State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, China.
ACS Nano. 2010 Apr 27;4(4):1987-96. doi: 10.1021/nn100093y.
A versatile method for selectively synthesizing single-crystalline rhombic dodecahedral, cubic, and octahedral palladium nanocrystals, as well as their derivatives with varying degrees of edge- and corner-truncation, was reported for the first time. This is also the first report regarding the synthesis of rhombic dodecahedral palladium nanocrystals. All the nanocrystals were readily synthesized by a seed-mediated method with cetyltrimethylammonium bromide as surfactant, KI as additive, and ascorbic acid as reductant. At the same ascorbic acid concentration, a series of palladium nanocrystals with varying shapes were obtained through manipulation of the concentration of KI and the reaction temperature. The formation of different palladium facets were correlated with their growth conditions. In the absence of KI, the 100 palladium facets are favored. In the presence of KI, the concentration of KI and the reaction temperature play an important role on the formation of different palladium facets. The 110 palladium facets are favored at relatively high temperatures and medium KI concentrations. The 111 palladium facets are favored at relatively low temperatures and medium KI concentrations. The 100 palladium facets are favored at either very low or relatively high KI concentrations. These correlations were explained in terms of surface-energy and growth kinetics. These results provide a basis for gaining mechanistic insights into the growth of well-faceted metal nanostructures.
首次报道了一种用于选择性合成单晶菱形十二面体、立方和八面体钯纳米晶体及其具有不同程度边缘和角截断的衍生物的通用方法。这也是首次报道合成菱形十二面体钯纳米晶体。所有的纳米晶体都可以通过种子介导的方法很容易地合成,该方法以十六烷基三甲基溴化铵为表面活性剂,碘化钾为添加剂,抗坏血酸为还原剂。在相同的抗坏血酸浓度下,通过调节碘化钾的浓度和反应温度,可以得到一系列具有不同形状的钯纳米晶体。不同钯晶面的形成与它们的生长条件有关。在没有碘化钾的情况下,有利于生成 100 钯晶面。在存在碘化钾的情况下,碘化钾的浓度和反应温度对不同钯晶面的形成起着重要作用。在较高温度和中等碘化钾浓度下有利于生成 110 钯晶面。在较低温度和中等碘化钾浓度下有利于生成 111 钯晶面。在非常低或相对高的碘化钾浓度下有利于生成 100 钯晶面。这些相关性可以用表面能和生长动力学来解释。这些结果为深入了解具有良好晶面的金属纳米结构的生长机制提供了基础。