子顺磁共振光谱(EPR)分析来表征养生酶TiO2中成功的掺杂。 Aliovalent掺杂剂NB〜(5+)在TIO2的传导带中产生了游离载体。这些游离电子会产生不同的等离子体吸收峰,该峰出现在1900 nm至2700 nm的波长下。血浆峰发现随着掺杂剂量的增加而被蓝色移动。广泛的发射带对应于与氧空位诱导的中间能级有关的不同转变。将高胶体稳定的纳米晶体沉积为无裂纹透明导电氧化薄膜的裂纹透明膜,在该薄膜中,我们获得了非常低的薄板电阻,具有高光学透明度,从而导致了薄膜优点的良好数字。最低电阻膜的温度驱动的金属胰蛋白过渡是通过从随机替换为TIO2纳米晶体的电子定位来解释的。

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