| Literature DB >> 28910497 |
Zhili Wang1, Shoucong Ning2, Pan Liu3, Yi Ding4, Akihiko Hirata1, Takeshi Fujita1, Mingwei Chen1,3,5,6.
Abstract
3D dealloyed nanoporous metals have emerged as a new class of catalysts for various chemical and electrochemical reactions. Similar to other heterogeneous catalysts, the surface atomic structure of the nanoporous metal catalysts plays a crucial role in catalytic activity and selectivity. Through surfactant-assisted bottom-up synthesis, the surface-structure modification has been successfully realized in low-dimensional particulate catalysts. However, the surface modification by top-down dealloying has not been well explored for nanoporous metal catalysts. Here, a surfactant-free approach to tailor the surface structure of nanoporous gold by surface relaxation via electrochemical redox cycling is reported. By controlling the scan rates, nanoporous gold with abundant {111} facets or {100} facets can be designed and fabricated with dramatically improved electrocatalysis toward the ethanol oxidation reaction.Entities:
Keywords: electrocatalysis; nanoporous gold; surface engineering; surface structure
Year: 2017 PMID: 28910497 DOI: 10.1002/adma.201703601
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849