Nanoarchitectonic mesoporous Ni₁–ₓMnₓO electrodes: Charge capacity and oxygen evolution reaction electrocatalysis in alkaline media

buir.contributor.authorAmirzhanova Katırcı, Assel
buir.contributor.authorKarakaya Durukan, Irmak
buir.contributor.authorDağ, Ömer
buir.contributor.orcidAmirzhanova Katırcı, Assel|0009-0006-5151-9330
buir.contributor.orcidDağ, Ömer|0000-0002-1129-3246
buir.contributor.orcidKarakaya Durukan, Irmak|0009-0006-9187-9138
dc.citation.epage3177
dc.citation.issueNumber5
dc.citation.spage3162
dc.citation.volumeNumber8
dc.contributor.authorAmirzhanova Katırcı, Assel
dc.contributor.authorKarakaya Durukan, Irmak
dc.contributor.authorDağ, Ömer
dc.date.accessioned2026-03-17T13:48:25Z
dc.date.available2026-03-17T13:48:25Z
dc.date.issued2025-02-26
dc.departmentDepartment of Chemistry
dc.departmentInstitute of Materials Science and Nanotechnology (UNAM)
dc.description.abstractStable electroactive mesoporous Ni₁–ₓMnₓO thin-film electrodes are fabricated over FTO and graphite rods using the molten-salt-assisted self-assembly (MASA) method. Ethanol solutions of two salts ([Mn(H₂O)₄](NO₃)₂ and [Ni(H₂O)₆](NO₃)₂ with varying Ni(II)/Mn(II) mole ratios, 1.0 to 0.1) and two surfactants (C₁₂H₂₅(OCH₂CH₂)₁₀OH, C₁₂E₁₀ and C₁₆H₃₃N(CH₃)₃Br, CTAB) are coated over a conducting substrate (FTO and graphite rod) to assemble the salt–surfactant lyotropic liquid crystalline (LLC) mesophase that is calcined to obtain a mesoporous Ni₁–ₓMnₓO thin-film electrode. Ni₁–ₓMnₓO is a solid solution up to x of 0.7, but it transforms the NiMnO₃, Mn₃O₄, and Mn₂O₃ phases in the samples with x values of 0.5 and higher at higher annealing temperatures. FTO and graphite-coated (F-Ni₁–ₓMnₓO and G-Ni₁–ₓMnₓO) electrodes have a high charge capacity, but the FTO-coated electrodes are unstable and undergo degradation. They display an increasing charge capacity during early CV cycles (or consecutive GCD measurements) but decay in capacity over long-term experiments. The G-Ni₁–ₓMnₓO electrodes are more robust and display high charge capacities (958 C/g in pure NiO and 720 C/g in Ni₀.₉Mn₀.₁O, close to the theoretical values). During the electrochemical tests, both pure NiO and Ni₁–ₓMnₓO electrodes transform to core-NiO/shell-Ni(OH)₂ and core-Ni₁–ₓMnₓO/shell-Ni(OH)₂ structures on the pore walls, respectively. The shell thickness decreases from 2.0 nm in pure NiO to 1.1 nm with 10% Mn(II) addition in Ni₀.₉Mn₀.₁O at 350 °C. Moreover, the shell thickness is also dependent on the pore-wall thickness that increases exponentially with annealing temperature (from 4.4 to 27.1 nm in pure NiO and 4.0 to 12 nm in Ni₀.₉Mn₀.₁O by increasing the temperature from 350 to 500 °C, respectively). It increases from 2.0 to 4.5 nm in pure NiO and 1.1 to 1.5 nm in the Ni₀.₉Mn₀.₁O electrodes at those temperatures, respectively, and determines the charge capacity of the electrodes. The addition of manganese significantly improves the stabilities of the electrodes but almost has no effect on the overpotential of the electrodes. Even though the charge capacity depends on the annealing temperature, OER performance almost shows no effect on the annealing temperature.
dc.identifier.doi10.1021/acsaem.4c03305
dc.identifier.eissn2574-0962
dc.identifier.urihttps://hdl.handle.net/11693/118938
dc.language.isoEnglish
dc.publisherAmerican Chemical Society
dc.relation.isversionofhttps://dx.doi.org/10.1021/acsaem.4c03305
dc.rightsCC BY-NC-ND 4.0 DEED (Attribution-NonCommercial-NoDerivatives 4.0 International)
dc.rights.urihttps://creativecommons.org/licenses/by-nc-nd/4.0/
dc.source.titleACS Applied Energy Materials
dc.subjectMolten-salt-assistedself-assembly
dc.subjectMesoporous materials
dc.subjectNickel manganese oxide
dc.subjectNickel hydroxide
dc.subjectCharge capacity
dc.subjectOxygen evolution electrocatalysis
dc.titleNanoarchitectonic mesoporous Ni₁–ₓMnₓO electrodes: Charge capacity and oxygen evolution reaction electrocatalysis in alkaline media
dc.typeArticle

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