Electrochemically-deposited NiAl-layered double hydroxide/Ni electrocatalysts for enhanced magnetic water oxidation

IF 5.3 2区 地球科学 Q2 CHEMISTRY, PHYSICAL Applied Clay Science Pub Date : 2025-03-01 DOI:10.1016/j.clay.2025.107770
Leila Jafari Foruzin , Farzad Nasirpouri , Hongxing Dai
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Abstract

The water oxidation is a promising method for generating the renewable energy. However, the high catalytic performance using stable electrocatalysts in alkali solutions remains limited. In this work, we herein report a facile method of deposition of NiAl-LDH electrocatalyst that addresses the above challenge under a magnetic field. Water oxidation behavior of the new electrodeposited nickel‑aluminum layered double hydroxides (NiAl-LDH) on Ni electroplated on the Cu substrate and their remarkable improvements in electrocatalytic activity under the external magnetic fields in alkali solutions were studied. Ni films were first electroplated on the Cu substrate using the direct current (DC) method. NiAl-LDH was coated on the Ni/Cu substrates using the electrochemical deposition method, and their water oxidation performance was investigated in the KOH aqueous solution (0.1 mol⋅L−1) at 25 °C in the absence and presence of magnetic field. It was found that the oxygen evolution reaction (OER) over NiAl-LDH/Ni/Cu was improved when water oxidation was conducted under a magnetic field (μoH = 0.2 T) by decreasing the onset potential, Tafel slope, and overpotential or by increasing the current density (about 54 mA⋅cm−2). The effects were even more pronounced when the magnetic field was applied perpendicular to the electrode plane, reaching the OER overpotential of about 310 mV and the Tafel slop of about 142 mV⋅dec−1. We interpreted the effect of magnetic water electrolysis by the ordinary magnetohydrodynamics (MHD) which enhanced the mass transport, increased the limiting current density, and removed the blocking oxygen gas bubbles accumulated on the electrode surface. The present investigation provides a low-cost electrocatalyst system for efficient electrochemical water oxidation.

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来源期刊
Applied Clay Science
Applied Clay Science 地学-矿物学
CiteScore
10.30
自引率
10.70%
发文量
289
审稿时长
39 days
期刊介绍: Applied Clay Science aims to be an international journal attracting high quality scientific papers on clays and clay minerals, including research papers, reviews, and technical notes. The journal covers typical subjects of Fundamental and Applied Clay Science such as: • Synthesis and purification • Structural, crystallographic and mineralogical properties of clays and clay minerals • Thermal properties of clays and clay minerals • Physico-chemical properties including i) surface and interface properties; ii) thermodynamic properties; iii) mechanical properties • Interaction with water, with polar and apolar molecules • Colloidal properties and rheology • Adsorption, Intercalation, Ionic exchange • Genesis and deposits of clay minerals • Geology and geochemistry of clays • Modification of clays and clay minerals properties by thermal and physical treatments • Modification by chemical treatments with organic and inorganic molecules(organoclays, pillared clays) • Modification by biological microorganisms. etc...
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