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Interfacial engineering of CuO nanorod/ZnO nanowire hybrid nanostructure photoanode in dye-sensitized solar cell
Authors:Bayram?Kilic  author-information"  >  author-information__contact u-icon-before"  >  mailto:bkilic@yalova.edu.tr"   title="  bkilic@yalova.edu.tr"   itemprop="  email"   data-track="  click"   data-track-action="  Email author"   data-track-label="  "  >Email author,Sunay?Turkdogan,Aykut?Astam,Sümeyra?Seniha?Baran,Mansur?Asgin,Emre?Gur,Yusuf?Kocak
Affiliation:1.Department of Energy Systems Engineering, Faculty of Engineering,Yalova University,Yalova,Turkey;2.Department of Physics, Faculty of Arts and Science,Erzincan University,Erzincan,Turkey;3.Department of Physics, Faculty of Science,Atatürk University,Erzurum,Turkey
Abstract:Developing efficient and cost-effective photoanode plays a vital role determining the photocurrent and photovoltage in dye-sensitized solar cells (DSSCs). Here, we demonstrate DSSCs that achieve relatively high power conversion efficiencies (PCEs) by using one-dimensional (1D) zinc oxide (ZnO) nanowires and copper (II) oxide (CuO) nanorods hybrid nanostructures. CuO nanorod-based thin films were prepared by hydrothermal method and used as a blocking layer on top of the ZnO nanowires’ layer. The use of 1D ZnO nanowire/CuO nanorod hybrid nanostructures led to an exceptionally high photovoltaic performance of DSSCs with a remarkably high open-circuit voltage (0.764 V), short current density (14.76 mA/cm2 under AM1.5G conditions), and relatively high solar to power conversion efficiency (6.18%) . The enhancement of the solar to power conversion efficiency can be explained in terms of the lag effect of the interfacial recombination dynamics of CuO nanorod-blocking layer on ZnO nanowires. This work shows more economically feasible method to bring down the cost of the nano-hybrid cells and promises for the growth of other important materials to further enhance the solar to power conversion efficiency.
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