Solution-derived ZnO nanoflowers based photoelectrodes for dye-sensitized solar cells

被引:14
|
作者
Saleem, Muhammad [1 ,2 ]
Ahmad, M. Ashfaq [1 ]
Fang, L. [2 ]
Raza, Rizwan [1 ]
Akhtar, Majid Niaz [3 ]
Rehman, Saif Ur [1 ]
机构
[1] COMSATS Inst Informat Technol, Dept Phys, Lahore 54000, Pakistan
[2] Chongqing Univ, Dept Appl Phys, Chongqing 400044, Peoples R China
[3] MNSUET, Dept Basic Sci & Humanities, Multan 60000, Pakistan
基金
中国国家自然科学基金;
关键词
Flower-like-Nanostructures; Dye-sensitized solar cells; Light harvesting; ZINC-OXIDE NANOSTRUCTURES; CONVERSION EFFICIENCY; TEMPERATURE SYNTHESIS; OPTICAL-PROPERTIES; THIN-FILMS; NANOBELTS; NANOWIRES; SUBSTRATE; GROWTH; ELECTRODES;
D O I
10.1016/j.materresbull.2017.03.028
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Flower-like ZnO nanostructures, composed of hexagonal nanorods were manipulated, via a low temperature hydrothermal method from an aqueous solution using polyethyleneimine (PEI) as a surfactant in the seed sole. It was found that the PEI in the seed sole not only affected the geometrical shape of ZnO flowers but also changed the length and spacing of the petals. These flower-like nanostructures were used as photoelectrodes in dye-sensitized solar cells. Compared to rod-like flowers (sample X1), the blade-like flowers (sample X2) nanostructures demonstrate increased power conversion efficiency (eta) of about 106%. Meanwhile, short-circuits current density (J(sc)), open-circuit voltage (V-oc), and fill factor (FF) are all substantially improved. The enhancement of eta, V-oc and FF in the blade-like-flower photoelectrodes were mainly ascribed to the enlargement of internal surface area between the blades for higher dye loading and the improved light harvesting from efficient light scattering. The band gap energies were 3.31 eV and 3.27 eV for rod-like flowers and blade -like flowers respectively. The decrease in the optical band gap with the increase of film roughness was due to decrease of lattice defects. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:211 / 217
页数:7
相关论文
共 50 条
  • [1] Solution-derived ZnO nanostructures for photoanodes of dye-sensitized solar cells
    Xu, Feng
    Sun, Litao
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2011, 4 (03) : 818 - 841
  • [2] Solution-derived 40 μm vertically aligned ZnO nanowire arrays as photoelectrodes in dye-sensitized solar cells
    Qiu, Jijun
    Li, Xiaomin
    Zhuge, Fuwei
    Gan, Xiaoyan
    Gao, Xiangdong
    He, Weizhen
    Park, Se-Jeong
    Kim, Hyung-Kook
    Hwang, Yoon-Hwae
    [J]. NANOTECHNOLOGY, 2010, 21 (19)
  • [3] Solution-derived ZnO nanowire array film as photoelectrode in dye-sensitized solar cells
    Gao, Yanfeng
    Nagai, Masayuki
    Chang, Tien-Chih
    Shyue, Jing-Jong
    [J]. CRYSTAL GROWTH & DESIGN, 2007, 7 (12) : 2467 - 2471
  • [4] Dye-sensitized solar cells based on Al-doped ZnO photoelectrodes sensitized with rhodamine
    Tyona, M. D.
    Jambure, S. B.
    Lokhande, C. D.
    Banpurkar, A. G.
    Osuji, R. U.
    Ezema, F. I.
    [J]. MATERIALS LETTERS, 2018, 220 : 281 - 284
  • [5] Fabrication and photoanode performance of ZnO nanoflowers in ZnO-based dye-sensitized solar cells
    Bicer, Mustafa
    Gokcen, Muharrem
    Orhan, Ersin
    [J]. OPTICAL MATERIALS, 2022, 131
  • [6] Nanostructured photoelectrodes for dye-sensitized solar cells
    Zhang, Qifeng
    Cao, Guozhong
    [J]. NANO TODAY, 2011, 6 (01) : 91 - 109
  • [7] Solar cells, solar fuels, and solar batteries based on dye-sensitized photoelectrodes
    Wu, Yiying
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 249
  • [8] Lawsone Sensitized ZnO Photoelectrodes for Dye Sensitized Solar Cells
    Khadtare, Shubhangi S.
    Jadkar, Sandesh R.
    Salunke-Gawali, Sunita
    Pathan, Habib M.
    [J]. JOURNAL OF NANO RESEARCH, 2013, 24 : 140 - 145
  • [9] Hierarchically structured photoelectrodes for dye-sensitized solar cells
    Zhang, Qifeng
    Cao, Guozhong
    [J]. JOURNAL OF MATERIALS CHEMISTRY, 2011, 21 (19) : 6769 - 6774
  • [10] Dye-Sensitized Solar Cells Based on ZnO Films
    曾隆月
    戴松元
    徐炜炜
    王孔嘉
    [J]. Plasma Science and Technology, 2006, (02) : 172 - 175