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Influence of defects in ZnO nanomaterials on the performance of dye-sensitized solar cell and photocatalytic activity

机译:ZnO纳米材料中的缺陷对染料敏化太阳能电池性能和光催化活性的影响

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摘要

ZnO as a wide band gap semiconductor is of significant interest for various applications, including dye-sensitized solar cell (DSSC) and photocatalytic degradation of organic pollutants. For DSSC, although the performance of ZnO-based devices is generally inferior to TiO_2-based ones, it is still of interest due to its high electron mobility. While the relationship between the material and the device performance are complicated, many studies have been focused on morphologies and surface area of the nanomaterials. The studies of the effect of the material properties such as the types and concentrations of native defects on the DSSC performance have been scarce. For photocatalytic degradation of pollutants, many reports showed ZnO has a higher or similar efficiency compared to the commonly used TiO_2. Reports have also pointed out the important role of native defects of ZnO in its photocatalytic activity. Nevertheless, the effect of the type and location of the defects has been contradictory in the literature indicating that there is a complex relationship. Therefore, we will discuss the effect of ZnO native defects on the dye adsorption, charge transport and hence the DSSC performance. We will also discuss their influence on reactive oxygen species (ROS) generation and photocatalytic dye degradation. As photoluminescence (PL) is a common methodology in studying native defects of ZnO, the relationship between PL, DSSC performance and photocatalytic properties will also be investigated. Preliminary results showed a higher overall PL intensity would result in a better device performance and higher photocatalytic activities.
机译:ZnO作为宽带隙半导体对各种应用都具有重大意义,包括染料敏化太阳能电池(DSSC)和有机污染物的光催化降解。对于DSSC,尽管基于ZnO的器件的性能通常不如基于TiO_2的器件,但由于其较高的电子迁移率,它仍然引起人们的关注。尽管材料和器件性能之间的关系很复杂,但是许多研究都集中在纳米材料的形貌和表面积上。对于诸如DSC性能的天然缺陷的类型和浓度等材料性能影响的研究很少。对于污染物的光催化降解,许多报道表明,与常用的TiO_2相比,ZnO具有更高或相似的效率。报道还指出了ZnO的天然缺陷在其光催化活性中的重要作用。然而,缺陷类型和位置的影响在文献中一直是矛盾的,表明存在复杂的关系。因此,我们将讨论ZnO天然缺陷对染料吸附,电荷传输以及DSSC性能的影响。我们还将讨论它们对活性氧(ROS)生成和光催化染料降解的影响。由于光致发光(PL)是研究ZnO固有缺陷的常用方法,因此还将研究PL,DSSC性能与光催化性能之间的关系。初步结果表明,较高的总PL强度将导致更好的设备性能和更高的光催化活性。

著录项

  • 来源
    《Oxide-based materials and devices IV》|2013年|86260X.1-86260X.8|共8页
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Dept. of Physics, Univ. of Hong Kong, Pokfulam Rd., Hong Kong;

    Dept. of Physics, Univ. of Hong Kong, Pokfulam Rd., Hong Kong,Dept. of Physics, South Univ. of Science and Technology of China, Shenzhen, Guangdong, China;

    Dept. of Physics, Univ. of Hong Kong, Pokfulam Rd., Hong Kong;

    Dept. of Physics, Univ. of Hong Kong, Pokfulam Rd., Hong Kong;

    Dept. of Physics, Univ. of Hong Kong, Pokfulam Rd., Hong Kong;

    Dept. of Physics, Univ. of Hong Kong, Pokfulam Rd., Hong Kong;

    Dept. of Physics, Univ. of Hong Kong, Pokfulam Rd., Hong Kong;

    Dept. of Physics, Univ. of Hong Kong, Pokfulam Rd., Hong Kong;

    Dept. of Physics, Univ. of Hong Kong, Pokfulam Rd., Hong Kong;

    Dept. of Chemistry, Univ. of Hong Kong, Pokfulam Rd, Hong Kong;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    ZnO; defects; DSSC; photocatalysis;

    机译:氧化锌;缺陷DSSC;光催化;

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