| Literature DB >> 29531375 |
Qipeng Lu1, An-Liang Wang1, Yue Gong2,3, Wei Hao1, Hongfei Cheng1, Junze Chen1, Bing Li4, Nailiang Yang1, Wenxin Niu1, Jie Wang1, Yifu Yu1, Xiao Zhang1, Ye Chen1, Zhanxi Fan1, Xue-Jun Wu1, Jinping Chen5, Jun Luo5, Shuzhou Li1, Lin Gu6,7,8, Hua Zhang9.
Abstract
Crystal-phase engineering offers opportunities for the rational design and synthesis of noble metal nanomaterials with unusual crystal phases that normally do not exist in bulk materials. However, it remains a challenge to use these materials as seeds to construct heterometallic nanostructures with desired crystal phases and morphologies for promising applications such as catalysis. Here, we report a strategy for the synthesis of binary and ternary hybrid noble metal nanostructures. Our synthesized crystal-phase heterostructured 4H/fcc Au nanowires enable the epitaxial growth of Ru nanorods on the 4H phase and fcc-twin boundary in Au nanowires, resulting in hybrid Au-Ru nanowires. Moreover, the method can be extended to the epitaxial growth of Rh, Ru-Rh and Ru-Pt nanorods on the 4H/fcc Au nanowires to form unique hybrid nanowires. Importantly, the Au-Ru hybrid nanowires with tunable compositions exhibit excellent electrocatalytic performance towards the hydrogen evolution reaction in alkaline media.Entities:
Year: 2018 PMID: 29531375 DOI: 10.1038/s41557-018-0012-0
Source DB: PubMed Journal: Nat Chem ISSN: 1755-4330 Impact factor: 24.427