4.7 Article

Nickel and cobalt co-doped MnCO3 nanostructures for water oxidation reaction

期刊

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 47, 期 72, 页码 30810-30818

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2021.07.229

关键词

MnCO 3; Rhombohedral; Oxygen evolution reaction; Hydrogen; Catalyst

资金

  1. UGC-SAP, DST-FIST, DST-PURSE, MHRD-RUSA

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In this study, Ni and Co co-doped MnCO3 nanostructures were successfully synthesized by a co-precipitation technique. The analysis confirmed the presence of Ni and Co elements, and the doped nanostructures exhibited enhanced catalytic performance and activity.
Nowadays, electrochemical water splitting is a securing alternative for clean-energy pro-duction and also an efficient expertise for oxygen and hydrogen production. Compared to single metal-based electrocatalyst, multi metal-based electrocatalyst offers more active sites, high surface area, and distinctive nanostructure for effective water oxidation. In this work, nickel and cobalt co-doped MnCO3 was successfully synthesized via a facile co-precipitation technique. Rhombohedral crystal phase of MnCO3 nanostructures and its crystallite sizes were thoroughly analyzed by the XRD spectra. Incorporation of doping element such as Ni and Co in MnCO3 nanostructures exhibited two different morphologies which enhanced the catalytic performance of the prepared samples. Large surface area and porosity of the nanomaterials improved the stability and activity of the prepared MnCO3 nanostructures. EDX analysis confirmed Mn, C, O, Ni and Co elements in stoichometric ratio. Moreover, the specific capacitance of (Ni, Co) co-doped MnCO3 nanostructures attained 581 F/g while the other electrodes attained only 207, 332 and 175 F/g respectively. A small Tafel slope with low overpotential of Ni, Co co-doped MnCO3 nanostructures was 20.2 mV/dec and 293 mV respectively. Therefore, the prepared electrocatalysts of Ni, Co co-doped MnCO3 nanostructure is one of the attractive anode material for high performance energy conversion applications. (c) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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