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  5. Polyol Synthesis of Ultrathin Pd Nanowires via Attachment‐Based Growth and Their Enhanced Activity towards Formic Acid Oxidation

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Article
en
2013

Polyol Synthesis of Ultrathin Pd Nanowires via Attachment‐Based Growth and Their Enhanced Activity towards Formic Acid Oxidation

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en
2013
Vol 24 (1)
Vol. 24
DOI: 10.1002/adfm.201302339

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Younan Xia
Younan Xia

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Yi Wang
Sang‐Il Choi
Xin Zhao
+5 more

Abstract

Palladium wavy nanowires with an ultrathin diameter of 2 nm are synthesized using the polyol method without the involvement of any template. The success of this synthesis relies on the use of a suitable precursor that could be reduced instantaneously to generate a large number of small Pd nanoparticles. Due to a quick depletion of precursor, the small nanoparticles were unable to grow in size through atomic addition. In the case of low surface charges and high surface energies, these small nanoparticles were forced to coalesce into ultrathin nanowires with a wavy morphology via an attachment mechanism. Thanks to the unique structure and involvement of twin defects, the as‐obtained Pd ultrathin nanowires show a catalytic current density of 2.5 times higher than the conventional Pd/C catalyst towards formic acid oxidation. This work not only offers a powerful route to the synthesis of nanowires through attachment‐based growth but also opens the door to the rational design and fabrication of novel metal nanostructures with enhanced properties.

How to cite this publication

Yi Wang, Sang‐Il Choi, Xin Zhao, Shuifen Xie, Hsin‐Chieh Peng, Miaofang Chi, Cheng Zhi Huang, Younan Xia (2013). Polyol Synthesis of Ultrathin Pd Nanowires via Attachment‐Based Growth and Their Enhanced Activity towards Formic Acid Oxidation. , 24(1), DOI: https://doi.org/10.1002/adfm.201302339.

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Publication Details

Type

Article

Year

2013

Authors

8

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1002/adfm.201302339

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