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Optical quantum confinement and photocatalytic properties in two-, one- and zero-dimensional nanostructures

机译:两种,单尺寸纳米结构中的光学量子限制和光催化性能

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摘要

Low-dimensional nanomaterials have been explored extensively in the last decades, partly fuelled by the new possibilities for tuning and controlling their electronic properties. In a broader perspective within catalysis, two-, one- and zero-dimensional (2D, 1D and 0D) inorganic nanomaterials represent a bridge between the selectivity of molecular catalysts and the high performance and stability of inorganic catalysts. As a consequence of the low dimensions, higher surface areas are obtained but also introduce new physics and increased tuneability of the electronic states in the nanostructured system. Herein, we derive the commonly used equations for optical transitions and carrier confinement in semiconductors and discuss their effect on the optical and photocatalytic properties of direct band and indirect band gap materials. In particular, the physical properties of the optical and photocatalytic properties of Fe2O3 and ZnO will be used to exemplify the effects of the low dimensionality. Carrier confinement effects with changes in the density of states, band gap/shift of band edges will be outlined together with their effects on the tuneability of the material and their wider application as photocatalytic materials.
机译:在过去的几十年中,低维纳米材料已广泛探讨,部分推动了通过调整和控制其电子特性的新可能性。在催化的较广泛的透视图中,两种,单尺寸和零维度(2D,1D和0D)无机纳米材料代表了分子催化剂的选择性与无机催化剂的高性能和稳定性之间的桥梁。由于低尺寸,获得了更高的表面区域,而且还引入了纳米结构系统中的电子状态的新物理和增加的可调性。这里,我们推导出半导体中的光学转变和载波限制的常用方程,并探讨它们对直接带和间接带隙材料的光学和光催化性质的影响。特别地,Fe 2 O 3和ZnO的光学和光催化性质的物理性质将用于举例说明低维度的影响。载波限制效应与状态密度的变化,带边缘的带隙/偏移将与它们对材料的可调性和其更广泛的应用作为光催化材料的影响。

著录项

  • 作者

    T. Edvinsson;

  • 作者单位
  • 年度 2018
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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