Calcium oxide-modified mesoporous silica loaded onto ferriferrous oxide core: Magnetically responsive mesoporous solid strong base

© 2018 The design of new type of solid strong base with ideal activity, stability, and reusability is strongly urged by the growing demand of green chemistry and sustainable development. In this study, a new type of mesoporous solid strong base, denoted as CaO/mSiO2/Fe3O4, is successfully fabricated...

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Main Authors: Li, T., Liu, Yu, Qi, S., Liu, X., Huang, L., Sun, L.
Format: Journal Article
Published: Academic Press 2018
Online Access:http://hdl.handle.net/20.500.11937/71412
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author Li, T.
Liu, Yu
Qi, S.
Liu, X.
Huang, L.
Sun, L.
author_facet Li, T.
Liu, Yu
Qi, S.
Liu, X.
Huang, L.
Sun, L.
author_sort Li, T.
building Curtin Institutional Repository
collection Online Access
description © 2018 The design of new type of solid strong base with ideal activity, stability, and reusability is strongly urged by the growing demand of green chemistry and sustainable development. In this study, a new type of mesoporous solid strong base, denoted as CaO/mSiO2/Fe3O4, is successfully fabricated by successively coating SiO2 onto Fe3O4 magnetic nanoparticles and loading CaO into the mesoporous SiO2. Compared with a series of other typical solid bases, the CaO/mSiO2/Fe3O4 exhibits higher activity towards the synthesis of dimethyl carbonate by the transesterification of ethylene carbonate and methanol. The activity of the CaO/mSiO2/Fe3O4 is not observed to decrease obviously even after sextic catalyst recirculation, and in particular, the recovery of the catalyst without quality loss is very convenient due to the good magnetic responsiveness of the Fe3O4 cores.
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institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T10:48:07Z
publishDate 2018
publisher Academic Press
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spelling curtin-20.500.11937-714122018-12-13T09:34:01Z Calcium oxide-modified mesoporous silica loaded onto ferriferrous oxide core: Magnetically responsive mesoporous solid strong base Li, T. Liu, Yu Qi, S. Liu, X. Huang, L. Sun, L. © 2018 The design of new type of solid strong base with ideal activity, stability, and reusability is strongly urged by the growing demand of green chemistry and sustainable development. In this study, a new type of mesoporous solid strong base, denoted as CaO/mSiO2/Fe3O4, is successfully fabricated by successively coating SiO2 onto Fe3O4 magnetic nanoparticles and loading CaO into the mesoporous SiO2. Compared with a series of other typical solid bases, the CaO/mSiO2/Fe3O4 exhibits higher activity towards the synthesis of dimethyl carbonate by the transesterification of ethylene carbonate and methanol. The activity of the CaO/mSiO2/Fe3O4 is not observed to decrease obviously even after sextic catalyst recirculation, and in particular, the recovery of the catalyst without quality loss is very convenient due to the good magnetic responsiveness of the Fe3O4 cores. 2018 Journal Article http://hdl.handle.net/20.500.11937/71412 10.1016/j.jcis.2018.05.002 Academic Press restricted
spellingShingle Li, T.
Liu, Yu
Qi, S.
Liu, X.
Huang, L.
Sun, L.
Calcium oxide-modified mesoporous silica loaded onto ferriferrous oxide core: Magnetically responsive mesoporous solid strong base
title Calcium oxide-modified mesoporous silica loaded onto ferriferrous oxide core: Magnetically responsive mesoporous solid strong base
title_full Calcium oxide-modified mesoporous silica loaded onto ferriferrous oxide core: Magnetically responsive mesoporous solid strong base
title_fullStr Calcium oxide-modified mesoporous silica loaded onto ferriferrous oxide core: Magnetically responsive mesoporous solid strong base
title_full_unstemmed Calcium oxide-modified mesoporous silica loaded onto ferriferrous oxide core: Magnetically responsive mesoporous solid strong base
title_short Calcium oxide-modified mesoporous silica loaded onto ferriferrous oxide core: Magnetically responsive mesoporous solid strong base
title_sort calcium oxide-modified mesoporous silica loaded onto ferriferrous oxide core: magnetically responsive mesoporous solid strong base
url http://hdl.handle.net/20.500.11937/71412