4.8 Article

3D Anisotropic Au@Pt-Pd Hemispherical Nanostructures as Efficient Electrocatalysts for Methanol, Ethanol, and Formic Acid Oxidation Reaction

Journal

ADVANCED MATERIALS
Volume 33, Issue 30, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202100713

Keywords

anisotropic morphology; Au@Pt-Pd hemispherical nanostructures; electrocatalysts; electro-oxidation reactions

Funding

  1. National Natural Science Foundation of China [21822202, 22072104]
  2. National Key R&D Program of China (International Collaboration program) - Chinese Ministry of Science and Technology [2018YFE0200700]
  3. 111 project, Joint International Research Laboratory of Carbon-Based Functional Materials and Devices
  4. Collaborative Innovation Center of Suzhou Nano Science and Technology

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In this work, 3D Au@Pt-Pd hemispherical nanostructures were fabricated as highly efficient electrocatalysts for oxidation reactions, exhibiting superior activity and durability compared to commercial Pt/C catalysts. The unique anisotropic nanostructures provide important insights for the design and preparation of high-efficiency electrocatalysts.
Anisotropic 3D nanostructures exhibit excellent electrocatalytic activity and stability due to their heterogeneous elemental distribution and unsymmetrical configuration. However, it is still a huge challenge to combine anisotropically distributed elements and anisotropic morphologies within one 3D nanostructure. Herein, 3D Au@Pt-Pd hemispherical nanostructures (Au@Pt-Pd H-Ss) are fabricated as highly efficient electrocatalysts for oxidation reaction, which present heterogenous element distribution and anisotropic morphology. It is demonstrated that the non-uniform adsorption of BO2- on Au-CTA(+) surface, as well as the simulated lower formation energy of Pt-Pd atoms for Au-CTA(+)-BO2-, basically contribute to the eventual formation of Au@Pt-Pd H-Ss. Impressively, the unique anisotropic Au@Pt-Pd H-Ss exhibit superior electrocatalytic activity and durability for methanol, ethanol, and formic acid oxidation reaction compared with commercial Pt/C and previously reported noble-metal based electrocatalysts. Especially, the mass activity of Au@Pt-Pd H-Ss for MOR is 4.38 A mg(Pt+Pd)(-1), which is about 2.0 and 4.7 times that of Au@Pt-Pd spherical nanostructures (Au@Pt-Pd Ss) and commercial Pt/C catalyst, respectively. This work provides an important reference for the design and preparation of 3D anisotropic and high-efficiency electrocatalysts.

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