Crystalline porous CoLa-LDH as efficient support of Co2B for hydrogen generation via NaBH4 hydrolysis

Developing high-performance, recyclable catalysts for NaBH 4 hydrolysis remains a challenge for hydrogen production. Herein, we first prepared Co 2 B nanoparticles supported on CoLa layered double hydroxide/carbon nanofibers (CoLa-LDH/CF), which exhibits a high initial hydrogen generation rate of 9954.4 mL min −1 g −1 and a low activation energy of 37.4 kJ mol −1 . The electronegativity mismatch induced by La optimizes the interfacial charge distribution and modulates the electronic state of the active sites, thereby enhancing the catalytic performance. Subsequently, a stable aerogel network was constructed from polyvinyl alcohol (PVA), cellulose nanofibers (CNF), and CF via hydrogen bonding during the freeze-thaw process, with active components uniformly dispersed throughout the network. The aerogel catalyst delivers an initial hydrogen generation rate of 7550.8 mL min −1 ·g −1 , a 75.85% catalytic activity retention ratio, and only 0.65% mass loss. This study provides a promising design strategy for integrated catalysts, with long-term cycling durability to be investigated in future work.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-10-09
DOI
https://doi.org/10.1016/j.ijhydene.2026.158024
Primary Topic
Hydrogen Storage and Materials
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article
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article

Crystalline porous CoLa-LDH as efficient support of Co2B for hydrogen generation via NaBH4 hydrolysis

Puxuan Yan, Sun Lixian, Lei Cheng, Zhe Tan et al.
International Journal of Hydrogen Energy
Hydrogen Storage and Materials
article

Crystalline porous CoLa-LDH as efficient support of Co2B for hydrogen generation via NaBH4 hydrolysis

Puxuan Yan, Sun Lixian, Lei Cheng, Zhe Tan, Yufeng Wang
article en

Abstract

Developing high-performance, recyclable catalysts for NaBH 4 hydrolysis remains a challenge for hydrogen production. Herein, we first prepared Co 2 B nanoparticles supported on CoLa layered double hydroxide/carbon nanofibers (CoLa-LDH/CF), which exhibits a high initial hydrogen generation rate of 9954.4 mL min −1 g −1 and a low activation energy of 37.4 kJ mol −1 . The electronegativity mismatch induced by La optimizes the interfacial charge distribution and modulates the electronic state of the active sites, thereby enhancing the catalytic performance. Subsequently, a stable aerogel network was constructed from polyvinyl alcohol (PVA), cellulose nanofibers (CNF), and CF via hydrogen bonding during the freeze-thaw process, with active components uniformly dispersed throughout the network. The aerogel catalyst delivers an initial hydrogen generation rate of 7550.8 mL min −1 ·g −1 , a 75.85% catalytic activity retention ratio, and only 0.65% mass loss. This study provides a promising design strategy for integrated catalysts, with long-term cycling durability to be investigated in future work.

International Journal of Hydrogen EnergyVol. 282
Guangxi Normal University (CN), Guilin University of Electronic Technology (CN)
Openalex Percentile: Top 28%
Hydrogen Storage and Materials
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Crystalline porous CoLa-LDH as efficient support of Co2B for hydrogen generation via NaBH4 hydrolysis — Puxuan Yan, Sun Lixian, et al. · International Journal of Hydrogen Energy (2026) | TGRS Research Map | TGRS