Strain-Induced Porous Pd@PdPt Core/Shell Nanocubes as Effective All-in-One Electrocatalysts toward Multialcohol Oxidation

纳米材料基催化剂 介孔材料 化学工程 乙二醇 材料科学 多孔性 催化作用 电催化剂 氧化还原 纳米晶 甲醇 酒精氧化 化学 纳米颗粒 纳米技术 无机化学 电化学 有机化学 电极 物理化学 复合材料 工程类
作者
Jinwu Hu,Ran Li,Xin Wang,Shaozhen Wang,Caihong Fang
出处
期刊:ACS applied nano materials [American Chemical Society]
卷期号:6 (12): 10213-10222 被引量:17
标识
DOI:10.1021/acsanm.3c00969
摘要

Constructing an appealing architecture is of great significance to improving the electrocatalytic activity and stability of Pt-based nanocatalysts. In this work, we successfully synthesized porous Pd@PdPt core/shell nanocrystals via a facile one-pot method, which possess several architectural and compositional advantages, involving porous outer, ultrathin branches, an open mesoporous skeleton, a core/shell structure, and an alloyed composition. These morphological features and the synergistic effect between different components in the alloy endow the Pd@PdPt nanostructures with abundant active sites, effective mass transfer, strain in the particle, and the electronic coupling effect. The Pd@PdPt nanoalloy therefore exhibits excellent electrocatalytic performances in alcohol oxidation reactions. Impressively, the Pd5Pt4 nanocubes exhibit a higher mass/specific activity of 3.225 A mgPt+Pd–1/34.49 A m–2 for the ethanol oxidation reaction, which is even 4.00-/2.39-fold as high as that of commercial Pt/C. Moreover, the Pd5Pt4 nanocubes also show a superior mass activity of 2.824 A mgPt+Pd–1/37.66 A m–2 toward the methanol oxidation reaction, which is up to 4.20/2.40 times that of the commercial Pt/C. The Pd@PdPt also has enhanced electrocatalytic stability. More importantly, the porous Pt5Pd4 nanocubes still demonstrate superior electrocatalytic activities of 0.259, 1.19, 2.65, and 2.76 A mgPt+Pd–1 for the oxidation of glucose, isopropyl alcohol, glycerol, and ethylene glycol, respectively. We therefore believe that these universal electrocatalysts have the potential to promote practical applications in fuel cells.
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