Monopulse electrodeposited nanoflower-like Co-Mo-P/Cu catalyst for efficient hydrogen production from hydrolysis of sodium borohydride: Synergistic mechanism and electrochemical reactivation

High-performance catalysts for hydrogen generation from sodium borohydride (NaBH 4 ) hydrolysis are pivotal for portable energy applications. In this work, a hierarchical Co-Mo-P/Cu catalyst with spherical nanoflower structure was synthesized via a facile one-step monopulse flow electrodeposition method. The as-prepared catalyst exhibits exceptional catalytic activity, achieving a high hydrogen generation rate (HGR) achieved 15.5 L min −1 ·g −1 cat at 50 °C with a remarkably activation energy (E a ) of 42.16 kJ mol −1 . Density Functional Theory (DFT) calculations elucidate that the synergistic effect of Co, Mo and P optimizes the adsorption of H atoms and significantly lowers the energy barrier for the rate-determining dehydrogenation step (NaBH 3 to NaBH 2 ). Mechanism analysis further reveals that the formation of *NaBOH intermediates is energetically more favorable than *NaOBH due to the easier cleavage of B-H bonds over H-O bonds. To address the activity decay caused by NaBO 2 accumulation on the active sites, an innovative electrochemical reactivation strategy was developed. This approach effectively recovers the catalyst's surface active sites through the electroreduction NaBO 2 , substantially extending its operational lifespan. This work provides a new perspective on designing highly active and regenerable transition metal catalysts for efficient hydrogen storage.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-10-07
DOI
https://doi.org/10.1016/j.ijhydene.2026.157924
Primary Topic
Hydrogen Storage and Materials
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article
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article

Monopulse electrodeposited nanoflower-like Co-Mo-P/Cu catalyst for efficient hydrogen production from hydrolysis of sodium borohydride: Synergistic mechanism and electrochemical reactivation

Yongsheng Wei, Li Sun, Xiaofeng Wu, Tianyu Yu et al.
International Journal of Hydrogen Energy
Hydrogen Storage and Materials
article

Monopulse electrodeposited nanoflower-like Co-Mo-P/Cu catalyst for efficient hydrogen production from hydrolysis of sodium borohydride: Synergistic mechanism and electrochemical reactivation

Yongsheng Wei, Li Sun, Xiaofeng Wu, Tianyu Yu, Jinrong Huo
article en

Abstract

High-performance catalysts for hydrogen generation from sodium borohydride (NaBH 4 ) hydrolysis are pivotal for portable energy applications. In this work, a hierarchical Co-Mo-P/Cu catalyst with spherical nanoflower structure was synthesized via a facile one-step monopulse flow electrodeposition method. The as-prepared catalyst exhibits exceptional catalytic activity, achieving a high hydrogen generation rate (HGR) achieved 15.5 L min −1 ·g −1 cat at 50 °C with a remarkably activation energy (E a ) of 42.16 kJ mol −1 . Density Functional Theory (DFT) calculations elucidate that the synergistic effect of Co, Mo and P optimizes the adsorption of H atoms and significantly lowers the energy barrier for the rate-determining dehydrogenation step (NaBH 3 to NaBH 2 ). Mechanism analysis further reveals that the formation of *NaBOH intermediates is energetically more favorable than *NaOBH due to the easier cleavage of B-H bonds over H-O bonds. To address the activity decay caused by NaBO 2 accumulation on the active sites, an innovative electrochemical reactivation strategy was developed. This approach effectively recovers the catalyst's surface active sites through the electroreduction NaBO 2 , substantially extending its operational lifespan. This work provides a new perspective on designing highly active and regenerable transition metal catalysts for efficient hydrogen storage.

International Journal of Hydrogen EnergyVol. 282
Jiangsu Normal University (CN), Northwestern Polytechnical University (CN), Xi'an Technological University (CN)
Openalex Percentile: Top 27%
Hydrogen Storage and Materials
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Monopulse electrodeposited nanoflower-like Co-Mo-P/Cu catalyst for efficient hydrogen production from hydrolysis of sodium borohydride: Synergistic mechanism and electrochemical reactivation — Yongsheng Wei, Li Sun, et al. · International Journal of Hydrogen Energy (2026) | TGRS Research Map | TGRS