{ "labelLang" : "hun", "responseDate" : "2024-03-28 11:59", "paging" : { "last" : false, "first" : true, "totalPages" : 5, "totalElements" : 43, "size" : 10, "number" : 1, "numberOfElements" : 10, "sort" : [ { "direction" : "DESC", "property" : "publishedYear", "ascending" : false }, { "direction" : "ASC", "property" : "firstAuthor", "ascending" : true }, { "direction" : "ASC", "property" : "mtid", "ascending" : true } ] }, "content" : [ { "otype" : "JournalArticle", "mtid" : 32546275, "status" : "VALIDATED", "published" : true, "comment" : "Funding details: European Commission, EC \n Funding details: European Regional Development Fund, ERDF, 734641, GINOP-2.3.2-15-2016-00008, H2020-MSCA-RISE-2016, VEKOP-2.3.2-16-2017-00013 \n Funding details: Nemzeti Kutatási Fejlesztési és Innovációs Hivatal, NKFIH, PD_135169 \n Funding text 1: The research has been implemented with the support provided from the National Research, Development and Innovation Office of Hungary , financed under the NKFIH K_131989 funding scheme. Mónika Kéri is grateful for the National Research, Development and Innovation Office of Hungary ( NKFIH: PD_135169 ) for financial support. The research was also supported by the EU and co-financed by the European Regional Development Fund under the project GINOP-2.3.2-15-2016-00008 . Financial support of VEKOP-2.3.2-16-2017-00013 (supported by the EU and by Hungary, co-financed by the European Regional Development Fund ) is acknowledged. The work is also part of the EU project NANOMED (H2020-MSCA-RISE-2016, #734641). We are grateful to Balázs Nagy for the aerogel synthesis. \n Funding text 2: The research has been implemented with the support provided from the National Research, Development and Innovation Office of Hungary, financed under the NKFIH K_131989 funding scheme. M?nika K?ri is grateful for the National Research, Development and Innovation Office of Hungary (NKFIH: PD_135169) for financial support. The research was also supported by the EU and co-financed by the European Regional Development Fund under the project GINOP-2.3.2-15-2016-00008. Financial support of VEKOP-2.3.2-16-2017-00013 (supported by the EU and by Hungary, co-financed by the European Regional Development Fund) is acknowledged. The work is also part of the EU project NANOMED (H2020-MSCA-RISE-2016, #734641). 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For these applications the knowledge of their structure and behavior in aqueous medium is essential. In this work two resorcinol-formaldehyde (RF) carbon aerogels prepared in different ways were characterized with various NMR methods while their pore structure was stepwise saturated with water. The wetting properties were studied by vapor adsorption and low-field NMR relaxometry, while the morphology was followed by NMR cryoporometry during the hydration process. At several water saturation levels the self-diffusion of water was measured. The comprehensive evaluation of the results led to a detailed description of the wetting process of these carbon aerogels beyond the pore size distributions. At low hydration level water clusters formed on and around the hydrophilic functional groups of the surface being able to adsorb water, but no continuous water layer developed on the surface. With increasing water content, spherical water drops formed inside the pore system, and vapor phase diffusion was observed in the partially filled pores. Subsequently the interconnected pore structure was saturated. 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