电催化剂
金属间化合物
纳米颗粒
化学
化学工程
材料科学
无机化学
核化学
冶金
纳米技术
电化学
物理化学
电极
工程类
合金
作者
Chun Wu,Zhiyong Li,Shizhi Dong,KanKan Zhou,Dekang Ding,Runqing Liu,Wenli Pei
标识
DOI:10.1021/acsanm.4c00570
摘要
Intermetallic FeMnPt nanoparticles with fine sizes (4–7 nm) and ordered phases ( L 1 0 and L 1 2 ) were successfully synthesized by a facile one-step solid-state reaction method. NaCl powder with size less than 10 μm was employed as the solid-state isolate medium and the mass ratio of precursors to NaCl powders was set as 1:300; the solid reaction was done at 780 °C under a reducing atmosphere (90% Ar + 10% H 2 ) for 180 min. The electrocatalytic hydrogen evolution reaction (HER) performances in both acidic and alkaline solutions were tested. Increasing the Mn precursor amounts in the solid-state reaction process would increase the content of Mn and Pt elements, transform the crystal structure from the L 1 0 -phase to the L 1 2 -phase, and increase the grain sizes of FeMnPt nanoparticles. Comparing the electrocatalytic HER performance of intermetallic FeMnPt nanoparticles in acidic and alkaline solutions, it was found that the L 1 2 -FeMnPt nanoparticles with higher Mn and Pt contents presented a low electrocatalytic overpotential and high specific activity in acidic solution. However, the Mn-containing L 1 0 -FeMnPt nanoparticles with higher ordering degrees showed low electrocatalytic overpotentials and high electrocatalytic activity in alkaline solution. The electrocatalytic HER stabilities of intermetallic FeMnPt nanoparticles with different components and ordered phases were comparable in acidic and alkaline solutions. This study provides the guidance for discovering highly efficient intermediate HER catalysts for servicing different acidic and alkaline environments.
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