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控制合成具有增强氧还原催化活性的 Pd-Pt 合金空心纳米结构。

Controlled synthesis of Pd-Pt alloy hollow nanostructures with enhanced catalytic activities for oxygen reduction.

机构信息

Department of Chemistry and KI for the NanoCentury, KAIST, Daejeon 305-701, Korea.

出版信息

ACS Nano. 2012 Mar 27;6(3):2410-9. doi: 10.1021/nn2046828. Epub 2012 Feb 29.

Abstract

Pd-Pt alloy nanocrystals (NCs) with hollow structures such as nanocages with porous walls and dendritic hollow structures and Pd@Pt core-shell dendritic NCs could be selectively synthesized by a galvanic replacement method with uniform Pd octahedral and cubic NCs as sacrificial templates. Fine control over the degree of galvanic replacement of Pd with Pt allowed the production of Pd-Pt NCs with distinctly different morphologies. The synthesized hollow NCs exhibited considerably enhanced oxygen reduction activities compared to those of Pd@Pt core-shell NCs and a commercial Pt/C catalyst, and their electrocatalytic activities were highly dependent on their morphologies. The Pd-Pt nanocages prepared from octahedral Pd NC templates exhibited the largest improvement in catalytic performance. We expect that the present work will provide a promising strategy for the development of efficient oxygen reduction electrocatalysts and can also be extended to the preparation of other hybrid or hetero-nanostructures with desirable morphologies and functions.

摘要

具有中空结构的 Pd-Pt 合金纳米晶体(NCs),如具有多孔壁的纳米笼和树枝状中空结构以及 Pd@Pt 核壳树枝状 NCs,可以通过电置换方法选择性合成,以均匀的 Pd 八面体和立方 NCs 作为牺牲模板。通过对 Pd 与 Pt 的电置换程度进行精细控制,可以制备出具有明显不同形态的 Pd-Pt NCs。与 Pd@Pt 核壳 NCs 和商业 Pt/C 催化剂相比,合成的中空 NCs 表现出显著增强的氧还原活性,并且它们的电催化活性高度依赖于它们的形态。由八面体 Pd NC 模板制备的 Pd-Pt 纳米笼表现出最大的催化性能改善。我们期望本工作将为开发高效氧还原电催化剂提供一种有前途的策略,并且还可以扩展到制备具有理想形态和功能的其他混合或异质纳米结构。

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