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pH 值依赖性原子 Pd 层在三角十二面体金纳米粒子上的生长,以实现电催化和化学催化性能的增强。

pH-Dependent growth of atomic Pd layers on trisoctahedral gold nanoparticles to realize enhanced performance in electrocatalysis and chemical catalysis.

机构信息

State Key Laboratory of Crystal Materials, Shandong University, Jinan, 250100, P. R. China.

出版信息

Nanoscale. 2018 Dec 21;10(47):22302-22311. doi: 10.1039/c8nr07224h. Epub 2018 Nov 23.

Abstract

In this work, the controlled epitaxial growth of ultrathin Pd shells of a few atomic layers (denoted as nL) on the surfaces of gold nanoparticle (Au NP) cores of different morphologies (trisoctahedral, cubic, and spherical shapes) in the presence of cetyltrimethylammonium chloride (CTAC) was achieved by regulating the pH value of the aqueous CTAC solution and finely tuning the amount of the Pd precursor. It was found that the critical shell thickness for epitaxial Pd growth at the optimal pH value was 4 atomic layers, taking {331}-faceted trisoctahedral (TOH) Au@Pd NPs as an example, on the basis of the results of atomic-resolution high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM) images. Moreover, the resulting TOH Au@Pd NPs (100.9 m g, 13.2 A mg and 13.1 mA cm) exhibited excellent electrocatalytic performance and long-term electrocatalytic activity for ethanol oxidation, around 4.8-fold, 66-fold, and 21.8-fold better than commercial Pd/C catalysts (31 m g, 0.2 A mg, and 0.6 mA cm). Furthermore, the resulting TOH Au@Pd NPs not only markedly enhance the chemical catalytic activity for the reduction of 4-nitrophenol (4-NP), but also allow the in situ surface-enhanced Raman spectroscopy (SERS) monitoring of the reaction process of the Pd-catalyzed reduction of 4-NTP. Thus, our work may provide a new way to fabricate core-shell (CS) bimetallic NPs with the merits of both metal outer shells (excellent catalytic performance in electrocatalysis and chemical catalysis) and Au NP cores (reaction process by in situ SERS monitoring).

摘要

在这项工作中,通过调节水相 CTAC 溶液的 pH 值并精细调节 Pd 前驱体的用量,在金纳米颗粒(Au NP)核不同形态(三角十二面体、立方和球形)的表面上实现了超薄 Pd 壳的控制外延生长,其原子层数为几个原子层(表示为 nL)。以具有 {331} 面的三角十二面体(TOH)Au@Pd NPs 为例,基于原子分辨率高角度环形暗场扫描透射电子显微镜(HAADF-STEM)图像的结果,发现对于在最佳 pH 值下外延 Pd 生长的临界壳层厚度为 4 个原子层。此外,所得的 TOH Au@Pd NPs(100.9 m g、13.2 A mg 和 13.1 mA cm)表现出优异的电催化性能和长期电催化乙醇氧化活性,分别比商业 Pd/C 催化剂(31 m g、0.2 A mg 和 0.6 mA cm)好约 4.8 倍、66 倍和 21.8 倍。此外,所得的 TOH Au@Pd NPs 不仅显著提高了对 4-硝基苯酚(4-NP)还原的化学催化活性,而且允许 Pd 催化 4-NTP 还原反应过程的原位表面增强拉曼光谱(SERS)监测。因此,我们的工作可能为制备具有金属外壳(电催化和化学催化中优异的催化性能)和 Au NP 核(通过原位 SERS 监测反应过程)优点的核壳(CS)双金属 NPs 提供了一种新方法。

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