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Wavefunction engineering in quantum confined semiconductor nanoheterostructures for efficient charge separation and solar energy conversion

机译:量子约束半导体纳米异质结构中的波函数工程,可实现有效的电荷分离和太阳能转换

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摘要

Colloidal quantum-confined semiconductor nanoheterostructures (SNHs) that are composed of multiple component materials in rationally designed spatial arrangements are promising light harvesting and charge separation materials for solar energy conversion. SNHs can be engineered to exhibit type I, quasi-type II and type II carrier localization, affecting their photophysical properties and photochemical performances. Unlike bulk semiconductor heterostructures, the electron and hole energy levels and spatial distributions in SNHs can be continuously tuned by adjusting the material dimension through the quantum confinement effect, providing additional control of their properties through wavefunction engineering. In this article, we review recent progress in using wavefunction engineering to control the absorption and emission spectra, single and multiple exciton dynamics and charge transfer properties of SNHs (core/shell QDs and dot-in-rod nanorods) as well as to improve their performance as light harvesting and charge separation materials for solar energy conversion.
机译:由多组分材料按合理设计的空间排列组成的胶体量子受限半导体纳米异质结构(SNHs)是有望用于太阳能转换的光收集和电荷分离材料。可以将SNHs改造成具有I型,准II型和II型载体定位,从而影响其光物理性质和光化学性能。与块状半导体异质结构不同,SNHs中的电子和空穴能级以及空间分布可以通过量子限制效应调节材料尺寸来连续调整,并通过波函数工程对其性能进行额外控制。在本文中,我们回顾了使用波函数工程来控制SNHs(核/壳QD和点对点纳米棒)的吸收和发射光谱,单和多激子动力学以及电荷转移性质以及改进它们的最新进展。具有用作太阳能转换的光收集和电荷分离材料的性能。

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  • 来源
    《Energy & environmental science》 |2012年第11期|p.9406-9418|共13页
  • 作者

    Haiming Zhu; Tianquan Lian;

  • 作者单位

    Department of Chemistry, Emory University, Atlanta, Georgia 30322, USA;

    Department of Chemistry, Emory University, Atlanta, Georgia 30322, USA;

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  • 正文语种 eng
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