TY - JOUR
T1 - Enhancing geopolymer performance with silane-functionalized graphene oxide
T2 - Efflorescence reduction, pore refinement, and improved high-temperature properties
AU - Tang, Zhao Qing
AU - de Souza, Felipe Basquiroto
AU - Sagoe-Crentsil, Kwesi
AU - Duan, Wenhui
N1 - Publisher Copyright:
© 2024 The Authors
PY - 2024/8/23
Y1 - 2024/8/23
N2 - Geopolymer materials offer environmental benefits and strong mechanical properties but face limitations such as efflorescence, shrinkage, thermal stability and poor mechanical performance at high temperatures. This study introduces a novel solution using silane-functionalized graphene oxide nanocomposites (GO-APTS) to address these challenges. Experiments on metakaolin-based geopolymers demonstrate that incorporating GO-APTS improves dispersion, enhances mechanical strength, refines pore structures, and boosts resilience to high temperatures while reducing shrinkage and efflorescence, without compromising the workability of the mixes. Although the structural integrity of the material at nanoscale degrades beyond certain temperatures, the overall thermal resistance is significantly increased, with treated geopolymers displaying a ∼6 % improvement in porosity, ∼20 % higher residual compressive strength and ∼15 % reduction in shrinkage compared to control samples after exposure to heat. Our work reveals the promising potential of silanized graphene oxide nanocomposites in crafting cementitious materials suitable for high-temperature applications, paving the way for their broader use in innovative construction and industry solutions.
AB - Geopolymer materials offer environmental benefits and strong mechanical properties but face limitations such as efflorescence, shrinkage, thermal stability and poor mechanical performance at high temperatures. This study introduces a novel solution using silane-functionalized graphene oxide nanocomposites (GO-APTS) to address these challenges. Experiments on metakaolin-based geopolymers demonstrate that incorporating GO-APTS improves dispersion, enhances mechanical strength, refines pore structures, and boosts resilience to high temperatures while reducing shrinkage and efflorescence, without compromising the workability of the mixes. Although the structural integrity of the material at nanoscale degrades beyond certain temperatures, the overall thermal resistance is significantly increased, with treated geopolymers displaying a ∼6 % improvement in porosity, ∼20 % higher residual compressive strength and ∼15 % reduction in shrinkage compared to control samples after exposure to heat. Our work reveals the promising potential of silanized graphene oxide nanocomposites in crafting cementitious materials suitable for high-temperature applications, paving the way for their broader use in innovative construction and industry solutions.
KW - Geopolymer
KW - Graphene oxide
KW - High temperature
KW - Metakaolin
KW - Surface functionalisation
UR - https://www.scopus.com/pages/publications/85198583772
U2 - 10.1016/j.conbuildmat.2024.137420
DO - 10.1016/j.conbuildmat.2024.137420
M3 - Article
AN - SCOPUS:85198583772
SN - 0950-0618
VL - 440
JO - Construction and Building Materials
JF - Construction and Building Materials
M1 - 137420
ER -