Department of Chemistry , University of Utah , Salt Lake City , Utah 84112 , United States.
Nano Lett. 2019 Aug 14;19(8):5612-5619. doi: 10.1021/acs.nanolett.9b02144. Epub 2019 Jul 26.
This letter presents an electrochemical methodology for structure-tunable synthesis, characterization, and kinetic monitoring of metal-semiconductor phase transformations at individual Ag nanoparticles. In the presence of HS in aqueous solution, the stochastic collision and adsorption of Ag nanoparticles at a Au microelectrode initiates the partial anodic transformation of Ag to AgS at each particle. A single continuous current transient is observed for each Ag nanoparticle reacted. The characteristic shapes of the transients are distinct from previously reported amperometric recordings of electrochemical reactions involving single nanoparticles and are highly uniform at a constant applied potential. The average maximum current increases while the event duration decreases as a function of increasing potential. Independent of applied potential, the electrochemical transformation event abruptly stops after converting ∼80% of the Ag in the nanoparticle to AgS, a self-terminating process that does not occur for bulk Ag electrodes under similar conditions. The resulting products are a mixture of core@shell Ag@AgS nanoparticles with and without voids in the core, as characterized by transmission electron microscopy (TEM) and energy-dispersive X-ray spectroscopy (EDX). Both the frequency and size of voids increase at more positive potentials. The average size of the core@shell nanoparticles determined by coulometric analysis of the current transients agrees well with TEM measurements.
这封信提出了一种电化学方法,用于在单个 Ag 纳米粒子中进行结构可调的金属-半导体相转变的合成、表征和动力学监测。在 HS 存在于水溶液中时,Ag 纳米粒子在 Au 微电极上的随机碰撞和吸附引发了每个粒子中 Ag 向 AgS 的部分阳极转化。每个反应的 Ag 纳米粒子都会观察到单个连续的电流瞬变。这些瞬变的特征形状与之前报道的涉及单个纳米粒子的电化学反应的安培记录明显不同,并且在恒定施加电位下高度均匀。平均最大电流随着电位的增加而增加,而事件持续时间随着电位的增加而减小。无论施加的电位如何,电化学转化事件在将纳米粒子中约 80%的 Ag 转化为 AgS 后突然停止,这是一个自终止过程,在类似条件下,块状 Ag 电极不会发生这种过程。所得到的产物是具有和不具有核中空隙的核@壳 Ag@AgS 纳米粒子的混合物,这可以通过透射电子显微镜(TEM)和能量色散 X 射线光谱(EDX)来表征。在更正的电位下,空隙的频率和尺寸都增加。通过对电流瞬变的库仑分析确定的核@壳纳米粒子的平均尺寸与 TEM 测量非常吻合。