Facile Synthesis of Graphene from Waste Tire/Silica Hybrid Additives and Optimization Study for the Fabrication of Thermally Enhanced Cement Grouts

This work evaluates the effects of newly designed graphene/silica hybrid additives on the properties of cementitious grout. In the hybrid structure, graphene nanoplatelet (GNP) obtained from waste tire was used to improve the thermal conductivity and reduce the cost and environmental impacts by usin...

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Main Authors: Ilayda Berktas, Ali Nejad Ghafar, Patrick Fontana, Ayten Caputcu, Yusuf Menceloglu, Burcu Saner Okan
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Molecules
Subjects:
Online Access:https://www.mdpi.com/1420-3049/25/4/886
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spelling doaj-7a94ececbef04dceb0add89e98bcc7d42020-11-25T00:36:20ZengMDPI AGMolecules1420-30492020-02-0125488610.3390/molecules25040886molecules25040886Facile Synthesis of Graphene from Waste Tire/Silica Hybrid Additives and Optimization Study for the Fabrication of Thermally Enhanced Cement GroutsIlayda Berktas0Ali Nejad Ghafar1Patrick Fontana2Ayten Caputcu3Yusuf Menceloglu4Burcu Saner Okan5Sabanci University Integrated Manufacturing Technologies Research and Application Center &amp; Composite Technologies Center of Excellence, Teknopark Istanbul, 34906 Pendik, Istanbul, TurkeyRISE Research Institutes of Sweden, Division Samhällsbyggnad–RISE CBI Betonginstitutet, Drottning Kristinas väg 26, 114 28 Stockholm, SwedenRISE Research Institutes of Sweden, Division Samhällsbyggnad–RISE CBI Betonginstitutet, Drottning Kristinas väg 26, 114 28 Stockholm, SwedenCimsa Cimento Sanayi A. S., Toroslar Mah. Tekke Cad., 33013 Yenitaskent, Mersin, TurkeySabanci University Integrated Manufacturing Technologies Research and Application Center &amp; Composite Technologies Center of Excellence, Teknopark Istanbul, 34906 Pendik, Istanbul, TurkeySabanci University Integrated Manufacturing Technologies Research and Application Center &amp; Composite Technologies Center of Excellence, Teknopark Istanbul, 34906 Pendik, Istanbul, TurkeyThis work evaluates the effects of newly designed graphene/silica hybrid additives on the properties of cementitious grout. In the hybrid structure, graphene nanoplatelet (GNP) obtained from waste tire was used to improve the thermal conductivity and reduce the cost and environmental impacts by using recyclable sources. Additionally, functionalized silica nanoparticles were utilized to enhance the dispersion and solubility of carbon material and thus the hydrolyzable groups of silane coupling agent were attached to the silica surface. Then, the hybridization of GNP and functionalized silica was conducted to make proper bridges and develop hybrid structures by tailoring carbon/silica ratios. Afterwards, special grout formulations were studied by incorporating these hybrid additives at different loadings. As the amount of hybrid additive incorporated into grout suspension increased from 3 to 5 <i>wt</i>%, water uptake increased from 660 to 725 g resulting in the reduction of thermal conductivity by 20.6%. On the other hand, as the concentration of GNP in hybrid structure increased, water demand was reduced, and thus the enhancement in thermal conductivity was improved by approximately 29% at the same loading ratios of hybrids in the prepared grout mixes. Therefore, these developed hybrid additives showed noticeable potential as a thermal enhancement material in cement-based grouts.https://www.mdpi.com/1420-3049/25/4/886graphene nanoplateletwaste tiresilanizationhybridizationthermal conductivitygrouts
collection DOAJ
language English
format Article
sources DOAJ
author Ilayda Berktas
Ali Nejad Ghafar
Patrick Fontana
Ayten Caputcu
Yusuf Menceloglu
Burcu Saner Okan
spellingShingle Ilayda Berktas
Ali Nejad Ghafar
Patrick Fontana
Ayten Caputcu
Yusuf Menceloglu
Burcu Saner Okan
Facile Synthesis of Graphene from Waste Tire/Silica Hybrid Additives and Optimization Study for the Fabrication of Thermally Enhanced Cement Grouts
Molecules
graphene nanoplatelet
waste tire
silanization
hybridization
thermal conductivity
grouts
author_facet Ilayda Berktas
Ali Nejad Ghafar
Patrick Fontana
Ayten Caputcu
Yusuf Menceloglu
Burcu Saner Okan
author_sort Ilayda Berktas
title Facile Synthesis of Graphene from Waste Tire/Silica Hybrid Additives and Optimization Study for the Fabrication of Thermally Enhanced Cement Grouts
title_short Facile Synthesis of Graphene from Waste Tire/Silica Hybrid Additives and Optimization Study for the Fabrication of Thermally Enhanced Cement Grouts
title_full Facile Synthesis of Graphene from Waste Tire/Silica Hybrid Additives and Optimization Study for the Fabrication of Thermally Enhanced Cement Grouts
title_fullStr Facile Synthesis of Graphene from Waste Tire/Silica Hybrid Additives and Optimization Study for the Fabrication of Thermally Enhanced Cement Grouts
title_full_unstemmed Facile Synthesis of Graphene from Waste Tire/Silica Hybrid Additives and Optimization Study for the Fabrication of Thermally Enhanced Cement Grouts
title_sort facile synthesis of graphene from waste tire/silica hybrid additives and optimization study for the fabrication of thermally enhanced cement grouts
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2020-02-01
description This work evaluates the effects of newly designed graphene/silica hybrid additives on the properties of cementitious grout. In the hybrid structure, graphene nanoplatelet (GNP) obtained from waste tire was used to improve the thermal conductivity and reduce the cost and environmental impacts by using recyclable sources. Additionally, functionalized silica nanoparticles were utilized to enhance the dispersion and solubility of carbon material and thus the hydrolyzable groups of silane coupling agent were attached to the silica surface. Then, the hybridization of GNP and functionalized silica was conducted to make proper bridges and develop hybrid structures by tailoring carbon/silica ratios. Afterwards, special grout formulations were studied by incorporating these hybrid additives at different loadings. As the amount of hybrid additive incorporated into grout suspension increased from 3 to 5 <i>wt</i>%, water uptake increased from 660 to 725 g resulting in the reduction of thermal conductivity by 20.6%. On the other hand, as the concentration of GNP in hybrid structure increased, water demand was reduced, and thus the enhancement in thermal conductivity was improved by approximately 29% at the same loading ratios of hybrids in the prepared grout mixes. Therefore, these developed hybrid additives showed noticeable potential as a thermal enhancement material in cement-based grouts.
topic graphene nanoplatelet
waste tire
silanization
hybridization
thermal conductivity
grouts
url https://www.mdpi.com/1420-3049/25/4/886
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