Booth S G, Uehara A, Chang S-Y, La Fontaine C, Fujii T, Okamoto Y, Imai T, Schroeder S L M, Dryfe R A W
School of Chemistry , University of Manchester , Manchester , M13 9PL , UK . Email:
Division of Nuclear Engineering Science , Research Reactor Institute , Kyoto University , Kumatori , Sennan , Osaka 590-0494 , Japan . Email:
Chem Sci. 2017 Dec 1;8(12):7954-7962. doi: 10.1039/c7sc03266h. Epub 2017 Sep 26.
The mechanism of the two-phase Brust-Schiffrin synthesis of alkane thiol protected metal nanoparticles is known to be highly sensitive to the precursor species and reactant conditions. In this work X-ray absorption spectroscopy is used in conjunction with liquid/liquid electrochemistry to highlight the significance of Br in the reaction mechanism. The species [AuBr] is shown to be a preferable precursor in the Brust-Schiffrin method as it is more resistant to the formation of Au(i) thiolate species than [AuCl]. Previous literature has demonstrated that avoidance of the Au(i) thiolate is critical to achieving a good yield of nanoparticles, as [Au(i)X] species are more readily reduced by NaBH. We propose that the observed behavior of [AuBr] species described herein explains the discrepancies in reported behavior present in the literature to date. This new mechanistic understanding should enable nanoparticle synthesis with a higher yield and reduce particle size polydispersity.
已知两相Brust-Schiffrin法合成烷硫醇保护的金属纳米颗粒的机制对前驱体物种和反应物条件高度敏感。在这项工作中,X射线吸收光谱与液/液电化学结合使用,以突出Br在反应机制中的重要性。结果表明,物种[AuBr]是Brust-Schiffrin法中更优选的前驱体,因为它比[AuCl]更能抵抗硫醇金(I)物种的形成。先前的文献表明,避免硫醇金(I)对于实现纳米颗粒的高产率至关重要,因为[Au(I)X]物种更容易被NaBH还原。我们认为,本文所述的[AuBr]物种的观察行为解释了迄今为止文献中报道的行为差异。这种新的机理理解应能实现更高产率的纳米颗粒合成,并降低颗粒尺寸多分散性。