Tunability of Hybrid Silica Xerogels: Surface Chemistry and Porous Texture Based on the Aromatic Precursor
Author:
Rosales-Reina Beatriz1ORCID, Cruz-Quesada Guillermo1ORCID, Padilla-Postigo Nataly2, Irigoyen-Razquin Marian2, Alonso-Martínez Ester2, López-Ramón María Victoria3ORCID, Espinal-Viguri Maialen1ORCID, Garrido Julián J.1ORCID
Affiliation:
1. Department of Science, Institute for Advanced Materials and Mathematics (INAMAT2), Public University of Navarre (UPNA), Campus Arrosadía, 31006 Pamplona, Spain 2. IES Plaza de la Cruz, Calle de San Fermín, 51, 31003 Pamplona, Spain 3. Department of Inorganic and Organic Chemistry, Faculty of Experimental Sciences, University of Jaen, 23071 Jaen, Spain
Abstract
The interest in new materials with specific properties has increased because they are essential for the environmental and technological needs of our society. Among them, silica hybrid xerogels have emerged as promising candidates due to their simple preparation and tunability: when they are synthesised, depending on the organic precursor and its concentration, their properties can be modulated, and thus, it is possible to prepare materials with à la carte porosity and surface chemistry. This research aims to design two new series of silica hybrid xerogels by co-condensation of tetraethoxysilane (TEOS) with triethoxy(p-tolyl)silane (MPhTEOS) or 1,4-bis(triethoxysilyl)benzene (Ph(TEOS)2 and to determine their chemical and textural properties based on a variety of characterisation techniques (FT-IR, 29Si NMR, X-ray diffraction and N2, CO2 and water vapour adsorption, among others). The information gathered from these techniques reveals that depending on the organic precursor and its molar percentage, materials with different porosity, hydrophilicity and local order are obtained, evidencing the easy modulation of their properties. The ultimate goal of this study is to prepare materials suitable for a variety of applications, such as adsorbents for pollutants, catalysts, films for solar cells or coatings for optic fibre sensors.
Funder
Ministerio de Ciencia e Innovación Public University of Navarre
Subject
Polymers and Plastics,Organic Chemistry,Biomaterials,Bioengineering
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