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Get Free AccessWe report a scalable method based on continuous-flow reactors for conformally coating the surfaces of facet-controlled Pd nanocrystals with uniform, ultrathin shells made of Pt. The key to the success of such an approach is the identification of a proper polyol to generate the Pt atoms at a relatively slow rate to ensure adequate surface diffusion and thus the formation of uniform shells in a layer-by-layer fashion. We first demonstrate the concept using the production of Pd@PtnL (n = 2–5) core–shell icosahedral nanocrystals and then have the strategy successfully extended to the syntheses of Pd@PtnL cubic and octahedral nanocrystals. All these core–shell nanocrystals showed great enhancement in catalytic activity toward the oxygen reduction reaction. Our results suggest that seed-mediated growth can be combined with a continuous-flow reactor to achieve scalable production of bimetallic and even trimetallic nanocrystals with controlled sizes, shapes, compositions, and properties.
Helan Wang, Jianlong He, Ming Zhou, Younan Xia (2024). Continuous-Flow and Scalable Synthesis of Pd@Pt<sub>nL</sub> Core–Shell Nanocrystals with Enhanced Activity toward Oxygen Reduction. , 128(50), DOI: https://doi.org/10.1021/acs.jpcc.4c07102.
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Type
Article
Year
2024
Authors
4
Datasets
0
Total Files
0
Language
en
DOI
https://doi.org/10.1021/acs.jpcc.4c07102
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