4.7 Article

Dissymmetric interface design of SnO2/TiO2 side-by-side bi-component nanofibers as photoanodes for dye sensitized solar cells: Facilitated electron transport and enhanced carrier separation

期刊

JOURNAL OF COLLOID AND INTERFACE SCIENCE
卷 583, 期 -, 页码 24-32

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2020.09.017

关键词

Heterojunction interface; Side-by-side bi-component nanofibers (SBNFs); Tin dioxide; Titanium dioxide; Dye-sensitized solar cells; Needleless electrospinning technique

资金

  1. National Natural Science Foundation of China [11674140, 21701072, 21975123]
  2. Fundamental Research Funds for the Central Universities of China [lzujbky-2020-63]

向作者/读者索取更多资源

Novel dissymmetric SnO2/TiO2 side-by-side bi-component nanofibers (SBNFs) were successfully prepared by a V-channel electrospinning technique, showing improved power conversion efficiency (PCE) in DSSCs. Enhanced electron transport via SnO2 nanofibers and carrier separation at the dissymmetric SnO2/TiO2 heterojunction interface are key factors contributing to the increased PCE.
SnO2/TiO2 type II heterojunctions are often introduced to enhance the separation efficiency of photogenerated carriers in photoelectrochemical electrodes, while most of these heterojunctions are of core-shell structure, which often limits the synergistic effect from the two components. In this work, dissymmetric SnO2/TiO2 side-by-side bi-component nanofibers (SBNFs) with tunable composition ratios have been pre pared by a novel needleless electrospinning technique with two V-shape connected conductive channels (V-channel electrospinning). Results show that this V-channel electrospinning technique is more stable, controllable and tunable for the large-scale preparation of SBNF materials compared to the traditional electrospinning using two side-by-side metal needles. And these SnO2/TiO2 SBNFs are dissymmetric and comprised of a tiny SnO2 NF (tunable diameter within 20-80 nm) and a Sn-doped TiO2 NF (diameter of similar to 250 nm) with a side-by-side structure. Moreover, the dye-sensitized solar cells (DSSCs) based these dissymmetric SnO2/TiO2 SBNFs show the maximum power conversion efficiency (PCE) of 8.3%, which is 2.59 times that of the ones based on the TiO2 NFs. Series of analyses indicate that the enhancements in PCE could mainly be due to the improved electron transport via SnO2 NFs and the enhanced carrier separation via dissymmetric SnO2/TiO2 heterojunction interface. This research will give some new insight in the preparation of SBNFs for high-performance photoelectrochemical devices. (C) 2020 Elsevier Inc. All rights reserved.

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