Lee Young Wook, Ahn Hochan, Lee Seung Eun, Woo Hyunje, Han Sang Woo
Center for Nanotectonics, Department of Chemistry and KI for the NanoCentury , KAIST , Daejeon 34141 , Korea.
ACS Appl Mater Interfaces. 2019 Jul 24;11(29):25901-25908. doi: 10.1021/acsami.9b06498. Epub 2019 Jul 10.
Pt-based multimetallic nanocrystals (NCs) have attracted tremendous research interest because of their excellent catalytic properties in various electrocatalysis fields. However, the development of rational synthesis approaches that can give multimetallic NCs with desirable compositional structures is still a radical issue. In the present work, we devised an efficient strategy for the systematic control of the spatial distribution of constituent elements in Pt-based trimetallic core-shell NCs, through which NCs with distinctly different compositional structures, such as Au@PdPt, Au@Pd@Pt, AuPd@Pt, and AuPdPt@Pt core-shell NCs, could selectively be generated. The adjustment of the amount of a reducing agent, hydrazine, which can provide control over the relative reduction kinetics of multiple metals, is the key to the selective formation of NCs. Through extensive studies on the effect of the compositional structure of the trimetallic NCs on their catalytic function toward the methanol electro-oxidation reaction, we found that the Au@Pd@Pt NCs exhibited considerably enhanced catalytic performance in comparison to the other trimetallic NCs as well as to their binary counterparts, a commercial catalyst, and reported Pt-based nanocatalysts due to the optimized surface electronic structure. The present strategy will be useful to design and construct multicomponent catalytic systems for various energy and environmental applications.
基于铂的多金属纳米晶体(NCs)因其在各种电催化领域的优异催化性能而引起了极大的研究兴趣。然而,开发能够合成具有理想组成结构的多金属NCs的合理方法仍然是一个根本性问题。在本工作中,我们设计了一种有效的策略来系统控制基于铂的三金属核壳纳米晶体中组成元素的空间分布,通过该策略可以选择性地生成具有明显不同组成结构的纳米晶体,如Au@PdPt、Au@Pd@Pt、AuPd@Pt和AuPdPt@Pt核壳纳米晶体。还原剂肼的用量调节是纳米晶体选择性形成的关键,它可以控制多种金属的相对还原动力学。通过对三金属纳米晶体的组成结构对其甲醇电氧化反应催化功能的影响进行广泛研究,我们发现与其他三金属纳米晶体及其二元对应物、商业催化剂以及已报道的基于铂的纳米催化剂相比,Au@Pd@Pt纳米晶体由于优化的表面电子结构而表现出显著增强的催化性能。本策略将有助于设计和构建用于各种能源和环境应用的多组分催化系统。