Electrospun CSNi3C/Fe3C@C/NFs-600 Embedded in Porous Carbon shell as an Efficient Electrocatalyst for Water Splitting at Industrial Driven Current Density

IF 5.4 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Dhanasingh Thiruvengadam, Ravichandran Nithiasri, Muthukumaran Sangamithirai, Kaliyamoorthy Santhosh Kumar and Jayaraman Jayabharathi*, 
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Abstract

Pure-phase carbides suffer from mismatch in H2 adsorption–desorption kinetics. Herein, we report on heterostructured CSNi3C/Fe3C@C/NFs-600 consisting of Co3C and Ni3C nanofibers embedded in a graphitic carbon shell synthesized by the electrospinning-magnesiothermic reduction (MTR) process. The Ni3C/Fe3C heterojunction core is encapsulated with a porous carbon shell having a large interfacial area, high conductivity, and more exposed active sites, which resulted in moderate hydrogen adsorption energy (EHads), increased desorption kinetics, and intriguingly efficient electron transfer. CSNi3C/Fe3C@C/NFs-600 exhibits low overpotentials (HER/OER) of 115/191 mV with a small Tafel slope of 56/53 mV dec–1 and a stability of over 60 h. The activation energy was calculated for electrolysis using CSNi3C/Fe3C@C/NFs-600 at 20.00 kJ/mol. The integrated area/number of active sites of CSNi3C/Fe3C@C/NFs-600 (4.60 × 10–5 AV/5.730 × 1016) confirmed MOOH* formation. The superaerophobicity was substantiated by fast gas bubble evolution from the catalyst surface. Using CSNi3C/Fe3C@C/NFs-600, we have produced H2 efficiently with a lesser power consumption of 651.3 LH2 kW h–1. The bifunctional electrolyzer of CSNi3C/Fe3C@C/NFs-600 (1.58 V) released vigorous gas bubbles compared to the benchmark electrolyzer of IrO2/Pt/C/NF (1.64 V) with great stability in alkaline solution. The synthetic strategy with catalyst properties demonstrated here provides perceptions into the future growth of robust bifunctional catalysts for scalable water splitting.

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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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