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Development of High-Performance Coconut Oil-Based Rigid Polyurethane-Urea Foam: A Novel Sequential Amidation and Prepolymerization Process.
Hipulan, Louell Nikki A; Dingcong, Roger G; Estrada, Dave Joseph E; Dumancas, Gerard G; Bondaug, John Christian S; Alguno, Arnold C; Bacosa, Hernando P; Malaluan, Roberto M; Lubguban, Arnold A.
Afiliação
  • Hipulan LNA; Center for Sustainable Polymers, Mindanao State University - Iligan Institute of Technology, A. Bonifacio Avenue, Iligan9200, Philippines.
  • Dingcong RG; Environmental Science Graduate Program, Department of Biological Sciences, Mindanao State University - Iligan Institute of Technology, A. Bonifacio Avenue, Iligan 9200, Philippines.
  • Estrada DJE; Chemical Engineering Program, College of Technology, University of San Agustin, General Luna St., Iloilo 5000, Philippines.
  • Dumancas GG; Center for Sustainable Polymers, Mindanao State University - Iligan Institute of Technology, A. Bonifacio Avenue, Iligan9200, Philippines.
  • Bondaug JCS; Center for Sustainable Polymers, Mindanao State University - Iligan Institute of Technology, A. Bonifacio Avenue, Iligan9200, Philippines.
  • Alguno AC; Department of Chemistry, The University of Scranton, Scranton, Pennsylvania 18510, United States.
  • Bacosa HP; Center for Sustainable Polymers, Mindanao State University - Iligan Institute of Technology, A. Bonifacio Avenue, Iligan9200, Philippines.
  • Malaluan RM; Environmental Science Graduate Program, Department of Biological Sciences, Mindanao State University - Iligan Institute of Technology, A. Bonifacio Avenue, Iligan 9200, Philippines.
  • Lubguban AA; Center for Sustainable Polymers, Mindanao State University - Iligan Institute of Technology, A. Bonifacio Avenue, Iligan9200, Philippines.
ACS Omega ; 9(11): 13112-13124, 2024 Mar 19.
Article em En | MEDLINE | ID: mdl-38524448
ABSTRACT
The utilization of coconut diethanolamide (p-CDEA) as a substitute polyol for petroleum-based polyol in fully biobased rigid polyurethane-urea foam (RPUAF) faces challenges due to its short chain and limited cross-linking capability. This leads to compromised cell wall resistance during foam expansion, resulting in significant ruptured cells and adverse effects on mechanical and thermal properties. To address this, a novel sequential amidation-prepolymerization route was employed on coconut oil, yielding a hydroxyl-terminated poly(urethane-urea) prepolymer polyol (COPUAP). Compared to p-CDEA, COPUAP exhibited a decreased hydroxyl value (496.3-473.2 mg KOH/g), an increase in amine value (13.464-24.561 mg KOH/g), and an increase in viscosity (472.4-755.8 mPa·s), indicating enhanced functionality of 34.3 mgKOH/g and chain lengthening. Further, COPUAP was utilized as the sole B-side polyol in the production of RPUAF (PU-COPUAP). The improved functionality of COPUAP and its improved cross-linking capability during foaming have significantly improved cell morphology, resulting in a remarkable 4.7-fold increase in compressive strength (132-628 kPa), a 3.5-fold increase in flexural strength (232-828 kPa), and improved insulation properties with a notable decrease in thermal conductivity (48.02-34.52 mW/m·K) compared to PU-CDEA in the literature. Additionally, PU-COPUAP exhibited a 16.5% increase in the water contact angle (114.93° to 133.87°), attributing to the formation of hydrophobic biuret segments and a tightly packed, highly cross-linked structure inhibiting water penetration. This innovative approach sets a new benchmark for fully biobased rigid foam production, delivering high load-bearing capacity, exceptional insulation, and significantly improved hydrophobicity.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article