| Literature DB >> 28039806 |
Aruni Shajkumar1, Bhanu Nandan2, Sunita Sanwaria3, Victoria Albrecht1, Marcin Libera4, Myong-Hoon Lee5, Gudrun Auffermann6, Manfred Stamm7, Andriy Horechyy8.
Abstract
Catalytically active Au@hollow-SiO2 particles embedded in porous silica support (Au@hollow-SiO2@PSS) were prepared by using spherical micelles from poly(styrene)-block-poly(4-vinyl pyridine) block copolymer as a sacrificial template. Drastic increase of the shell porosity was observed after pyrolytic removal of polymeric template because the stretched poly(4-vinyl pyridine) chains interpenetrating with silica shell acted as an effective porogen. The embedding of Au@hollow-SiO2 particles in porous silica support prevented their fusion during pyrolysis. The catalytic activity of Au@hollow-SiO2@PSS was investigated using a model reaction of catalytic reduction of 4-nitrophenol and reductive degradation of Congo red azo-dye. Significantly, to the best of our knowledge, Au@hollow-SiO2@PSS catalyst shows the highest activity among analogous systems reported till now in literature. Such high activity was attributed to the presence of multiple pores within silica shell of Au@hollow-SiO2 particles and easy accessibility of reagents to the catalytically active sites of the ligand-free gold surface through the porous silica support.Entities:
Keywords: Block copolymer micelles; Nanocatalyst; Sol-gel; Template; Yolk-shell
Year: 2016 PMID: 28039806 DOI: 10.1016/j.jcis.2016.12.051
Source DB: PubMed Journal: J Colloid Interface Sci ISSN: 0021-9797 Impact factor: 8.128