Alkali-activated materials: the role of molecular-scale research and lessons from the energy transition to combat climate change

Alternative (i.e., non-Portland) cements, such as alkali-activated materials, have gained significant interest from the scientific community due to their proven CO2 savings compared with Portland cement together with known short-term performance properties. However, the concrete industry remains do...

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Main Author: Claire White
Format: Article
Language:English
Published: RILEM Publications SARL 2020-01-01
Series:RILEM Technical Letters
Subjects:
Online Access:http://letters.rilem.net/index.php/rilem/article/view/98
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spelling doaj-cb5a5dd623f34119b29ffb8167fa2bd62020-11-25T02:19:43ZengRILEM Publications SARLRILEM Technical Letters2518-02312020-01-01410.21809/rilemtechlett.2019.98Alkali-activated materials: the role of molecular-scale research and lessons from the energy transition to combat climate change Claire White0Princeton University Alternative (i.e., non-Portland) cements, such as alkali-activated materials, have gained significant interest from the scientific community due to their proven CO2 savings compared with Portland cement together with known short-term performance properties. However, the concrete industry remains dominated by Portland cement-based concrete. This Letter explores the technical and non-technical hurdles preventing implementation of an alternative cement, such as alkali-activated materials, in the concrete industry and discusses how these hurdles can be overcome. Specifically, it is shown that certain technical hurdles, such as a lack of understanding how certain additives affect setting of alkali-activated materials (and Portland cement) and the absence of long-term in-field performance data of these sustainable cements, can be mitigated via the use of key molecular- and nano-scale experimental techniques to elucidate dominant material characteristics, including those that control long-term performance. In the second part of this Letter the concrete industry is compared and contrasted with the electricity generation industry, and specifically the transition from one dominant technology (i.e., coal) to a diverse array of energy sources including renewables. It is concluded that financial incentives and public advocacy (akin to advocacy for renewables in the energy sector) would significantly enhance uptake of alternative cements in the concrete industry. http://letters.rilem.net/index.php/rilem/article/view/98SustainabilityAlternative cementsDurabilityAlkali-activated concreteMaterials Science
collection DOAJ
language English
format Article
sources DOAJ
author Claire White
spellingShingle Claire White
Alkali-activated materials: the role of molecular-scale research and lessons from the energy transition to combat climate change
RILEM Technical Letters
Sustainability
Alternative cements
Durability
Alkali-activated concrete
Materials Science
author_facet Claire White
author_sort Claire White
title Alkali-activated materials: the role of molecular-scale research and lessons from the energy transition to combat climate change
title_short Alkali-activated materials: the role of molecular-scale research and lessons from the energy transition to combat climate change
title_full Alkali-activated materials: the role of molecular-scale research and lessons from the energy transition to combat climate change
title_fullStr Alkali-activated materials: the role of molecular-scale research and lessons from the energy transition to combat climate change
title_full_unstemmed Alkali-activated materials: the role of molecular-scale research and lessons from the energy transition to combat climate change
title_sort alkali-activated materials: the role of molecular-scale research and lessons from the energy transition to combat climate change
publisher RILEM Publications SARL
series RILEM Technical Letters
issn 2518-0231
publishDate 2020-01-01
description Alternative (i.e., non-Portland) cements, such as alkali-activated materials, have gained significant interest from the scientific community due to their proven CO2 savings compared with Portland cement together with known short-term performance properties. However, the concrete industry remains dominated by Portland cement-based concrete. This Letter explores the technical and non-technical hurdles preventing implementation of an alternative cement, such as alkali-activated materials, in the concrete industry and discusses how these hurdles can be overcome. Specifically, it is shown that certain technical hurdles, such as a lack of understanding how certain additives affect setting of alkali-activated materials (and Portland cement) and the absence of long-term in-field performance data of these sustainable cements, can be mitigated via the use of key molecular- and nano-scale experimental techniques to elucidate dominant material characteristics, including those that control long-term performance. In the second part of this Letter the concrete industry is compared and contrasted with the electricity generation industry, and specifically the transition from one dominant technology (i.e., coal) to a diverse array of energy sources including renewables. It is concluded that financial incentives and public advocacy (akin to advocacy for renewables in the energy sector) would significantly enhance uptake of alternative cements in the concrete industry.
topic Sustainability
Alternative cements
Durability
Alkali-activated concrete
Materials Science
url http://letters.rilem.net/index.php/rilem/article/view/98
work_keys_str_mv AT clairewhite alkaliactivatedmaterialstheroleofmolecularscaleresearchandlessonsfromtheenergytransitiontocombatclimatechange
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