Self-Etching Pd-Pb Nanoparticles with Controllable Tensile Strain for C 2 Alcohol Oxidation

Pd-based nanocatalysts hold significant promise for application in alkaline direct ethanol fuel cells (DEFCs). To address the challenges of low Pd atom utilization and poor reaction kinetics in conventional Pd-based catalysts, a self-etching strategy has been developed to synthesize Pd Pb nanopartic...

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Veröffentlicht in:ACS applied materials & interfaces 2025-01, Vol.17 (2), p.3308-3315
Hauptverfasser: Chen, Chen, Lao, Xianzhuo, Li, Junlong, Wang, Yidian, Wang, Kuikui, Li, Dongxiang, Guo, Peizhi
Format: Artikel
Sprache:eng
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Zusammenfassung:Pd-based nanocatalysts hold significant promise for application in alkaline direct ethanol fuel cells (DEFCs). To address the challenges of low Pd atom utilization and poor reaction kinetics in conventional Pd-based catalysts, a self-etching strategy has been developed to synthesize Pd Pb nanoparticles (NPs) with tunable size and abundant tensile strain. The nanoparticles demonstrated a markedly enhanced electrocatalytic performance. Pd Pb NPs-1 exhibited a current density of 2565 mA mg for the ethanol oxidation reaction (EOR). Following self-etching, smaller Pd Pb NPs-2 were synthesized, achieving a higher current density of 2820 mA mg for EOR. Even after prolonged cyclic voltammetry (CV) testing, the Pd Pb NPs-2 exhibited excellent stability. The high mass activity is attributed to a favorable balance between active intermediates and blocking species at the catalyst interface. This work presents a promising strategy for constructing nanocatalysts with tunable alloying degrees, offering highly efficient catalysts for fuel cell applications. Moreover, this study provides a reliable approach to preparing monodisperse nanocatalysts with controllable size and morphology through self-etching techniques.
ISSN:1944-8244
1944-8252
DOI:10.1021/acsami.4c16753