Hybrid superabsorbent polymer networks (SAPs) encapsulated with SiO2 for structural applications

In this work, materials that as additives in cement promote self-sealing/healing properties by the gradual release of water they absorb were synthesized, characterized and evaluated. Specifically, hybrid SAPs that absorb high ammounts of water encapsulated with SiO2 that facilitates their incorporat...

Full description

Bibliographic Details
Main Authors: Kanellopoulou Irene, Karaxi Evangelia K., Karatza Anna, Kartsonakis Ioannis A., Charitidis Costas
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201818801025
id doaj-038383b6cb16415c93e65a0f75089f12
record_format Article
spelling doaj-038383b6cb16415c93e65a0f75089f122021-02-02T04:40:40ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011880102510.1051/matecconf/201818801025matecconf_iceaf-v2018_01025Hybrid superabsorbent polymer networks (SAPs) encapsulated with SiO2 for structural applicationsKanellopoulou IreneKaraxi Evangelia K.Karatza AnnaKartsonakis Ioannis A.Charitidis CostasIn this work, materials that as additives in cement promote self-sealing/healing properties by the gradual release of water they absorb were synthesized, characterized and evaluated. Specifically, hybrid SAPs that absorb high ammounts of water encapsulated with SiO2 that facilitates their incorporation in the matrix since it improves their chemical affinity were investigated. The structure and morphology of the fabricated SAPs were characterized analytically and confirmed the synthesis of P(MAA-co-EGDMA)@SiO2 nanocomposite. Its particle size is expected to reduce the size of the pores formed due to the absorbing/desorbing water process during the mixing and curing of cement. Moreover, the water absorbance of the above mentioned material as well as its ability to maintain its original structure during subsequent cycles of absorbing/desorbing water from different mediums and specifically from distilled water (DW) and cement slurry filtrate (CS) were evaluated. CS was chosen to mimic the cementitious environment considering the presence of various ions and its pH value (~ 12). The results revealed that the absorption ratio of P(MAA-co-EGDMA)@SiO2 in DW and CS was higher than 1500 wt.% its original dry weight, while SEM pictures proved that the hybrid SAPs maintained their structure after the water absorption tests.https://doi.org/10.1051/matecconf/201818801025
collection DOAJ
language English
format Article
sources DOAJ
author Kanellopoulou Irene
Karaxi Evangelia K.
Karatza Anna
Kartsonakis Ioannis A.
Charitidis Costas
spellingShingle Kanellopoulou Irene
Karaxi Evangelia K.
Karatza Anna
Kartsonakis Ioannis A.
Charitidis Costas
Hybrid superabsorbent polymer networks (SAPs) encapsulated with SiO2 for structural applications
MATEC Web of Conferences
author_facet Kanellopoulou Irene
Karaxi Evangelia K.
Karatza Anna
Kartsonakis Ioannis A.
Charitidis Costas
author_sort Kanellopoulou Irene
title Hybrid superabsorbent polymer networks (SAPs) encapsulated with SiO2 for structural applications
title_short Hybrid superabsorbent polymer networks (SAPs) encapsulated with SiO2 for structural applications
title_full Hybrid superabsorbent polymer networks (SAPs) encapsulated with SiO2 for structural applications
title_fullStr Hybrid superabsorbent polymer networks (SAPs) encapsulated with SiO2 for structural applications
title_full_unstemmed Hybrid superabsorbent polymer networks (SAPs) encapsulated with SiO2 for structural applications
title_sort hybrid superabsorbent polymer networks (saps) encapsulated with sio2 for structural applications
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description In this work, materials that as additives in cement promote self-sealing/healing properties by the gradual release of water they absorb were synthesized, characterized and evaluated. Specifically, hybrid SAPs that absorb high ammounts of water encapsulated with SiO2 that facilitates their incorporation in the matrix since it improves their chemical affinity were investigated. The structure and morphology of the fabricated SAPs were characterized analytically and confirmed the synthesis of P(MAA-co-EGDMA)@SiO2 nanocomposite. Its particle size is expected to reduce the size of the pores formed due to the absorbing/desorbing water process during the mixing and curing of cement. Moreover, the water absorbance of the above mentioned material as well as its ability to maintain its original structure during subsequent cycles of absorbing/desorbing water from different mediums and specifically from distilled water (DW) and cement slurry filtrate (CS) were evaluated. CS was chosen to mimic the cementitious environment considering the presence of various ions and its pH value (~ 12). The results revealed that the absorption ratio of P(MAA-co-EGDMA)@SiO2 in DW and CS was higher than 1500 wt.% its original dry weight, while SEM pictures proved that the hybrid SAPs maintained their structure after the water absorption tests.
url https://doi.org/10.1051/matecconf/201818801025
work_keys_str_mv AT kanellopoulouirene hybridsuperabsorbentpolymernetworkssapsencapsulatedwithsio2forstructuralapplications
AT karaxievangeliak hybridsuperabsorbentpolymernetworkssapsencapsulatedwithsio2forstructuralapplications
AT karatzaanna hybridsuperabsorbentpolymernetworkssapsencapsulatedwithsio2forstructuralapplications
AT kartsonakisioannisa hybridsuperabsorbentpolymernetworkssapsencapsulatedwithsio2forstructuralapplications
AT charitidiscostas hybridsuperabsorbentpolymernetworkssapsencapsulatedwithsio2forstructuralapplications
_version_ 1724305198894022656