Facile synthesis and thermal performances of stearic acid/titania core/shell nanocapsules by sol-gel method

In order to improve the thermal properties of PCMs (phase change materials), in this study, a new series of NEPCMs (nanoencapsulated phase change materials) were synthesized using a sol-gel method with SA (stearic acid) as the core and TiO2 (titania) as the shell material. The effects of the weight...

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Main Authors: Tahan Latibari, S., Mehrali, M., Afifi, A.B.M., Mahlia, T.M.I., Akhiani, A.R., Metselaar, H.S.C.
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Language:en_US
Published: 2017
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spelling my.uniten.dspace-61062018-03-19T06:26:11Z Facile synthesis and thermal performances of stearic acid/titania core/shell nanocapsules by sol-gel method Tahan Latibari, S. Mehrali, M. Afifi, A.B.M. Mahlia, T.M.I. Akhiani, A.R. Metselaar, H.S.C. In order to improve the thermal properties of PCMs (phase change materials), in this study, a new series of NEPCMs (nanoencapsulated phase change materials) were synthesized using a sol-gel method with SA (stearic acid) as the core and TiO2 (titania) as the shell material. The effects of the weight ratios of the SA/titania precursor TTIP (titanium tetraisopropoxide) on the morphology, thermal performance and thermal conductivity of the prepared nanocapsules are discussed. The experimental results indicate that the SA was encapsulated in spheres with minimum and maximum diameters of 583.4 and 946.4 nm, at encapsulation ratios between 30.36% and 64.76%. The results indicated that there was no chemical interaction between the core and shell materials, SA and TiO2, which were compatible with each other under controlled synthesis conditions of pH 10. The NEPCMs with high mass ratios of SA/TTIP exhibited enhanced phase change properties and higher encapsulation efficiencies but lower thermal conductivities than NEPCMs with low mass ratios. Good thermal reliability and chemical stability of the NEPCMs were obtained by cycling the material through 2500 melting/solidifying cycles. In conclusion, the outstanding thermal stability and reliability of the prepared nanocapsules make these materials appropriate phase change materials for thermal energy storage applications. © 2015 Elsevier Ltd. 2017-12-08T09:11:25Z 2017-12-08T09:11:25Z 2015 Article 10.1016/j.energy.2015.04.008 en_US Facile synthesis and thermal performances of stearic acid/titania core/shell nanocapsules by sol-gel method. Energy, 85, 635-644
institution Universiti Tenaga Nasional
building UNITEN Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Tenaga Nasional
content_source UNITEN Institutional Repository
url_provider http://dspace.uniten.edu.my/
language en_US
description In order to improve the thermal properties of PCMs (phase change materials), in this study, a new series of NEPCMs (nanoencapsulated phase change materials) were synthesized using a sol-gel method with SA (stearic acid) as the core and TiO2 (titania) as the shell material. The effects of the weight ratios of the SA/titania precursor TTIP (titanium tetraisopropoxide) on the morphology, thermal performance and thermal conductivity of the prepared nanocapsules are discussed. The experimental results indicate that the SA was encapsulated in spheres with minimum and maximum diameters of 583.4 and 946.4 nm, at encapsulation ratios between 30.36% and 64.76%. The results indicated that there was no chemical interaction between the core and shell materials, SA and TiO2, which were compatible with each other under controlled synthesis conditions of pH 10. The NEPCMs with high mass ratios of SA/TTIP exhibited enhanced phase change properties and higher encapsulation efficiencies but lower thermal conductivities than NEPCMs with low mass ratios. Good thermal reliability and chemical stability of the NEPCMs were obtained by cycling the material through 2500 melting/solidifying cycles. In conclusion, the outstanding thermal stability and reliability of the prepared nanocapsules make these materials appropriate phase change materials for thermal energy storage applications. © 2015 Elsevier Ltd.
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author Tahan Latibari, S.
Mehrali, M.
Afifi, A.B.M.
Mahlia, T.M.I.
Akhiani, A.R.
Metselaar, H.S.C.
spellingShingle Tahan Latibari, S.
Mehrali, M.
Afifi, A.B.M.
Mahlia, T.M.I.
Akhiani, A.R.
Metselaar, H.S.C.
Facile synthesis and thermal performances of stearic acid/titania core/shell nanocapsules by sol-gel method
author_facet Tahan Latibari, S.
Mehrali, M.
Afifi, A.B.M.
Mahlia, T.M.I.
Akhiani, A.R.
Metselaar, H.S.C.
author_sort Tahan Latibari, S.
title Facile synthesis and thermal performances of stearic acid/titania core/shell nanocapsules by sol-gel method
title_short Facile synthesis and thermal performances of stearic acid/titania core/shell nanocapsules by sol-gel method
title_full Facile synthesis and thermal performances of stearic acid/titania core/shell nanocapsules by sol-gel method
title_fullStr Facile synthesis and thermal performances of stearic acid/titania core/shell nanocapsules by sol-gel method
title_full_unstemmed Facile synthesis and thermal performances of stearic acid/titania core/shell nanocapsules by sol-gel method
title_sort facile synthesis and thermal performances of stearic acid/titania core/shell nanocapsules by sol-gel method
publishDate 2017
_version_ 1644493843544932352
score 13.214268