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Graphene‐Tailored Thermodynamics and Kinetics to Fabricate Metal Borohydride Nanoparticles with High Purity and Enhanced Reversibility

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Due to their ultrahigh theoretical capacity, metal borohydrides are considered to be one of the most promising candidate hydrogen storage materials. Their application still suffers, however, from high operating temperature,… Click to show full abstract

Due to their ultrahigh theoretical capacity, metal borohydrides are considered to be one of the most promising candidate hydrogen storage materials. Their application still suffers, however, from high operating temperature, sluggish kinetics, and poor reversibility. Designing nanostructures is an effective way of addressing these issues, but seeking suitable approaches remains a big challenge. Here, a space-confined solidgas reaction to synthesize Mg(BH 4 ) 2 nanoparticles supported on grapheme is reported, which serves as the structural support for the dispersed Mg(BH 4 ) 2 nanoparticles. More notably, density functional theory calculations reveal that graphene could weaken both the MgH bonds of MgH 2 and BB bonds of B 2 H 6 , which could thermodynamically and kinetically facilitate the chemical transformation to synthesize Mg(BH 4 ) 2 with high purity. Because of the synergistic effects of both the significant reduction in particle size and the catalytic effect of graphene, an onset dehydrogenation temperature of ≈154 °C is observed for Mg(BH 4 ) 2 nanoparticles, and a complete dehydrogenation could be achieved at a temperature as low as 225 °C, with the formation of MgB 2 as the by-product. This work provides a new perspective to tailoring the thermodynamics and kinetics of chemical reactions toward the favorable synthesis of functional inorganic materials. Disciplines Engineering | Physical Sciences and Mathematics Publication Details Zhang, H., Xia, G., Zhang, J., Sun, D., Guo, Z. & Yu, X. (2018). Graphene-Tailored Thermodynamics and Kinetics to Fabricate Metal Borohydride Nanoparticles with High Purity and Enhanced Reversibility. Advanced Energy Materials, 8 (13), 1702975-1-1702975-9. Authors Hongyu Zhang, Guanglin Xia, Jian Zhang, Dalin Sun, Zaiping Guo, and Xuebin Yu This journal article is available at Research Online: http://ro.uow.edu.au/aiimpapers/3073

Keywords: reversibility; thermodynamics; graphene; thermodynamics kinetics; high purity

Journal Title: Advanced Energy Materials
Year Published: 2018

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