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Characteristics of gradient-interface-structured ZnCdSSe quantum dots with modified interface and its application to quantum-dot-sensitized solar cells

机译:修饰界面的梯度界面结构ZnCdSSe量子点的特性及其在量子点敏化太阳能电池中的应用

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摘要

Colloidal quantum dots (QDs) are attractive materials for application in photovoltaics, LEDs, displays, and bio devices owing to their unique properties. In this study, we synthesized gradient-interface-structured ZnCdSSe QDs and modified the interface based on a thermodynamic simulation to investigate its optical and physical properties. In addition, the interface was modified by increasing the molar concentration of Se. QDs at the modified interface were applied to QD-sensitized solar cells, which showed a 25.5% increase in photoelectric conversion efficiency owing to the reduced electron confinement effect. The increase seems to be caused by the excited electrons being relatively easily transferred to the level of TiO2 owing to the reduced electron confinement effect. Consequently, the electron confinement effect was observed to be reduced by increasing the ZnSe (or Zn1-x,Cd-x Se)-rich phase at the interface. This means that, based on the thermodynamic simulation, the interface between the core QDs and the surface of the QDs can be controlled. The improvement of optical and electronic properties by controlling interfaces and surfaces during the synthesis of QDs, as reported in this work, can be useful for many applications beyond solar cells. (C) 2017 Elsevier B.V. All rights reserved.
机译:胶体量子点(QD)由于其独特的性能而成为可用于光伏,LED,显示器和生物设备的有吸引力的材料。在这项研究中,我们合成了梯度界面结构的ZnCdSSe量子点,并基于热力学模拟对界面进行了修改,以研究其光学和物理性质。另外,通过增加Se的摩尔浓度来修饰界面。将修改后的界面上的QD应用于QD敏化的太阳能电池,由于降低的电子约束效应,其光电转换效率提高了25.5%。这种增加似乎是由于降低的电子约束效应,使激发的电子相对容易地转移到TiO2的水平所致。因此,观察到通过增加界面处的富ZnSe(或Zn1-x,Cd-x Se)相而降低了电子约束效应。这意味着,基于热力学模拟,可以控制核心量子点和量子点表面之间的界面。如本文所述,通过在QD合成过程中控制界面和表面来改善光学和电子性能,对于太阳能电池以外的许多应用都是有用的。 (C)2017 Elsevier B.V.保留所有权利。

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