Atomic Strain Wave‐Featured LaRuIr Nanocrystals: Achieving Simultaneous Enhancement of Catalytic Activity and Stability toward Acidic Water Splitting

Author:

Li Rongchao1,Liu Jingjun1ORCID,Xiao Mingyue1,Sun Yanhui1,Liu Feng2,Gan Jun2,Gao Shixin2

Affiliation:

1. Beijing Key Laboratory of Electrochemical Process and Technology for Materials Beijing University of Chemical Technology Beijing 100029 China

2. Yunnan Precious Metals Lab Kunming 650100 China

Abstract

AbstractRare earth microalloying nanocrystals have gotten widespread attention due to their unprecedented performances with customization‐defected nanostructures, divided energy bands, and ensembled surface chemistry, regarded as a class of ideal electrocatalysts for oxygen evolution reaction (OER). Herein, a lanthanide microalloying strategy is proposed to fabricate strain wave‐featured LaRuIr nanocrystals with oxide skin through a rapid crystal nucleation, using thermally assisted sodium borohydride reduction in aqueous solution at 60 °C. The atomic strain waves with alternating compressive and tensile strains, resulting from La‐stabilized edge dislocations in form of Cottrell atmospheres. In 0.5 m H2SO4, the LaRuIr displays an overpotential of 184 mV at 10 mA cm−2, running at a steadily cell voltage for 60 h at 50 mA cm−2, eightfold enhancement of IrO2||Pt/C assemble in PEMWE. The coupled compressive and tensile profiles boost the OER kinetics via faster AEM and LOM pathways. Moreover, the tensile facilitates surface structure stabilization through dynamic refilling of lattice oxygen vacancies by the adsorbed oxyanions on La, Ru, and Ir sites, eventually achieving a long‐term stability. This work contributes to developing advanced catalysts with unique strain to realize simultaneous improvement of activity and durability by breaking the so‐called seesaw relationship between them during OER for water splitting.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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