Characterization and Performance Enhancement of Bio-Based Polyurethane-Modified Cement Mortar Utilizing Polyglycerol Polyester Polyol

  • Renzo Miguel R. Hisona
  • , Christine Joy M. Omisol
  • , Tomas Ralph B. Tomon
  • , Andrei E. Etom
  • , Mike Jhun P. Calderon
  • , Carlo Kurt F. Osorio
  • , Dan Michael A. Asequia
  • , Daisy Jane D. Erjeno
  • , Ann Pearl G. Triana
  • , Blessy Joy M. Aguinid
  • , Adam Roy V. Galolo
  • , Gerard Dumancas
  • , Roberto M. Malaluan
  • , Arnold C. Alguno
  • , Arnold A. Lubguban

Research output: Contribution to journalArticlepeer-review

Abstract

The increasing focus on sustainable construction is driving the industry toward materials that combine functionality with environmental benefits. A viable approach to address this demand is the use of bio-based additives to improve traditional cementitious composites. This study introduces a novel approach to developing a polymer-modified construction material by incorporating varied amounts (0, 1, 2, 3, and 6%) of bio-based polyurethane (PU), derived from polyglycerol polyester polyol, into cementitious mortar. The resulting PU-modified cementitious mortar (PUMC) was evaluated for its mechanical, physicochemical, and microstructural properties. Results show that the incorporation of 2% PU by cement weight significantly enhanced compressive strength by 58.2%, flexural strength by 37.0%, and initial flow performance by 20.0% after 28 days, while a 6% PU incorporation provided the best abrasion resistance. These improvements were attributed to a uniform particle and pore size distribution and the formation of a uniform interpenetrating polymer network (IPN), as confirmed by BET-BJH and SEM-EDX analyses. Additionally, FTIR and TGA analyses revealed that the metal-ligand coordination between Ca2+ ions in the cement mortar and PU ligand groups strengthened the interfacial connectivity through noncovalent bonding, further enhancing the material properties. This research highlights the potential of bio-based PU as an eco-friendly additive that significantly improves the performance of cementitious mortars, making it a promising option for industrial flooring applications.
Original languageEnglish
Pages (from-to)45828-45841
Number of pages14
JournalACS Omega
Volume9
Issue number46
DOIs
StatePublished - Nov 19 2024

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