Design and Synthesis of Conducting Polymer Bio-Based Polyurethane Produced from Palm Kernel Oil

Author:

Munir Muhammad Abdurrahman1ORCID,Badri Khairiah Haji23ORCID,Heng Lee Yook2ORCID,Inayatullah Ahlam4ORCID,Badrul Hamid Alkhair4ORCID,Emelda Emelda1ORCID,Dwinta Eliza1ORCID,Kusumawardani Nurul1ORCID,Wulandari Ari Susiana1ORCID,Aprilia Veriani5ORCID,Supriyono Rachmad Bagas Yahya1

Affiliation:

1. Department of Pharmacy, Faculty of Health Science, Alma Ata University, Daerah Istimewa Yogyakarta 55183, Indonesia

2. Department of Chemical Sciences, Faculty of Science and Technology, Universiti Kebangsaan Malaysia, Bangi 43600, Malaysia

3. Polymer Research Center, Universiti Kebangsaan Malaysia, Bangi 43600, Malaysia

4. Faculty of Science and Technology, Universiti Sains Islam Malaysia, Nilai 71800, Malaysia

5. Department of Nutrition Science, Alma Ata School of Health Sciences, Alma Ata University, Daerah Istimewa Yogyakarta 55183, Indonesia

Abstract

Polyurethane (PU) is a unique polymer that has versatile processing methods and mechanical properties upon the inclusion of selected additives. In this study, a freestanding bio-based polyurethane film the screen-printed electrode (SPE) was prepared by the solution casting technique, using acetone as solvent. It was a one-pot synthesis between major reactants, namely, palm kernel oil-based polyol and 4,4-methylene diisocyanate. The PU has strong adhesion on the SPE surface. The synthesized bio-based polyurethane was characterized using thermogravimetry analysis, differential scanning calorimetry, Fourier-transform infrared spectroscopy (FTIR), surface area analysis by field emission scanning electron microscope, and cyclic voltammetry. Cyclic voltammetry was employed to study electrocatalytic properties of SPE-polyurethane towards oxidation of PU. Remarkably, SPE-PU exhibited improved anodic peak current as compared to SPE itself using the differential pulse voltammetry method. Furthermore, the formation of urethane linkages (-NHC(O) backbone) after polymerization was analyzed using FTIR and confirmed by the absence of peak at 2241 cm-1 attributed to the sp-hydridized carbons atoms of C≡C bonds. The glass transition temperature of the polyurethane was detected at 78.1°C.

Funder

Alma Ata University

Publisher

Hindawi Limited

Subject

Polymers and Plastics

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