Comprehensive Analysis of Geopolymer Materials: Properties, Environmental Impacts, and Applications

The advancement of eco-friendly technology in the construction sector has been improving rapidly in the last few years. As a result, multiple building materials were developed, enhanced, and proposed as replacements for some traditional materials. One notable example presents geopolymer as a substit...

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Main Authors: Sami Sbahieh, Gordon McKay, Sami G. Al-Ghamdi
Format: Article
Language:English
Published: MDPI AG 2023-11-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/16/23/7363
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author Sami Sbahieh
Gordon McKay
Sami G. Al-Ghamdi
author_facet Sami Sbahieh
Gordon McKay
Sami G. Al-Ghamdi
author_sort Sami Sbahieh
collection DOAJ
description The advancement of eco-friendly technology in the construction sector has been improving rapidly in the last few years. As a result, multiple building materials were developed, enhanced, and proposed as replacements for some traditional materials. One notable example presents geopolymer as a substitute for ordinary Portland concrete (OPC). The manufacturing process of (OPC) generates CO<sub>2</sub> emissions and a high energy demand, both of which contribute to ozone depletion and global warming. The implementation of geopolymer concrete (GPC) technology in the construction sector provides a path to more sustainable growth and a cleaner environment. This is due to geopolymer concrete’s ability to reduce environmental pollutants and reduce the construction industry’s carbon footprint. This is achieved through its unique composition, which typically involves industrial byproducts like fly ash or slag. These materials, rich in silicon and aluminum, react with alkaline solutions to form a binding gel, bypassing the need for the high-energy clinker production required in OPC. The use of such byproducts not only reduces CO<sub>2</sub> emissions but also contributes to waste minimization. Additionally, geopolymer offers extra advantages compared to OPC, including improved mechanical strength, enhanced durability, and good stability in acidic and alkaline settings. Such properties make GPC particularly suitable for a range of construction environments, from industrial applications to infrastructure projects exposed to harsh conditions. This paper comprehensively reviews the different characteristics of geopolymers, which include their composition, compressive strength, durability, and curing methods. Furthermore, the environmental impacts related to the manufacturing of geopolymer materials were evaluated through the life-cycle assessment method. The result demonstrated that geopolymer concrete maintains positive environmental impacts due to the fact that it produces fewer carbon dioxide CO<sub>2</sub> emissions compared to OPC concrete during its manufacturing; however, geopolymer concrete had some minor negative environmental impacts, including abiotic depletion, human toxicity, freshwater ecotoxicity, terrestrial ecotoxicity, and acidification. These are important considerations for ongoing research aimed at further improving the sustainability of geopolymer concrete. Moreover, it was determined that silicate content, curing temperature, and the proportion of alkaline solution to binder are the major factors significantly influencing the compressive strength of geopolymer concrete. The advancement of geopolymer technology represents not just a stride toward more sustainable construction practices but also paves the way for innovative approaches in the field of building materials.
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spelling doaj.art-063fa484919745a78c13e35c47629cd82023-12-08T15:20:54ZengMDPI AGMaterials1996-19442023-11-011623736310.3390/ma16237363Comprehensive Analysis of Geopolymer Materials: Properties, Environmental Impacts, and ApplicationsSami Sbahieh0Gordon McKay1Sami G. Al-Ghamdi2Division of Sustainable Development, College of Science and Engineering, Hamad Bin Khalifa University, Doha P.O. Box 34110, QatarDivision of Sustainable Development, College of Science and Engineering, Hamad Bin Khalifa University, Doha P.O. Box 34110, QatarEnvironmental Science and Engineering Program, Biological and Environmental Science and Engineering Division, King Abdullah University of Science and Technology, Thuwal 23955, Saudi ArabiaThe advancement of eco-friendly technology in the construction sector has been improving rapidly in the last few years. As a result, multiple building materials were developed, enhanced, and proposed as replacements for some traditional materials. One notable example presents geopolymer as a substitute for ordinary Portland concrete (OPC). The manufacturing process of (OPC) generates CO<sub>2</sub> emissions and a high energy demand, both of which contribute to ozone depletion and global warming. The implementation of geopolymer concrete (GPC) technology in the construction sector provides a path to more sustainable growth and a cleaner environment. This is due to geopolymer concrete’s ability to reduce environmental pollutants and reduce the construction industry’s carbon footprint. This is achieved through its unique composition, which typically involves industrial byproducts like fly ash or slag. These materials, rich in silicon and aluminum, react with alkaline solutions to form a binding gel, bypassing the need for the high-energy clinker production required in OPC. The use of such byproducts not only reduces CO<sub>2</sub> emissions but also contributes to waste minimization. Additionally, geopolymer offers extra advantages compared to OPC, including improved mechanical strength, enhanced durability, and good stability in acidic and alkaline settings. Such properties make GPC particularly suitable for a range of construction environments, from industrial applications to infrastructure projects exposed to harsh conditions. This paper comprehensively reviews the different characteristics of geopolymers, which include their composition, compressive strength, durability, and curing methods. Furthermore, the environmental impacts related to the manufacturing of geopolymer materials were evaluated through the life-cycle assessment method. The result demonstrated that geopolymer concrete maintains positive environmental impacts due to the fact that it produces fewer carbon dioxide CO<sub>2</sub> emissions compared to OPC concrete during its manufacturing; however, geopolymer concrete had some minor negative environmental impacts, including abiotic depletion, human toxicity, freshwater ecotoxicity, terrestrial ecotoxicity, and acidification. These are important considerations for ongoing research aimed at further improving the sustainability of geopolymer concrete. Moreover, it was determined that silicate content, curing temperature, and the proportion of alkaline solution to binder are the major factors significantly influencing the compressive strength of geopolymer concrete. The advancement of geopolymer technology represents not just a stride toward more sustainable construction practices but also paves the way for innovative approaches in the field of building materials.https://www.mdpi.com/1996-1944/16/23/7363life-cycle assessment (LCA)geopolymer concretecompressive strengthdurabilitycuring timeenvironmental impacts of geopolymers
spellingShingle Sami Sbahieh
Gordon McKay
Sami G. Al-Ghamdi
Comprehensive Analysis of Geopolymer Materials: Properties, Environmental Impacts, and Applications
Materials
life-cycle assessment (LCA)
geopolymer concrete
compressive strength
durability
curing time
environmental impacts of geopolymers
title Comprehensive Analysis of Geopolymer Materials: Properties, Environmental Impacts, and Applications
title_full Comprehensive Analysis of Geopolymer Materials: Properties, Environmental Impacts, and Applications
title_fullStr Comprehensive Analysis of Geopolymer Materials: Properties, Environmental Impacts, and Applications
title_full_unstemmed Comprehensive Analysis of Geopolymer Materials: Properties, Environmental Impacts, and Applications
title_short Comprehensive Analysis of Geopolymer Materials: Properties, Environmental Impacts, and Applications
title_sort comprehensive analysis of geopolymer materials properties environmental impacts and applications
topic life-cycle assessment (LCA)
geopolymer concrete
compressive strength
durability
curing time
environmental impacts of geopolymers
url https://www.mdpi.com/1996-1944/16/23/7363
work_keys_str_mv AT samisbahieh comprehensiveanalysisofgeopolymermaterialspropertiesenvironmentalimpactsandapplications
AT gordonmckay comprehensiveanalysisofgeopolymermaterialspropertiesenvironmentalimpactsandapplications
AT samigalghamdi comprehensiveanalysisofgeopolymermaterialspropertiesenvironmentalimpactsandapplications