Reaction mechanisms of alkali-activated materials

Механизмы реакции щелочно-активированных материалов
Carlos Maurício Fontes Vieira, Markssuel Teixeira Marvila, Afonso Rangel Garcez de Azevedo
2021-01-01

Alkali-Activated Materials (AAM)blast furnace slaggeopolymerspolysialatestobermorite structure
abstract: The Alkali-Activated Materials (AAM) are defined as materials obtained through the reaction between precursors and activators, and are separated into two classes depending on the products formed in the reaction, those rich in calcium, as the blast furnace slag, whose Ca/(Si+Al) ratio is higher than 1; and poor in calcium, which is the geopolymers subclass. In this review article, some bibliographical aspects were discussed regarding the discovery of these materials, through research conducted by Victor Glukhovsky and through the characterization of historical monuments by Davidovits, which began in the 50s and 60s and persist to the present day. The main products obtained in the alkaline activation reaction were also addressed, using the definition of polysialates and zeolites, in the case of geopolymers, and the tobermorite structure, in the case of materials rich in calcium. The main steps of the alkali-activated reaction, such as dissolution, condensation, polycondensation, crystallization, and hardening, were discussed. Some techniques for characterizing the AA reaction products were also examined, such as X-ray diffraction (XRD), nuclear magnetic resonance spectrometry (NMR), Fourier transform infrared spectroscopy (FTIR), and scanning electron microscopy (SEM). Finally, the main factors that interfere in the kinetics of AA reactions were explored, in which the type of cure and the activating solution used in the alkali-activated materials production stands out.
1
Alkali-Activated Materials (AAM) are classified into two classes by reaction products: calcium-rich (Ca/(Si+Al) > 1) and calcium-poor (geopolymers).
2
Common characterization techniques for AAM reaction products include X-ray diffraction (XRD), nuclear magnetic resonance (NMR), FTIR spectroscopy, and scanning electron microscopy (SEM).
3
Geopolymers produce polysialates and zeolite-like products, while calcium-rich AAM produce tobermorite-structured phases.
4
Kinetics of AAM reactions are strongly influenced by curing regime and the composition of the activating solution.
5
The alkali-activation reaction proceeds via sequential steps: dissolution, condensation, polycondensation, crystallization, and hardening.

Alkali-Activated Materials (AAM)

Reaction mechanisms and product formation (dissolution, condensation, polycondensation, crystallization, hardening) and the resulting phases (geopolymer polysialates/zeolites and calcium-rich tobermorite-like phases), including factors affecting reaction kinetics and characterization by XRD, NMR, FTIR, and SEM

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2021-01-01
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Carlos Maurício Fontes Vieira
Markssuel Teixeira Marvila
Afonso Rangel Garcez de Azevedo
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