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Band Alignment and Controllable Electron Migration between Rutile and Anatase TiO2

机译:金红石与锐钛矿型TiO2之间的能带排列和可控电子迁移

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摘要

TiO2 is the most promising semiconductor for photocatalytic splitting of water for hydrogen and degradation of pollutants. The highly photocatalytic active form is its mixed phase of two polymorphs anatase and rutile rather than their pristine compositions. Such a synergetic effect is understood by the staggered band alignment favorable to spatial charge separation. However, electron migration in either direction between the two phases has been reported, the reason of which is still unknown. We determined the band alignment by a novel method, i.e., transient infrared absorption-excitation energy scanning spectra, showing their conduction bands being aligned, thus the electron migration direction is controlled by dynamical factors, such as varying the particle size of anatase, putting electron or hole scavengers on either the surface of anatase or rutile phases, or both. A quantitative criterion capable of predicting the migration direction under various conditions including particle size and surface chemical reactions is proposed, the predictions have been verified experimentally in several typical cases. This would give rise to a great potential in designing more effective titania photocatalysts.
机译:TiO2是用于水的光催化分解氢和污染物降解的最有前途的半导体。高光催化活性形式是两种多晶型锐钛矿和金红石的混合相,而不是它们的原始组成。通过有利于空间电荷分离的交错带取向可以理解这种协同作用。然而,已经报道了在两相之间的任一方向上的电子迁移,其原因仍然未知。我们通过一种新颖的方法(即瞬态红外吸收-激发能扫描谱)确定了能带排列,表明它们的导带是对齐的,因此电子迁移方向受动力学因素控制,例如改变锐钛矿的粒径,放置电子。或锐钛矿相或金红石相或两者的表面上的空穴清除剂。提出了一种能够预测在各种条件下(包括粒径和表面化学反应)迁移方向的定量标准,该预测已在几种典型情况下进行了实验验证。这将在设计更有效的二氧化钛光催化剂方面具有巨大的潜力。

著录项

  • 期刊名称 Scientific Reports
  • 作者

    Yang Mi; Yuxiang Weng;

  • 作者单位
  • 年(卷),期 -1(5),-1
  • 年度 -1
  • 页码 11482
  • 总页数 10
  • 原文格式 PDF
  • 正文语种
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