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Bimetallic NiCo Nanoparticles Embedded in Organic Group Functionalized Mesoporous Silica for Efficient Hydrogen Production from Ammonia Borane Hydrolysis.

Authors :
Deka, Juti Rani
Saikia, Diganta
Lu, Ning-Fang
Chen, Chieh-Yu
Kao, Hsien-Ming
Yang, Yung-Chin
Source :
Nanomaterials (2079-4991); Nov2024, Vol. 14 Issue 22, p1818, 21p
Publication Year :
2024

Abstract

In this study, bimetallic NiCo nanoparticles (NPs) were encapsulated within the mesopores of carboxylic acid functionalized mesoporous silica (CMS) through the chemical reduction approach. Both NaBH<subscript>4</subscript> and NH<subscript>3</subscript>BH<subscript>3</subscript> were used as reducing agents to reduce the metal ions simultaneously. The resulting composite was used as a catalyst for hydrolysis of ammonia borane (NH<subscript>3</subscript>BH<subscript>3</subscript>, AB) to produce H<subscript>2</subscript>. The bimetallic NiCo NPs supported on carboxylic group functionalized mesoporous silica, referred to as Ni<subscript>x</subscript>Co<subscript>100−x</subscript>@CMS, exhibited significantly higher catalytic activity for AB hydrolysis compared to their monometallic counterparts. The remarkable activity of Ni<subscript>x</subscript>Co<subscript>100−x</subscript>@CMS could be ascribed to the synergistic contributions of Ni and Co, redox reaction during the hydrolysis, and the fine-tuned electronic structure. The catalytic performance of the Ni<subscript>x</subscript>Co<subscript>100−x</subscript>@CMS nanocatalyst was observed to be dependent on the composition of Ni and Co. Among all the compositions investigated, Ni<subscript>40</subscript>Co<subscript>60</subscript>@CMS demonstrated the highest catalytic activity, with a turn over frequency (TOF) of 18.95 mol<subscript>H2</subscript>min<superscript>−1</superscript>mol<subscript>catalyst</subscript><superscript>−1</superscript> and H<subscript>2</subscript> production rate of 8.0 L min<superscript>−1</superscript>g<superscript>−1</superscript>. The activity of Ni<subscript>40</subscript>Co<subscript>60</subscript>@CMS was approximately three times greater than that of Ni@CMS and about two times that of Co@CMS. The superior activity of Ni<subscript>40</subscript>Co<subscript>60</subscript>@CMS was attributed to its finely-tuned electronic structure, resulting from the electron transfer of Ni to Co. Furthermore, the nanocatalyst exhibited excellent durability, as the carboxylate group in the support provided a strong metal–support interaction, securely anchoring the NPs within the mesopores, preventing both agglomeration and leakage. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20794991
Volume :
14
Issue :
22
Database :
Complementary Index
Journal :
Nanomaterials (2079-4991)
Publication Type :
Academic Journal
Accession number :
181205388
Full Text :
https://doi.org/10.3390/nano14221818