Tunable Fe-Ni metal-organic framework electrocatalysts via post-synthetic iron incorporation for alkaline oxygen evolution

The oxygen evolution reaction (OER) remains a major kinetic bottleneck in sustainable hydrogen production via water electrolysis, driving the need for low-cost alternatives to noble-metal catalysts. Here, we report a facile, room-temperature, spontaneous cation-exchange strategy to incorporate iron into amorphous nickel-benzene-1,3,5-tricarboxylate (Ni-BTC), thereby enhancing its OER activity. By systematically varying the immersion time (6–48 h) and nominal Fe loading (5.47 wt, 9.02 wt, 15.38 wt%), we identified a volcano-type dependence of OER activity in both parameters. Specifically, activity increases with immersion time until 20 h, then declines at 48 h. Similarly, it peaks at an Fe loading of 9.02 wt% (48 mg) before dropping sharply at 15.38 wt% (88 mg). This decline at higher loadings is caused by blocking layers, as evidenced by the disappearance of Ni 3+ species and the emergence of an O 1 s shake-up satellite, which hinder charge transfer. The best performing (9.02 wt%) 48-Fe/Ni-BTC (20 h) catalyst achieves an overpotential of ~ 281.3 mV, outperforming the benchmark IrO 2 (~ 359.6 mV) and amorphous Ni-BTC (~ 355.8 mV). This facile, room-temperature, controlled doping route offers a practical strategy for enhancing Ni-based MOF electrocatalysts, though Operando structural evolution and post-OER characterization remain to be established. Ultimately, these findings provide a controlled framework for the rational design of MOF-based OER catalysts towards sustainable hydrogen production.

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Publication Details

Journal
Materials for Renewable and Sustainable Energy
Published
2026-09-28
DOI
https://doi.org/10.1007/s40243-026-00399-x
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
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article

Tunable Fe-Ni metal-organic framework electrocatalysts via post-synthetic iron incorporation for alkaline oxygen evolution

Jaka Sunarso, Basil T. Wong, Gerald Ensang Timuda, Marvel Guntur Wijanarko et al.
Materials for Renewable and Sustainable Energy
Electrocatalysts for Energy Conversion
article

Tunable Fe-Ni metal-organic framework electrocatalysts via post-synthetic iron incorporation for alkaline oxygen evolution

Jaka Sunarso, Basil T. Wong, Gerald Ensang Timuda, Marvel Guntur Wijanarko, María Yuliana, Han Bing Chua, Agus Saptoro, Yusak Hartanto, Putu Hadi Setyarini, Deni Shidqi Khaerudini, Jiuan Jing Chew, Suryadi Ismadji
article en

Abstract

The oxygen evolution reaction (OER) remains a major kinetic bottleneck in sustainable hydrogen production via water electrolysis, driving the need for low-cost alternatives to noble-metal catalysts. Here, we report a facile, room-temperature, spontaneous cation-exchange strategy to incorporate iron into amorphous nickel-benzene-1,3,5-tricarboxylate (Ni-BTC), thereby enhancing its OER activity. By systematically varying the immersion time (6–48 h) and nominal Fe loading (5.47 wt, 9.02 wt, 15.38 wt%), we identified a volcano-type dependence of OER activity in both parameters. Specifically, activity increases with immersion time until 20 h, then declines at 48 h. Similarly, it peaks at an Fe loading of 9.02 wt% (48 mg) before dropping sharply at 15.38 wt% (88 mg). This decline at higher loadings is caused by blocking layers, as evidenced by the disappearance of Ni 3+ species and the emergence of an O 1 s shake-up satellite, which hinder charge transfer. The best performing (9.02 wt%) 48-Fe/Ni-BTC (20 h) catalyst achieves an overpotential of ~ 281.3 mV, outperforming the benchmark IrO 2 (~ 359.6 mV) and amorphous Ni-BTC (~ 355.8 mV). This facile, room-temperature, controlled doping route offers a practical strategy for enhancing Ni-based MOF electrocatalysts, though Operando structural evolution and post-OER characterization remain to be established. Ultimately, these findings provide a controlled framework for the rational design of MOF-based OER catalysts towards sustainable hydrogen production.

Materials for Renewable and Sustainable Energy
Universitas Katolik Widya Mandala Surabaya (ID), Curtin University Sarawak (MY), University of Brawijaya (ID), Curtin University (AU), National Nuclear Energy Agency of Indonesia (ID), National Research and Innovation Agency (ID), Swinburne University of Technology Sarawak Campus (MY)
Responsible consumption and production
Openalex Percentile: Top 30%
Electrocatalysts for Energy Conversion
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