4.8 Article

Engineering porous architectures in multicomponent PdCuBP mesoporous nanospheres for electrocatalytic ethanol oxidation

期刊

NANO RESEARCH
卷 14, 期 9, 页码 3274-3281

出版社

TSINGHUA UNIV PRESS
DOI: 10.1007/s12274-021-3301-7

关键词

porous architectures; multicomponent alloys; mesoporous nanosphere; surfactant; electrocatalysis

资金

  1. Natural Science Foundation of Jiangsu Province [BK20191366, BK20180723]
  2. Priority Academic Program Development of Jiangsu Higher Education Institutions
  3. National and Local Joint Engineering Research Center of Biomedical Functional Materials

向作者/读者索取更多资源

A facile soft-templating strategy was reported for precisely engineering the porous architectures of multicomponent PdCuBP mesoporous nanospheres, resulting in three types of mesoporous nanospheres with distinct porous structures. The quaternary PdCuBP dMSs exhibited remarkably high catalytic activity and better stability for electrocatalytic ethanol oxidation reaction, which was attributed to their unique porous architecture and elemental composition advantages.
Porous features of mesoporous metal nanocrystals are critically important for their applications in catalysis, sorption, and biomedicine and bioimaging. However, precisely engineering porous architectures of mesoporous metals is still highly challenging. Herein, we report a facile soft-templating strategy to precisely engineer porous architectures of multicomponent PdCuBP mesoporous nanospheres (MSs) by using the surfactants with different amphiphilic features. Three kinds of MSs with distinct porous architectures, including three-dimensional (3D) opened/interconnected dendritic mesopores (dMSs), one-dimensional (1D) cylindered mesopores (cMSs), and zero-dimensional (0D) spherical mesopores (sMSs), are prepared. This surfactant-templating method is generally extended to regulate elemental compositions of multicomponent MSs. The resultant Pd-based MSs have been evaluated as the electrocatalysts for ethanol oxidation reaction (EOR). Our results show that quaternary PdCuBP dMSs display remarkably high catalytic activity and better stability for electrocatalytic EOR, compared to those of multicomponent MSs with other porous architectures and less elemental compositions. Mechanism studies reveal that PdCuBP dMSs combine multiple structural and compositional advantages, which kinetically accelerate the electron/mass transfers and also improve the tolerances to poisoning intermediates. We believe that the porous architecture engineering in mesoporous metal electrocatalysts will present a new way to design highly efficient electrocatalysts with desired porous systems and explore their relations towards (electro)catalysis.

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