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Tensile-Strained Platinum-Cobalt Alloy Surface on Palladium Octahedra as a Highly Durable Oxygen Reduction Catalyst. | LitMetric

Tensile-Strained Platinum-Cobalt Alloy Surface on Palladium Octahedra as a Highly Durable Oxygen Reduction Catalyst.

ACS Appl Mater Interfaces

State Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, People's Republic of China.

Published: January 2023

AI Article Synopsis

  • The research focuses on improving Pt-based core-shell nanocrystals to enhance their activity for the oxygen reduction reaction (ORR) while making them more durable by using a thicker Pt shell to prevent core dissolution.
  • A method was developed to achieve controlled deposition of multiple Pt-Co layers on Pd seeds, which helps maintain a better shape and prevents unwanted growth patterns typical with thicker layers.
  • The resulting Pd@Pt-Co octahedra displayed significantly improved mass and specific activity for ORR compared to commercial Pt/C catalysts and demonstrated good durability after extensive cycling, making it a promising approach for effective and affordable catalytic materials.

Article Abstract

Designing shape-controlled Pt-based core-shell nanocrystals is a prospective strategy to maximize the utilization of Pt while maintaining high activity for oxygen reduction reaction (ORR). However, the core-shell structures with ultrathin Pt shell exhibit limited electrochemical durability. Therefore, a thicker shell is proposed to successfully improve the durability of the core-shell structures by preventing the core from dissolution. Nevertheless, the deposition of Pt tends to switch to the Stranski-Krastanov (S-K) growth mode with the increase of the number of layer, resulting in the absence of a conformal morphology. Herein, we realize the deposition of three-to-five-layer epitaxial Pt-Co layers on Pd octahedral seeds by introducing tensile strain in the epitaxial layer to impede the S-K growth. The as-obtained Pd@Pt-Co octahedra with four layers exhibit enhanced mass activity (0.69 A/mg) and specific activity (1.00 mA/cm) for ORR, which are 4.93 and 5 times that of the commercial Pt/C, respectively. Furthermore, it shows only 17% decay for specific activity after a 30,000-cycle durability test. This work is expected to enlighten the design and synthesis of related core-shell nanocrystals with facetted multicomponent shells, offering a promising strategy for designing cost-effective and efficient catalysts.

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Source
http://dx.doi.org/10.1021/acsami.2c18600DOI Listing

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