4.6 Article

Hydrothermal synthesis of palladium nitrides as robust multifunctional electrocatalysts for fuel cells

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 9, 期 10, 页码 6196-6204

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ROYAL SOC CHEMISTRY
DOI: 10.1039/d0ta11054j

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资金

  1. National Natural Science Foundation of China (NSFC) [21773180, 21471123]
  2. State Key Laboratory for Mechanical Behavior of Materials
  3. Fundamental Research Funds for the Central Universities
  4. Xi'an Jiaotong University

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New PdNx nanocrystals prepared by hydrothermal synthesis show improved catalytic performance by filling N atoms to optimize the electronic structure of Pd; exhibiting superior catalytic properties in various reactions, especially in alkaline electrolytes; the N content has a significant impact on enhancing the stability of noble metal nanocatalysts.
Tremendous efforts have been devoted to exploring high-performance electrocatalysts for fuel cells, but the achievements in catalytic activity and durability are still far from satisfactory for commercialization. Filling metal nanoparticles with nonmetallic elements, such as nitrogen atoms, can greatly improve their catalytic performance; however, noble metal nitrides still suffer from the lack of efficient synthetic approaches. Herein, we report that PdNx nanocrystals (x <= 0.5) with controllable stoichiometries can be prepared via hydrothermal synthesis. Theoretical studies reveal that delicately modifying the electronic structure of Pd by filling N atoms can optimize the d-band center of Pd sites, thereby improving the catalytic performance toward a wide range of reactions. Catalytic performance evaluation demonstrates that PdNx nanocrystals exhibit superior catalytic properties for the cathodic oxygen reduction reaction and anodic formic acid and methanol oxidation reaction. Especially for the ORR in alkaline electrolytes, Pd2N nanocrystals can deliver a mass activity as high as 0.83 A mg(-1), outperforming most of the Pd-based catalysts reported previously. Accelerated durability tests further demonstrate the excellent durability of Pd2N nanocrystals toward the ORR, the activity of which decays by only similar to 9% over 10 000 cycles, suggesting the huge impact of the N content on enhancing the stability of noble metal nanocatalysts.

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