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November 9, 2021Nano Letters45 citations

Monoatomic Platinum-Embedded Hexagonal Close-Packed Nickel Anisotropic Superstructures as Highly Efficient Hydrogen Evolution Catalyst

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JDJiabao DingYJYujin JiYLYouyong Li

Key Points

  • The research aims to synthesize and evaluate monoatomic platinum-embedded nickel nanostructures for hydrogen evolution efficiency.
  • Synthesis of monoatomic platinum-embedded hexagonal close-packed nickel nanosheets.
  • Evaluation of the catalyst's performance for hydrogen evolution at various overpotentials.
  • Comparison of activity and overpotential with conventional platinum catalysts.
  • Overpotential for Pt/Ni superstructures to achieve 10 mA cm^-2 is 28.0 mV, significantly lower than conventional Pt/C (71.0 mV).
  • At an overpotential of 100 mV, the mass activity of Pt/Ni ASs is 30.2 A mg_Pt^-1, 1060% greater than Pt/C (2.6 A mg_Pt^-1).

Abstract

The rational design of platinum (Pt) based nanostructures with specific crystal structure plays a significant role in their diverse applications. Herein, the anisotropic superstructures (ASs) of monoatomic Pt-embedded hexagonal close-packed nickel (hcp Ni) nanosheets were successfully synthesized for efficient hydrogen evolution in which an unusual dissociation-diffusion-desorption mechanism played a crucial role. The overpotential for the Pt/Ni ASs to reach the specific current density (10 mA cm-2) is 28.0 mV, which is much lower than that of conventional Pt/C catalyst (71.0 mV). Moreover, at the overpotential of 100 mV, the mass activity of 30.2 A mgPt-1 for the Pt/Ni ASs is 1060% greater than that in conventional Pt/C catalyst (2.6 A mgPt-1). This work provides a new approach to synthesize highly anisotropic superstructures embedded with monoatomic noble metals to boost their hopeful applications in catalytic applications.

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Cite This Study

Ding et al. (2021) studied this question.

synapsesocial.com/papers/69cea5fc91abb92aeb3d3737https://doi.org/10.1021/acs.nanolett.1c02313
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