Iron-modulated NiS derived from a Ni-MOF-based Prussian blue analogue for a highly efficient oxygen evolution reaction.

Dalton Trans

Key Laboratory of Eco-functional Polymer Materials of the Ministry of Education, Key Laboratory of Eco-environmental Polymer Materials of Gansu Province, College of Chemistry and Chemical Engineering, Northwest Normal University, Lanzhou 730070, China.

Published: November 2022

AI Article Synopsis

  • Scientists are trying to create better materials to help save energy and the environment by using non-precious metals instead of expensive ones for a process called the oxygen evolution reaction (OER).
  • They developed a new method to make a special material called iron-modulated NiS, which is built on nickel foam and helps improve the efficiency of this reaction.
  • Tests showed that this new material works really well, needing less energy to create a strong electrical current, and it stays stable during long use, making it a good option for future energy solutions.

Article Abstract

Developing efficient, environmentally friendly and cost-effective non-precious metal electrocatalysts for the oxygen evolution reaction (OER) is essential to alleviate the energy crisis and environmental pollution. Herein, we report a simple and practical method to prepare non-precious metal catalysts, namely iron-modulated NiS (Fe-NiS/NF) on nickel foam, by growing a Ni-MOF directly on 3D porous conductive nickel foam, followed by the formation of Ni-MOF-based Prussian blue analogs (Ni-MOF@PBA) cation exchange reactions, which are further sulfidated to iron-modulated NiS. Based on a series of characterization results, it is confirmed that iron acts as a modulator at the Ni active site, leading to electron depletion, thereby modulating the electron spin state and optimizing the binding energy of key reaction intermediates, resulting in highly exposed active sites and acceleration of OER reaction kinetics. The synthesized Fe-NiS/NF exhibits excellent activity in alkaline media, which needs overpotentials of only 232 mV and 287 mV to drive current densities of 10 mA cm and 50 mA cm, respectively. Additionally, Fe-NiS/NF exhibits excellent stability for at least 24 h during the OER process. This work presents a rational design and synthesis of transition metal-based catalysts with nanocone structures, providing a new strategy for assembling advanced materials and insights for exploring various energy storage and conversion systems.

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Source
http://dx.doi.org/10.1039/d2dt02729aDOI Listing

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