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Crystalline FeNiCoPx Nanoparticles Dispersed into an Amorphous FeNiCoOx Matrix as a Bifunctional Electrocatalyst for
Ashish K Yadav1, Jeyakumar Karthikeyan2, Harish Hirani3
1Department of Energy & Human Sciences, Rajiv Gandhi Institute of Petroleum Technology (RGIPT) - Jais, Amethi 229304, Uttar Pradesh, India.
Abstract:
Amorphous-crystalline interfaces are one of the most favorable designs for improved oxygen evolution reaction (OER) and hydrogen evolution reaction (HER), as interfaces offer enhanced and variable catalytic centers. Herein, an efficient and robust bifunctional electrocatalyst, FeNiCoPx/FeNiCoOx/NF, is reported with amorphous-crystalline interfaces synthesized by integrating nanocrystalline FeNiCoPx with amorphous FeNiCoOx sheets evolved on nickel foam having a two-step controlled hydrothermal-phosphidation process. The FeNiCoPx/FeNiCoOx/NF demonstrated excellent OER and HER activity having overpotentials of ∼220 and 120 mV to reach 100 mA cm-2 current density having small Tafel slopes of 42 and 75 mV dec-1, respectively. This also adequately worked for seawater electrolysis. Bifunctional FeNiCoPx/FeNiCoOx/NF was assembled in an alkaline seawater electrolyzer, an ampere-level current density was achieved at a cell potential of 2.06 V, placing it among the most effective seawater electrocatalysts. Experimental and theoretical investigations revealed a strong coupling between nanocrystalline FeNiCoPx particles and amorphous FeNiCoOx nanosheets via alteration of d-band centers. The synthetic strategy and crystalline-amorphous interface regulations in this work provide directions for constructing highly efficient and stable bifunctional electrodes for commercial alkaline water electrolysis.
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