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Shape and Morphology Effects on the Electronic Structure of TiO2 Nanostructures: From Nanocrystals to Nanorods

机译:TiO2纳米结构电子结构的形状和形态学:从纳米晶体到纳米棒

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摘要

We carry out an accurate computational analysis on the nature and distribution of electronic trap states in shape-tailored anatase TiO2 structures, investigating the effect of the morphology on the electronic structure. Linear nanocrystal models up to 6 nm in length with various morphologies, reproducing both flattened and elongated rod-shaped TiO2 nanocrystals, have been investigated by DFT calculations, to clarify the effect of the crystal facet percentage on the nanocrystal electronic structure, with particular reference to the energetics and distribution of trap states. The calculated densities of states below the conduction band edge have been very well fitted assuming an exponential distribution of energies and have been correlated with experimental capacitance data. In good agreement with the experimental phenomenology our calculations show that elongated rod-shaped nanocrystals with higher values of the ratio between (100) and (101) facets exhibit a relatively deeper distribution of trap states. Our results point at the crucial role of the nanocrystal morphology on the trap state density, highlighting the importance of a balance between the low-energy (101) and high-energy (100)/(001) surface facets in individual TiO2 nanocrystals.
机译:我们对形状量身定制的锐钛矿TiO2结构中电子捕集态的性质和分布进行了准确的计算分析,研究了形态对电子结构的影响。线性纳米晶模型长达6nm的长度,具有各种形态,通过DFT计算研究了扁平的和细长的杆状TiO2纳米晶体,以阐明晶体面百分比对纳米晶体电子结构的影响,特别是参考陷阱状态的能量和分布。假设能量的指数分布并且已经与实验电容数据相关并与实验电容数据相关并与实验电容数据相关并具有非常合适的状态的计算密度。与实验现象学同情,我们的计算表明,细长的杆状纳米晶体具有较高值(100)和(101)个小平面之间的比例的值表现出相对更深的陷阱状态分布。我们的结果点在纳米晶体形态对陷阱状态密度的关键作用,突出了单个TiO2纳米晶体中的低能量(101)和高能(100)/(001)表面刻面之间的平衡的重要性。

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