Preparation and Characterization of Biobased Lignin-Co-Polyester/Amide Thermoplastics

More than 23 million tonnes of lignin are produced annually in the US from wood pulping and 98% of this lignin is burnt. Therefore, creating products from lignin, such as plastics, offers an approach for obtaining sustainable materials in a circular economy. Lignin-based copolymers were synthesized...

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Main Authors: Eric L. Young, Armando G. McDonald
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Molecules
Subjects:
Online Access:https://www.mdpi.com/1420-3049/26/9/2437
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spelling doaj-c202404cb1f84eabb8fac3f6fde9ce972021-04-22T23:02:59ZengMDPI AGMolecules1420-30492021-04-01262437243710.3390/molecules26092437Preparation and Characterization of Biobased Lignin-Co-Polyester/Amide ThermoplasticsEric L. Young0Armando G. McDonald1Department of Forest, Rangeland and Fire Sciences, University of Idaho, Moscow, ID 83844, USADepartment of Forest, Rangeland and Fire Sciences, University of Idaho, Moscow, ID 83844, USAMore than 23 million tonnes of lignin are produced annually in the US from wood pulping and 98% of this lignin is burnt. Therefore, creating products from lignin, such as plastics, offers an approach for obtaining sustainable materials in a circular economy. Lignin-based copolymers were synthesized using a single pot, solvent free, melt condensation reaction. The synthesis occurred in two stages. In the first stage, a biobased prepolymer consisting of butanediol (BD, 0.8–1 molar content) and a diacid (succinic (SA), adipic (AA) and suberic acids (SuA), with varying amounts of diaminobutane (DAB, 0–0.2 molar content) was heated under vacuum and monitored by Fourier transform infra-red (FTIR) spectroscopy and electrospray ionization-mass spectrometry (ESI-MS). In the second stage, prepolymer was mixed with a softwood kraft lignin (0–50 wt.%) and further reacted under vacuum at elevated temperature. Progression of the polymerization reaction was monitored using FTIR spectroscopy. The lignin-copolyester/amide properties were characterized using tensile testing, X-ray diffraction (XRD), dynamic mechanical analysis (DMA), differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA) techniques. Lignin co-polymer tensile (strength 0.1–2.1 MPa and modulus 2 to 338 MPa) properties were found to be influenced by the diacid chain length, lignin, and DAB contents. The lignin-copolymers were shown to be semi-crystalline polymer and have thermoplastic behavior. The SA based copolyesters/amides were relatively stiff and brittle materials while the AA based copolyesters/amides were flexible and the SuA based copolyesters/amides fell in-between. Additionally, > 30 wt.% lignin the lignin- copolyesters/amides did not exhibit melt behavior. Lignin-co-polyester/amides can be generated using green synthesis methods from biobased building blocks. The lignin- copolyesters/amides properties could be tuned based on the lignin content, DAB content and diacid chain length. This approach shows that undervalued lignin can be used in as a macromonomer in producing thermoplastic materials.https://www.mdpi.com/1420-3049/26/9/2437thermoplasticsligninlignin- copolyesters/amidesmelt-condensation
collection DOAJ
language English
format Article
sources DOAJ
author Eric L. Young
Armando G. McDonald
spellingShingle Eric L. Young
Armando G. McDonald
Preparation and Characterization of Biobased Lignin-Co-Polyester/Amide Thermoplastics
Molecules
thermoplastics
lignin
lignin- copolyesters/amides
melt-condensation
author_facet Eric L. Young
Armando G. McDonald
author_sort Eric L. Young
title Preparation and Characterization of Biobased Lignin-Co-Polyester/Amide Thermoplastics
title_short Preparation and Characterization of Biobased Lignin-Co-Polyester/Amide Thermoplastics
title_full Preparation and Characterization of Biobased Lignin-Co-Polyester/Amide Thermoplastics
title_fullStr Preparation and Characterization of Biobased Lignin-Co-Polyester/Amide Thermoplastics
title_full_unstemmed Preparation and Characterization of Biobased Lignin-Co-Polyester/Amide Thermoplastics
title_sort preparation and characterization of biobased lignin-co-polyester/amide thermoplastics
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2021-04-01
description More than 23 million tonnes of lignin are produced annually in the US from wood pulping and 98% of this lignin is burnt. Therefore, creating products from lignin, such as plastics, offers an approach for obtaining sustainable materials in a circular economy. Lignin-based copolymers were synthesized using a single pot, solvent free, melt condensation reaction. The synthesis occurred in two stages. In the first stage, a biobased prepolymer consisting of butanediol (BD, 0.8–1 molar content) and a diacid (succinic (SA), adipic (AA) and suberic acids (SuA), with varying amounts of diaminobutane (DAB, 0–0.2 molar content) was heated under vacuum and monitored by Fourier transform infra-red (FTIR) spectroscopy and electrospray ionization-mass spectrometry (ESI-MS). In the second stage, prepolymer was mixed with a softwood kraft lignin (0–50 wt.%) and further reacted under vacuum at elevated temperature. Progression of the polymerization reaction was monitored using FTIR spectroscopy. The lignin-copolyester/amide properties were characterized using tensile testing, X-ray diffraction (XRD), dynamic mechanical analysis (DMA), differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA) techniques. Lignin co-polymer tensile (strength 0.1–2.1 MPa and modulus 2 to 338 MPa) properties were found to be influenced by the diacid chain length, lignin, and DAB contents. The lignin-copolymers were shown to be semi-crystalline polymer and have thermoplastic behavior. The SA based copolyesters/amides were relatively stiff and brittle materials while the AA based copolyesters/amides were flexible and the SuA based copolyesters/amides fell in-between. Additionally, > 30 wt.% lignin the lignin- copolyesters/amides did not exhibit melt behavior. Lignin-co-polyester/amides can be generated using green synthesis methods from biobased building blocks. The lignin- copolyesters/amides properties could be tuned based on the lignin content, DAB content and diacid chain length. This approach shows that undervalued lignin can be used in as a macromonomer in producing thermoplastic materials.
topic thermoplastics
lignin
lignin- copolyesters/amides
melt-condensation
url https://www.mdpi.com/1420-3049/26/9/2437
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