Enhanced omnidirectional light harvesting in dye-sensitized solar cells with periodic ZnO nanoflower photoelectrodes.

J Colloid Interface Sci

Department of Electronic Engineering, Chang Gung University, 259 Wen-Hwa 1st Road, Kwei-Shan, Taoyuan 333, Taiwan; Department of Urology, Chang Gung Memorial Hospital, Linkou, No.5, Fuxing Street, Kwei-Shan, Taoyuan 333, Taiwan. Electronic address:

Published: March 2020

AI Article Synopsis

  • ZnO nanoflower photoelectrodes were created through a chemical solution method and analyzed for their impact on dye-sensitised solar cells concerning light-harvesting capabilities.
  • The length of the ZnO nanoflowers significantly influenced dye adsorption and light scattering, as evidenced by microscopy and UV-Vis-NIR tests.
  • The study showed that varying nanoflower lengths improved the multi-directional light capture efficiency, with a reduction in efficiency difference from 46% to 12% at high angles, highlighting better performance in light scattering scenarios.

Article Abstract

In this study, two-dimensional ZnO nanoflower photoelectrodes were prepared using a chemical solution method and applied to dye-sensitised solar cells. By growing ZnO nanoflowers with different lengths on the photoelectrodes, the effects of the ZnO nanoflowers on the omnidirectional light-harvesting and broadband of dye-sensitised solar cells were investigated. According to the field emission scanning electron microscope and UV-Vis-NIR measurements of the prepared ZnO nanoflowers at different lengths, it can be determined that the amount of dye adsorption and degree of light scattering are affected by the lengths of the nanoflowers. A finite difference time-domain simulation was used to verify whether the degree of light scattering was affected by the lengths of the ZnO nanoflowers. In addition, the prepared ZnO nanoflower photoelectrodes of different lengths were applied to dye-sensitised solar cells. The photoelectric element efficiency, carrier life cycle, and element characteristics under wide-angle measurements were investigated through electrochemical impedance spectroscopy, the monochromic incident photon-to-electronic conversion efficiency, and a solar simulator. At high angles, the difference in efficiency of multi-directional incident light was reduced from 46% to 12%, which effectively improved the capturing characteristics of the multi-directional incident light during light scattering.

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Source
http://dx.doi.org/10.1016/j.jcis.2019.12.003DOI Listing

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