Optical absorption by titanium dioxide nanocrystals

S. I. Pokytnii, A. D. Terets
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Abstract

Using a variational method within the framework of the effective mass approximation, using a triangular coordinate system of an electron, hole, and exciton moving in a titanium dioxide quantum dot, the exciton energy spectrum was obtained as a function of the radius a of the quantum dot. The variational wave function of the exciton contained factors that took into account the motion of an electron and a hole in a potential well of infinite depth of a quantum dot, as well as the form of a hydrogen-like wave function. It is shown that the occurrence of an exciton in a quantum dot has a threshold character. An exciton, as a bound state of an electron and a hole, is formed starting from a certain critical radius ac, the value of which exceeds the Bohr radius of the exciton in titanium dioxide. The exciton energy levels are located in the band gap of the titanium dioxide quantum dot. In this case, with an increase in the radius a of the quantum dot (so that a≥ac), a band of exciton states appears in the band gap of the titanium dioxide quantum dot. The mechanism for the formation of optical absorption spectra in nanosystems containing titanium dioxide nanocrystals are presented. It is found that the optical absorption of anatase NC, which was observed under the experimental conditions, was due to the appearance of an exciton in the NC. Using the variational calculation of the energy spectrum of an exciton in NC, the position of the absorption peak of NC anatase was determined. This absorption peak differs slightly from the absorption peak, which was obtained in the experimental work.
二氧化钛纳米晶体的光学吸收
利用有效质量近似框架内的变分方法,利用电子、空穴和激子在二氧化钛量子点中运动的三角坐标系,得到了激子能谱作为量子点半径a的函数。激子的变分波函数包含了考虑电子和量子点无限深度势阱中空穴运动的因素,以及类氢波函数的形式。结果表明,量子点中激子的出现具有阈值特征。激子作为电子和空穴的束缚态,从一定的临界半径ac开始形成,其值超过了二氧化钛中激子的玻尔半径。激子能级位于二氧化钛量子点的带隙中。在这种情况下,随着量子点半径a的增大(使a≥ac),在二氧化钛量子点的带隙中出现激子态带。介绍了二氧化钛纳米晶体在纳米体系中形成光吸收光谱的机理。在实验条件下观察到锐钛矿NC的光吸收是由于NC中出现了激子。通过对NC中激子能谱的变分计算,确定了NC锐钛矿的吸收峰位置。该吸收峰与实验所得的吸收峰略有不同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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