Hollow nickel-coated silica microspheres containing rhodium nanoparticles for highly selective production of hydrogen from hydrous hydrazine

The synthesis of hollow nickel-coated silica microspheres containing rhodium nanoparticles (NPs) (Rh/Ni@SiO 2 ) via thermal hydrolysis of urea using core–shell silica microspheres as templates is described. This dissolution-and-deposition method using urea as a precipitating agent provided uniform h...

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Veröffentlicht in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2014-01, Vol.2 (44), p.18929-18937
Hauptverfasser: Yoo, Jung Bo, Kim, Han Sol, Kang, Seung Hee, Lee, Byeongno, Hur, Nam Hwi
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Sprache:eng
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Zusammenfassung:The synthesis of hollow nickel-coated silica microspheres containing rhodium nanoparticles (NPs) (Rh/Ni@SiO 2 ) via thermal hydrolysis of urea using core–shell silica microspheres as templates is described. This dissolution-and-deposition method using urea as a precipitating agent provided uniform hollow microspheres composed of amorphous Ni(OH) 2 and silica (SiO 2 ) layers along with small amounts of Rh species even without etching; these hollow microspheres transformed to crystalline Rh/Ni@SiO 2 microspheres after annealing at 750 °C under a reducing atmosphere. The formation of a hollow structure is dependent on the concentration of urea and unique dissolution behavior of the core–shell silica. The bimetallic Rh/Ni@SiO 2 microsphere with a low Rh content (6.35 wt%) is a highly active catalyst for complete dissociation of hydrous hydrazine into hydrogen and nitrogen. Complete release of hydrogen from hydrous hydrazine was accomplished at 25 °C with a H 2 selectivity of 99.4% and turnover number of 66. The used Rh/Ni@SiO 2 catalyst, which was recovered by a magnet, was reused in subsequent reactions with virtually identical activity.
ISSN:2050-7488
2050-7496
DOI:10.1039/C4TA03550J