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Optical properties and dynamic process in metal ions doped on CdSe quantum dots sensitized solar cells

Optical properties and dynamic process in metal ions doped on CdSe quantum dots sensitized solar cells

作     者:Ha Thanh Tung Dang Huu Phuc 

作者机构:Institute of Research and Development Duy Tan University Theoretical Physics Research Group Advanced Institute of Materials Science Ton Duc Thang University Faculty of Applied Sciences Ton Duc Thang University 

出 版 物:《Chinese Optics Letters》 (中国光学快报(英文版))

年 卷 期:2018年第16卷第7期

页      面:71-77页

核心收录:

学科分类:0808[工学-电气工程] 0809[工学-电子科学与技术(可授工学、理学学位)] 08[工学] 0805[工学-材料科学与工程(可授工学、理学学位)] 080502[工学-材料学] 0702[理学-物理学] 

主  题:CdS Cu Mn FTO Optical properties and dynamic process in metal ions doped on CdSe quantum dots sensitized solar cells 

摘      要:In recent years, the nanostructure for solar cells have attracted considerable attention from scientists as a result of a promising candidate for low cost devices. In this work, quantum dots sensitized solar cells with effective performance based on a co-sensitized Cd S∕Cd Se:Mn2+(or Cu2+) nanocrystal, which was made by successive ionic layer absorption and reaction, are discussed. The optical, physical, chemical, and photovoltaic properties of quantum dots sensitized solar cells were sensitized to Mn2+and Cu2+dopants. Therefore, the short current(JSC)of the quantum dot sensitized solar cells is boosted dramatically from 12.351 mA∕cm2 for pure Cd Se nanoparticles to 18.990 mA∕cm2 for Mn2+ions and 19.915 mA∕cm2 for Cu2+ions. Actually, metal dopant extended the band gap of pure Cd Se nanoparticles, reduced recombination, enhanced the efficiency of devices, and improved the charge transfer and collection. In addition, Mn2+and Cu2+dopants rose to the level of the conduction band of pure Cd Se nanoparticles, which leads to the reduction of the charge recombination, enhances the lightharvesting efficiency, and improves the charge diffusion and collection. The results also were confirmed by the obtained experimental data of photoluminescence decay and electrochemical impedance spectroscopy.

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