AI Article Synopsis

  • The study explores electric power generation through the electrooxidation of ethylene glycol (EG) using various Fe-group nanoalloy catalysts in alkaline conditions.
  • The effectiveness of binary and monometallic catalysts, including FeCo/C, Ni/C, and others, was analyzed through electrochemical methods, revealing the importance of cobalt for high catalytic activity and the role of nickel in preventing catalyst degradation.
  • The findings indicate that the FeCoNi/C catalyst shows the best performance for producing oxalic acid and powering a direct EG alkaline fuel cell, providing insights for developing efficient Fe-based electrocatalysts.

Article Abstract

We demonstrate electric power generation via the electrooxidation of ethylene glycol (EG) on a series of Fe-group nanoalloy (NA) catalysts in alkaline media. A series of Fe-group binary NA catalysts supported on carbon (FeCo/C, FeNi/C, and CoNi/C) and monometallic analogues (Fe/C, Co/C, and Ni/C) were synthesized. Catalytic activities and product distributions on the prepared Fe-group NA catalysts in the EG electrooxidation were investigated by cyclic voltammetry and chronoamperometry, and compared with those of the previously reported FeCoNi/C, which clarified the contributory factors of the metal components for the EG electrooxidation activity, C2 product selectivity, and catalyst durability. The Co-containing catalysts, such as Co/C, FeCo/C, and FeCoNi/C, exhibit relatively high catalytic activities for EG electrooxidation, whereas the catalytic performances of Ni-containing catalysts are relatively low. However, we found that the inclusion of Ni is a requisite for the prevention of rapid degradation due to surface modification of the catalyst. Notably, FeCoNi/C shows the highest selectivity for oxalic acid production without CO2 generation at 0.4 V vs. the reversible hydrogen electrode (RHE), resulting from the synergetic contribution of all of the component elements. Finally, we performed power generation using the direct EG alkaline fuel cell in the presence of the Fe-group catalysts. The power density obtained on each catalyst directly reflected the catalytic performances elucidated in the electrochemical experiments for the corresponding catalyst. The catalytic roles and alloying effects disclosed herein provide information on the design of highly efficient electrocatalysts containing Fe-group metals.

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Source
http://dx.doi.org/10.1039/c5cp00954eDOI Listing

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