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实时 TD-DFT 模拟研究邻苯二酚在 TiO2 纳米粒子上的电子结构和光学光谱。

Electronic structure and optical spectra of catechol on TiO2 nanoparticles from real time TD-DFT simulations.

机构信息

Department of Physical Chemistry, University of Seville, Spain.

出版信息

Phys Chem Chem Phys. 2011 Jan 28;13(4):1506-14. doi: 10.1039/c0cp00906g. Epub 2010 Nov 25.

Abstract

The electronic structure and the optical response of free catechol, Ti(cat)(3) complex, and catechol bound to TiO(2) nanoclusters have been analysed using time dependent density functional theory (TD-DFT) performing calculations both in real time and frequency domains. Both approaches lead to similar results providing the basis sets and functionals are similar. For all cases, the simulated spectra agree well with the experimental ones. For the adsorption systems, the spectra show a band at 4.7 eV associated to intramolecular catechol π→π* transitions, and low energy bands corresponding to transitions from catechol to the cluster with a tail that is red-shifted when the coupling between the dye and the cluster is more effective. Thus, dissociative adsorption modes provide longer tails than the molecular mode. Although the bidentate complex is more stable than the monodentate, the energy difference between both is smaller when the cluster size increases. Small cluster models reproduce the main features of the optical response, however, the (TiO(2))(15) cluster constitutes the minimal size to provide a complete picture. In this case, the conventional TD-DFT (frequency domain) calculations are highly demanding computationally, while real time TD-DFT is more efficient and the calculations become affordable.

摘要

已使用含时密度泛函理论(TD-DFT)对游离儿茶酚、[Ti(cat)(3)](2-)配合物和与 TiO2 纳米团簇结合的儿茶酚的电子结构和光学响应进行了分析,分别在实时和频域中进行了计算。两种方法都得到了相似的结果,前提是基组和泛函相似。对于所有情况,模拟光谱都与实验光谱吻合良好。对于吸附体系,光谱显示在 4.7 eV 处出现一个带,对应于分子内儿茶酚π→π*跃迁,以及与从儿茶酚到团簇的跃迁相对应的低能带,当染料与团簇之间的耦合更有效时,尾部发生红移。因此,离解吸附模式提供的尾部比分子模式更长。尽管双齿配合物比单齿配合物更稳定,但当团簇尺寸增加时,两者之间的能量差异较小。小团簇模型再现了光学响应的主要特征,然而,(TiO2)(15)团簇是提供完整图像的最小尺寸。在这种情况下,传统的 TD-DFT(频域)计算在计算上要求很高,而实时 TD-DFT 则更有效,计算成本也更低。

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