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In situ growth of Ag nanoparticles on alpha-Ag2WO4 under electron irradiation: probing the physical principles

机译:在电子辐射下,ag-α2aOO上ag纳米颗粒的现场生长:探讨物理原理

摘要

Exploiting the plasmonic behavior of Ag nanoparticles grown on α-Ag2WO4 is a widely employed strategy to produce efficient photocatalysts, ozone sensors, and bactericides. However, a description of the atomic and electronic structure of the semiconductor sites irradiated by electrons is still not available. Such a description is of great importance to understand the mechanisms underlying these physical processes and to improve the design of silver nanoparticles to enhance their activities. Motivated by this, we studied the growth of silver nanoparticles to investigate this novel class of phenomena using both transmission electron microscopy and field emission scanning electron microscopy. A theoretical framework based on density functional theory calculations (DFT), together with experimental analysis and measurements, were developed to examine the changes in the local geometrical and electronic structure of the materials. The physical principles for the formation of Ag nanoparticles on α-Ag2WO4 by electron beam irradiation are described. Quantum mechanical calculations based on DFT show that the (001) of α-Ag2WO4 displays Ag atoms with different coordination numbers. Some of them are able to diffuse out of the surface with a very low energy barrier (less than 0.1 eV), thus, initiating the growth of metallic Ag nanostructures and leaving Ag vacancies in the bulk material. These processes increase the structural disorder of α-Ag2WO4 as well as its electrical resistance as observed in the experimental measurements.
机译:利用在α-Ag2WO4上生长的Ag纳米颗粒的等离子体行为是广泛使用的策略,可以生产有效的光催化剂,臭氧传感器和杀菌剂。但是,仍然没有关于电子照射的半导体位的原子和电子结构的描述。这样的描述对于理解这些物理过程的基础以及改善银纳米颗粒的设计以增强其活性非常重要。因此,我们使用透射电子显微镜和场发射扫描电子显微镜研究了银纳米颗粒的生长,以研究这种新型现象。建立了基于密度泛函理论计算(DFT)以及实验分析和测量的理论框架,以研究材料的局部几何和电子结构的变化。描述了通过电子束辐射在α-Ag2WO4上形成Ag纳米颗粒的物理原理。基于DFT的量子力学计算表明,α-Ag2WO4的(001)显示出具有不同配位数的Ag原子。它们中的一些能够以非常低的能量垒(小于0.1 eV)从表面扩散出去,从而引发金属Ag纳米结构的生长,并在块状材料中留下Ag空位。如在实验测量中所观察到的,这些过程增加了α-Ag2 WO 4的结构紊乱及其电阻。

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