Omnidirectional light harvesting enhancement of dye-sensitized solar cells decorated with two-dimensional ZnO nanoflowers

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作者
Lai, Fang-I. [1 ]
Yang, Jui-Fu [1 ,2 ]
Hsu, Yu-Chao [3 ,4 ]
Kuo, Shou-Yi [2 ,3 ]
机构
[1] Electrical Engineering Program C, Yuan-Ze University, 135 Yuan-Tung Road, Chung-Li,32003, Taiwan
[2] Department of Electronic Engineering, Chang Gung University, 259 Wen-Hwa 1st Road, Kwei-Shan, Taoyuan,333, Taiwan
[3] Department of Urology, Chang Gung Memorial Hospital, Linkou, No.5, Fuxing Street, Kwei-Shan, Taoyuan,333, Taiwan
[4] School of Medicine, Chang Gung University, 259 Wen-Hwa 1st Road, Kwei-Shan, Taoyuan,333, Taiwan
来源
Journal of Alloys and Compounds | 2022年 / 815卷
关键词
Finite difference time domain method - Spectrometers - Nanorods - Conversion efficiency - Electrochemical impedance spectroscopy - II-VI semiconductors - Field emission microscopes - Nanoflowers - Zinc oxide - Incident light - Scanning electron microscopy - X ray powder diffraction - Infrared devices - Light scattering;
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摘要
In this study, the chemical solution method was used to separately fabricate one-dimensional (1D) zinc oxide (ZnO) nanorods (NRs) and two-dimensional (2D) ZnO nanoflowers (NFs) on photoelectrodes for use in dye-sensitized solar cells (DSSCs). ZnO nanostructures (NSs) with different dimensions were grown on the photoelectrodes, and the effects of the NSs on the omnidirectional light-harvesting characteristics of the DSSCs and their bandgap were evaluated. The crystal structures and morphologies of the ZnO NSs were analysed using X-ray diffraction analysis and field-emission scanning electron microscopy, while their dye-adsorption characteristics were determined using an ultraviolet–visible–near infrared spectrometer. In addition, the finite-difference time-domain method was used to simulate the effects of the dimensions of the NSs on their light-scattering properties. The photoelectrodes with the ZnO NSs with different dimensions were then used to construct DSSCs, which were tested using electrochemical impedance spectroscopy as well as with a monochromatic incident photon-to-electron conversion efficiency measurement system and a solar simulator. Furthermore, with an increase in the incidence angle, the light-conversion efficiency of the 1D ZnO NRs reduced by 63.6% while that of the 2D ZnO NFs reduced only by 12%. Thus, DSSCs based on the 2D ZnO NFs are capable of capturing multidirectional incident light and hence ideal for use under scattered-light conditions. © 2019 Elsevier B.V.
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