Chemical Structure of Fe–Ni Nanoparticles for Efficient Oxygen Evolution Reaction Electrocatalysis
Author(s) -
Prashant Acharya,
Zachary Nelson,
Mourad Benamara,
Ryan Manso,
Sergio I. Perez Bakovic,
Mojtaba Abolhassani,
Sungsik Lee,
Benjamin Reinhart,
Jingyi Chen,
Lauren F. Greenlee
Publication year - 2019
Publication title -
acs omega
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.779
H-Index - 40
ISSN - 2470-1343
DOI - 10.1021/acsomega.9b01692
Subject(s) - bimetallic strip , nanomaterial based catalyst , chronoamperometry , electrocatalyst , nanoparticle , oxygen evolution , nickel , materials science , chemical engineering , catalysis , electrolysis , inorganic chemistry , electrolyte , metal , chemistry , nanotechnology , metallurgy , cyclic voltammetry , electrode , electrochemistry , engineering , biochemistry
Bimetallic iron-nickel-based nanocatalysts are perhaps the most active for the oxygen evolution reaction (OER) in alkaline electrolytes. Recent developments in literature have suggested that the ratio of iron and nickel in Fe-Ni thin films plays an essential role in the performance and stability of the catalysts. In this work, the metallic ratio of iron to nickel was tested in alloy bimetallic nanoparticles. Similar to thin films, nanoparticles with iron-nickel atomic compositions where the atomic iron percentage is ≤50% outperformed nanoparticles with iron-nickel ratios of >50%. Nanoparticles of Fe 20 Ni 80 , Fe 50 Ni 50 , and Fe 80 Ni 20 compositions were evaluated and demonstrated to have overpotentials of 313, 327,, and 364 mV, respectively, at a current density of 10 mA/cm 2 . While the Fe 20 Ni 80 composition might be considered to have the best OER performance at low current densities, Fe 50 Ni 50 was found to have the best current density performance at higher current densities, making this composition particularly relevant for electrolysis conditions. However, when stability was evaluated through chronoamperometry and chronopotentiometry, the Fe 80 Ni 20 composition resulted in the lowest degradation rates of 2.9 μA/h and 17.2 μV/h, respectively. These results suggest that nanoparticles with higher iron and lower nickel content, such as the Fe 80 Ni 20 composition, should be still taken into consideration while optimizing these bimetallic OER catalysts for overall electrocatalytic performance. Characterization by electron microscopy, diffraction, and X-ray spectroscopy provides detailed chemical and structural information on as-synthesized nanoparticle materials.
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