Publication | Closed Access
Influence of the Fe:Ni Ratio and Reaction Temperature on the Efficiency of (Fe<sub><i>x</i></sub>Ni<sub>1–<i>x</i></sub>)<sub>9</sub>S<sub>8</sub> Electrocatalysts Applied in the Hydrogen Evolution Reaction
178
Citations
51
References
2017
Year
Hydrogen Energy TechnologyMagnetic PropertiesHydrogen ProductionEngineeringChemistryHydrogen GenerationTheoretical ElectrochemistryNanoengineeringReaction TemperatureElectrode Reaction MechanismMaterials ScienceElectrode SurfaceSurface ElectrochemistryCatalysisHydrogenElectrochemistryFundamental ElectrochemistryNi RatioHydrogen Evolution ReactionFe4.5ni4.5s8 RockElectrochemical Surface Science
Inspired by our recent finding that Fe4.5Ni4.5S8 rock is a highly active electrocatalyst for HER, we set out to explore the influence of the Fe:Ni ratio on the performance of the catalyst. We herein describe the synthesis of (FexNi1–x)9S8 (x = 0–1) along with a detailed elemental composition analysis. Furthermore, using linear sweep voltammetry, we show that the increase in the iron or nickel content, respectively, lowers the activity of the electrocatalyst toward HER. Electrochemical surface area analysis (ECSA) clearly indicates the highest amount of active sites for a Fe:Ni ratio of 1:1 on the electrode surface pointing at an altered surface composition of iron and nickel for the other materials. Specific metal–metal interactions seem to be of key importance for the high electrocatalytic HER activity, which is supported by DFT calculations of several surface structures using the surface energy as a descriptor of catalytic activity. In addition, we show that a temperature increase leads to a significant decrease of the overpotential and gain in HER activity. Thus, we showcase the necessity to investigate the material structure, composition and reaction conditions when evaluating electrocatalysts.
| Year | Citations | |
|---|---|---|
Page 1
Page 1