Ruthenium‐Decorated Halloysite Nanoclay for Efficient Hydrogen Generation from Sodium Borohydride Hydrolysis: Structural and Kinetic Insights

ABSTRACT Developing efficient and reusable catalysts for hydrogen production from chemical hydrides is essential for sustainable energy technologies. Herein, ruthenium (Ru)‐decorated halloysite nanoclay (Ru@HNC, ∼2 wt.% Ru) was synthesized via a simple wet precipitation–reduction method, preserving the natural nanotubular structure while enabling high Ru dispersion. Comprehensive characterization (XRD, TEM/EDX, XPS, and ICP‐OES) confirmed stable Ru impregnation and favorable metal–support interactions. The catalyst was evaluated for hydrogen generation from NaBH 4 hydrolysis. Kinetic studies revealed an apparent activation energy of 55.47 kJ mol −1 , with first‐order dependence on catalyst concentration. Under mild conditions, Ru@HNC exhibited a maximum TOF of 17,682 h −1 , demonstrating its high intrinsic catalytic activity. The catalyst maintained stable hydrogen production over 30 consecutive cycles, indicating good durability under repeated operation. Notably, only 0.4 mg of Ru generated a cumulative 120 mmol of H 2 , highlighting outstanding noble‐metal utilization efficiency. These findings demonstrate the potential of Ru@HNC as an efficient and reusable catalyst for NaBH 4 ‐based hydrogen production.

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Journal
ChemistrySelect
Published
2026-09-30
DOI
https://doi.org/10.1002/slct.74698
Primary Topic
Hydrogen Storage and Materials
Type
article
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article

Ruthenium‐Decorated Halloysite Nanoclay for Efficient Hydrogen Generation from Sodium Borohydride Hydrolysis: Structural and Kinetic Insights

Merve Akbayrak, Emine Kayhan, Büşra Ersoy, Seren Kola
ChemistrySelect
Hydrogen Storage and Materials
article

Ruthenium‐Decorated Halloysite Nanoclay for Efficient Hydrogen Generation from Sodium Borohydride Hydrolysis: Structural and Kinetic Insights

Merve Akbayrak, Emine Kayhan, Büşra Ersoy, Seren Kola
article en

Abstract

ABSTRACT Developing efficient and reusable catalysts for hydrogen production from chemical hydrides is essential for sustainable energy technologies. Herein, ruthenium (Ru)‐decorated halloysite nanoclay (Ru@HNC, ∼2 wt.% Ru) was synthesized via a simple wet precipitation–reduction method, preserving the natural nanotubular structure while enabling high Ru dispersion. Comprehensive characterization (XRD, TEM/EDX, XPS, and ICP‐OES) confirmed stable Ru impregnation and favorable metal–support interactions. The catalyst was evaluated for hydrogen generation from NaBH 4 hydrolysis. Kinetic studies revealed an apparent activation energy of 55.47 kJ mol −1 , with first‐order dependence on catalyst concentration. Under mild conditions, Ru@HNC exhibited a maximum TOF of 17,682 h −1 , demonstrating its high intrinsic catalytic activity. The catalyst maintained stable hydrogen production over 30 consecutive cycles, indicating good durability under repeated operation. Notably, only 0.4 mg of Ru generated a cumulative 120 mmol of H 2 , highlighting outstanding noble‐metal utilization efficiency. These findings demonstrate the potential of Ru@HNC as an efficient and reusable catalyst for NaBH 4 ‐based hydrogen production.

ChemistrySelectVol. 11(37)
Necmettin Erbakan University (TR)
Openalex Percentile: Top 26%
Hydrogen Storage and Materials
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Ruthenium‐Decorated Halloysite Nanoclay for Efficient Hydrogen Generation from Sodium Borohydride Hydrolysis: Structural and Kinetic Insights — Merve Akbayrak, Emine Kayhan, et al. · ChemistrySelect (2026) | TGRS Research Map | TGRS