Naphthalene-based periodic nanoporous organosilicas: II. Hydrogen and methane adsorption and physicochemical study

dc.contributor.authorAntoniou, M. K.en
dc.contributor.authorPolicicchio, A.en
dc.contributor.authorDimos, K.en
dc.contributor.authorGournis, D.en
dc.contributor.authorKarakassides, M. A.en
dc.contributor.authorAgostino, R. G.en
dc.date.accessioned2015-11-24T17:36:28Z
dc.date.available2015-11-24T17:36:28Z
dc.identifier.issn1387-1811-
dc.identifier.urihttps://olympias.lib.uoi.gr/jspui/handle/123456789/14252
dc.rightsDefault Licence-
dc.subjectnaphthaleneen
dc.subjectperiodic mesoporous organosilicasen
dc.subjecthydrogen storageen
dc.subjectmethane storageen
dc.subjectsievert-type apparatusen
dc.subjectmetal-organic frameworksen
dc.subjectwalled carbon nanotubesen
dc.subjectmesoporous organosilicasen
dc.subjectstorage materialsen
dc.subjectphysisorptionen
dc.subjectsilicaen
dc.subjecttemperatureen
dc.subjectmixturesen
dc.subjectsievesen
dc.subjectmcm-41en
dc.titleNaphthalene-based periodic nanoporous organosilicas: II. Hydrogen and methane adsorption and physicochemical studyen
heal.abstractNovel Periodic Nanoporous Organosilicas (PNOs) synthesized by direct co-condensation of tetraethylorthosilicate and triethoxy(naphthalen-1-yl)silane (as described in detail in part I) were evaluated for their hydrogen and methane storage ability. The naphthalene-based PNO materials exhibit regular hexagonal arrangement of uniform pores, high naphthalene content up to 17 wt.%, specific surface areas above 1000 m(2)/g and pore size distributions in the microporous/mesoporous boundary. Methane and hydrogen storage properties, at different temperatures, have been investigated for these samples by Sievert-type apparatus. The samples exhibit a reversible methane/hydrogen surface excess adsorption capacity, with measured maximum uptake of up to 5.27 wt.% at 298 K and 3.5 MPa and 2.05 wt.% at 77 K and 4.3 MPa respectively. The analysis of the obtained isotherm curves by Toth equation shows high grade of surface homogeneity of the samples. Total storage capacities were also estimated. For methane a maximum 41.6 v/v at 298 K and 3.5 MPa was found, while for hydrogen a maximum 15.8 g/L at 77 K and 4.3 MPa was calculated. (C) 2012 Elsevier Inc. All rights reserved.en
heal.accesscampus-
heal.fullTextAvailabilityTRUE-
heal.identifier.primaryDOI 10.1016/j.micromeso.2012.03.035-
heal.identifier.secondary<Go to ISI>://000305714200045-
heal.journalNameMicroporous and Mesoporous Materialsen
heal.journalTypepeer reviewed-
heal.languageen-
heal.publicationDate2012-
heal.publisherElsevieren
heal.recordProviderΠανεπιστήμιο Ιωαννίνων. Σχολή Θετικών Επιστημών. Τμήμα Μηχανικών Επιστήμης Υλικώνel
heal.typejournalArticle-
heal.type.elΆρθρο Περιοδικούel
heal.type.enJournal articleen

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