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May 22, 2026Small0 citationsOpen Access

Linking Pulse‐Duration‐Controlled Laser Nanostructuring to Oxygen Evolution Kinetics in Fe‐enriched NiOx Electrodes

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SKSandra Susan KoshyJRJyotisman RathAKAmirkianoosh Kiani

Key Points

  • The aim is to better understand how pulse-duration-controlled laser processing affects the oxygen evolution kinetics of NiOx electrodes.
  • Utilized pulse-duration-controlled ultra-short pulsed laser processing (ULPING) to fabricate nanostructured NiOx electrodes.
  • Varying pulse durations from 150 ps to 5 ns to manipulate electrode morphology and properties.
  • Conducted electrochemical measurements to assess performance and durability at 50 mA cm − 2 for 25 hours.
  • The low-pulse-duration electrode showcased lower overpotential and reduced charge-transfer resistance compared to others.
  • Enhanced Tafel slopes were observed, indicating improved reaction kinetics.
  • Stable operation confirmed with sustained performance and maintained nanostructural integrity throughout the test.

Abstract

ABSTRACT The oxygen evolution reaction (OER) remains the main kinetic and energetic bottleneck in alkaline water electrolysis, motivating scalable and durable electrocatalysts based on earth‐abundant materials. Nickel oxide systems, especially when transformed into NiOOH/NiFeOOH phases, are among the most promising non‐precious OER catalysts; however, conventional synthesis and binder‐based fabrication often restrict control over morphology, active‐site accessibility, and stability. Here, pulse‐duration‐controlled ultra‐short pulsed laser processing (ULPING) is established as a binder‐free and scalable route to directly fabricate nanostructured NiOx electrodes while systematically linking fabrication physics to OER kinetics. By varying pulse duration from 150 ps to 5 ns under otherwise identical irradiation, pulse duration is shown to govern ablation depth, nanostructure growth height, and hierarchical porosity. Shorter pulses produce rough, defect‐rich, broccoli‐like NiOx architectures with high nano‐area gain, whereas longer pulses lead to deeper craters and smoother, melt‐dominated morphologies. Modeling of transient temperature fields and ablation profiles explains the observed topographical evolution. Electrochemical measurements reveal a strong correlation between pulse‐duration‐controlled morphology, redox‐accessible Ni 2 + /Ni 3 + active‐site density, and OER performance. The low‐pulse‐duration electrode shows lower overpotential, reduced charge‐transfer resistance, favorable Tafel slopes, and further enhancement after Fe incorporation. Stable operation at 50 mA cm − 2 for 25 h confirms excellent durability and preserved nanostructural integrity.

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Cite This Study

Koshy et al. (2026) studied this question.

synapsesocial.com/papers/6a0ff312d674f7c03778b80fhttps://doi.org/10.1002/smll.73897
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