首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Influence of an exciton-delocalizing ligand on the structural, electronic, and spectral features of the Cd33S33 quantum dot: insights from computational studies
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Influence of an exciton-delocalizing ligand on the structural, electronic, and spectral features of the Cd33S33 quantum dot: insights from computational studies

机译:激子临床化配体对CD33S33量子DOT的结构,电子和光谱特征的影响:计算研究的见解

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Quantum dot based solar cells have attracted considerable attention owing to the unique geometrical, electronic, and optical properties of quantum dots. Exciton-delocalizing ligands, such as phenyldithiocarbamate, are demonstrated to benefit charge extraction in quantum dot-based solar cells. However, sufficient details of the exciton delocalization mechanism are still lacking. This work reports theoretical investigations concerning the role of the exciton-delocalizing linker for the ground- and excited-state properties of the Cd33S33 quantum dot. We perform density functional theory and time-dependent density functional theory investigations of the Cd33S33 quantum dot functionalized with two hole acceptors: PTC-PTZ, a phenothiazine ligand with the exciton-delocalizing phenyldithiocarbamate linker, and BA-PTZ, phenyldithiocarbamate with the benzoate linker which is not an exciton-delocalizing ligand. Our calculation results find that PTC-PTZ has two binding modes: bidentate binding and flat binding modes, with the latter being more favorable. The phenyldithiocarbamate linker tends to delocalize the charge densities compared to benzoate. For all complexes, solvent increases electronic band gaps and makes quantum dot-to-quantum dot transitions dominate for the high-energy absorption band. Electron density differences between the excited state and the ground state suggest that the exciton-delocalizing PTC-PTZ molecule, especially the flat binding mode, would induce more significant charge transfer in the direction from the quantum dot to the dye.
机译:由于Quantum点的独特的几何,电子和光学性质,量子点基太阳能电池引起了相当大的关注。 Exciton-临床化配体,例如苯基二硫代氨基甲酸盐,用于在量子点的太阳能电池中益处萃取。然而,仍然缺乏激励子临床化机制的充分细节。这项工作报告了有关激发器 - 临床化接头的作用的理论研究,用于CD33S33量子点的地下和激发状态性质。我们对用两个孔受体的CD33S33量子点进行CD33S33量子点的密度函数理论研究不是一个激子临床的配体。我们的计算结果发现,PTC-PTZ具有两种绑定模式:双齿装订和平坦的绑定模式,后者更有利。与苯甲酸酯相比,苯基二硫代氨基甲酸酯接头倾向于将电荷密度删除。对于所有复合物,溶剂增加了电子带间隙并使量子点到量子点转变为高能吸收带占主导地位。激发状态和地区之间的电子密度差表明,激子临床PTC-PTZ分子,尤其是平坦结合模式,将在从量子点到染料的方向诱导更显着的电荷转移。

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