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基于机械化学老化法的金纳米颗粒形成研究。

study of Au nanoparticle formation in a mechanochemical-aging-based method.

作者信息

Richard Austin J, Ferguson Michael, Fiss Blaine G, Titi Hatem M, Valdez Jesus, Provatas Nikolas, Friščić Tomislav, Moores Audrey

机构信息

Centre in Green Chemistry and Catalysis, Department of Chemistry, McGill University 801 Sherbrooke Street West Montréal Québec H3A 0B8 Canada

School of Chemistry, University of Birmingham Edgbaston Birmingham B15 2TT UK

出版信息

Nanoscale Adv. 2023 Apr 3;5(10):2776-2784. doi: 10.1039/d2na00759b. eCollection 2023 May 16.

Abstract

As we strive to perform chemical transformations in a more sustainable fashion, enabling solid-state reactions through mechanochemistry has emerged as a highly successful approach. Due to the wide-ranging applications of gold nanoparticles (AuNPs), mechanochemical strategies have already been employed for their synthesis. However, the underlying processes surrounding gold salt reduction, nucleation and growth of AuNPs in the solid state are yet to be understood. Here, we present a mechanically activated aging synthesis of AuNPs, through a solid-state Turkevich reaction. Solid reactants are only briefly exposed to input of mechanical energy before being aged statically over a period of six weeks at different temperatures. This system offers an excellent opportunity for an analysis of both reduction and nanoparticle formation processes. During the aging period, the reaction was monitored using a combination of X-ray photoelectron spectroscopy, diffuse reflectance spectroscopy, powder X-ray diffraction and transmission electron microscopy, to gain meaningful insights into the mechanisms of solid-state formation of gold nanoparticles. The acquired data allowed for the establishment of the first kinetic model for solid-state nanoparticle formation.

摘要

随着我们努力以更可持续的方式进行化学转化,通过机械化学实现固态反应已成为一种非常成功的方法。由于金纳米颗粒(AuNPs)的广泛应用,机械化学策略已被用于其合成。然而,围绕金盐还原、固态AuNPs的成核和生长的潜在过程仍有待了解。在这里,我们通过固态特克维奇反应提出了一种机械活化老化合成AuNPs的方法。固体反应物仅在短时间内暴露于机械能输入,然后在不同温度下静态老化六周。该系统为分析还原和纳米颗粒形成过程提供了绝佳机会。在老化期间,使用X射线光电子能谱、漫反射光谱、粉末X射线衍射和透射电子显微镜相结合的方法监测反应,以深入了解金纳米颗粒固态形成的机制。所获得的数据使得能够建立第一个固态纳米颗粒形成的动力学模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/56bb/10187004/d2484d90e90b/d2na00759b-f1.jpg

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