Metal-loaded polyol-montmorillonite with improved affinity towards hydrogen

被引:17
作者
Bouazizi, N. [1 ,2 ]
Barrimo, D. [1 ]
Nousir, S. [1 ]
Ben Slama, R. [2 ]
Shiao, T. C. [1 ]
Roy, R. [1 ]
Azzouz, A. [1 ]
机构
[1] Univ Quebec, Dept Chem, Nanoqam, Montreal, PQ H3C 3P8, Canada
[2] ENIG Univ Gabes, Environm Catalysis & Anal Methods Lab, Gabes, Tunisia
关键词
Copper; Palladium; Dendrimer H30; Montmorillonite; Hydrogen; CARBON-DIOXIDE; ORGANO-MONTMORILLONITES; STORAGE MATERIALS; NANOCOMPOSITES; MATRICES; HYBRID; MGH2; CLAY; OIL;
D O I
10.1016/j.joei.2016.10.002
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Metal-organoclays (MOC) were prepared through incorporation of Boltorn polyol dendrimer H30 in Na+-exchanged montmorillonite (NaMt), followed by in-situ dispersion of Cu-0 and Pd-0 nanoparticles (CuNPs and PdNPs). The organoclays displayed high CO2 retention capacity (CRC) of 3.6-11.1 mu mol/g, but metal incorporation induced a significant increase of hydrogen uptake up to 51.8-508.2 micmol/g at the expense of the CRC. Thermal programmed desorption and FT-IR investigations revealed strong interactions with CO2 before metal incorporation. These interactions markedly depleted in the presence of CuNPs and PdNPs. This was regarded as a precise indicator of the appreciable metal stabilization within the organic entanglement, due to enhancements of -HO:Cu-0 and -HO:Pd-0 interactions at the expense of -HO:CO2 carbonate-like association. The CO2 and H-2 retention capacities (CRC and HRC, respectively) were found to strongly correlate to the number of OH groups of the dendritic moiety incorporated. Hydrogen retention appears to involve mainly physical interactions as supported by easy gas release between 20 degrees C and 75 degrees C or even at room temperature under vacuum. This demonstrates unequivocally the reversible capture of hydrogen. The increase of the hydrogen uptake with increasing contact time provides evidence of the occurrence of diffusion phenomena. This was not observed with CO2 before metal incorporation, suggesting a structure compaction that improves metal stabilization. This opens new prospects for hydrogen storage via truly reversible capture on low cost clay materials and biodegradable hyperbranched macromolecules deriving from plants. (C) 2016 Energy Institute. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:110 / 119
页数:10
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