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Advancing Alkaline Water Electrolysis Using Electrochemical Reconstruction-Driven Nickel Oxalate/Iron Oxide
Snigdha Kar1,2, Avishek Roy1, Nitik Bhandary1
1Department of Chemical Sciences, Indian Institute of Science Education and Research (IISER), Kolkata, Mohanpur, West Bengal, India.
Abstract:
The electrochemical reconstruction of heterostructures emerged as a striking strategy for crafting high-performance electrode materials to boost the alkaline oxygen evolution reaction (OER). This work reports the synthesis of nickel oxalate/hematite (NiOX/Fe2O3) heterostructure, exhibiting enhanced porosity, relocation of the electronic distribution, optimal hydrophilicity, and abundant Ni-Fe heterojunctions. Upon electrochemical reconstruction, the heterostructure transforms into Ni/Fe hydroxide-(oxy) hydroxide (named NiOX/Fe2O3-AP (after precondition)), demonstrating a significantly low overpotential of 234 ± 3 mV @10 mA/cm2 geo compared to individual activated counterparts. In addition, the NiOX/Fe2O3-AP shows swift reaction kinetics and 100 h stability across 10-100 mA/cm2 geo on redox-inactive carbon paper. The comprehensive electrochemical studies of NiOX/Fe2O3-AP reveal that improved active site density, higher intrinsic activity, and facile charge migration play a key role in the noted better activity. Furthermore, NiOX/Fe2O3-AP displayed 90 ± 4% Faradaic efficiency and improved geometric competency compared to the physical mixture, emphasizing the importance of Ni/Fe synergy. Moreover, the inferior prowess of NiFe-LDH and FeOOH compared to NiOX/Fe2O3-AP highlights the significance of the primitive Ni-Fe heterojunction and their subsequent electrochemical reconstruction to Ni/Fe hydroxide-(oxy) hydroxide. Finally, the electrolyzer was designed using NiOX/Fe2O3-AP as an anode and Pt/C as a cathode, which achieved 1.518 ± 0.006 V cell potential at 10 mA/cm2 geo, sustaining 80 h across 10-100 mA/cm2 geo.

