Inorganic-organic hybrid geopolymers: evolution of molecular and pore structure, and its effect on mechanical and fire-retardant properties

Singla, Rashmi and Mishra, T and Alex, T C and Kumar, Sanjay (2024) Inorganic-organic hybrid geopolymers: evolution of molecular and pore structure, and its effect on mechanical and fire-retardant properties. Materials and Structures, 57(10) .

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Abstract

In order to overcome the brittle behavior of conventional geopolymers, of late, a paradigm shift towards development of hybrid geopolymers has commenced. This study describes hybrids synthesized by co-milling metakaolin and solid organics (epoxy resin: diglycidyl ether of bisphenol A and hardener: dicyandiamide) followed by alkali activation. The developed hybrid geopolymers exhibit enhanced mechanical and physical properties. Physical and mechanical properties of such hybrids depend on the extent of molecular-level interactions and microstructural evolution during geopolymerisation. Evolution of molecular structure from precursor stage (co-milled samples) to hybrid geopolymers is studied using transmission electron microscopy (TEM) and 27Al, 13C, 29Si solid-state nuclear magnetic resonance (NMR) spectroscopy. NMR and TEM analyses of the hybrid geopolymers illustrate the formation of Si-O-C bonds and uniform C distribution (with no phase separation); this confirms inorganic-organic chemical interactions during geopolymerisation. Detailed assessment of pore characteristics using TEM, mercury intrusion porosimeter, and Brunauer-Emmett-Teller reveal formation of a dense gel (with reduced pore size and pore volume) in hybrid geopolymer vis-& agrave;-vis MK-based inorganic geopolymer. The implication of such microstructural features on mechanical and physical properties is discussed. Lastly, the suitability of developed hybrids as fire-retardant materials used in mass transit applications is highlighted.

Item Type:Article
Official URL/DOI:http://10.1617/s11527-024-02501-z
Uncontrolled Keywords:Hybrid geopolymer, TEM, NMR, Pore characteristics, Fire-retardant, mechanical properties, fly-ash, MAS-MAR, microstructure, nanocomposites, composites, SI-29
Divisions:Material Science and Technology
ID Code:9671
Deposited By:HOD KRIT
Deposited On:19 Dec 2024 12:16
Last Modified:19 Dec 2024 12:16
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