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Production and Application of Triblock Hydrolysis Lignin-Based Anionic Copolymers in Aqueous Systems

[Image: see text] Although lignin is currently an under-utilized biopolymer, it has the potential to be valorized through different modification pathways to yield alternative products to petroleum-based ones. In this work, hydrolysis lignin (HL) was copolymerized with acrylamide (AM) and acrylic aci...

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Autores principales: Sabaghi, Sanaz, Alipoormazandarani, Niloofar, Fatehi, Pedram
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7948438/
https://www.ncbi.nlm.nih.gov/pubmed/33718730
http://dx.doi.org/10.1021/acsomega.0c06344
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author Sabaghi, Sanaz
Alipoormazandarani, Niloofar
Fatehi, Pedram
author_facet Sabaghi, Sanaz
Alipoormazandarani, Niloofar
Fatehi, Pedram
author_sort Sabaghi, Sanaz
collection PubMed
description [Image: see text] Although lignin is currently an under-utilized biopolymer, it has the potential to be valorized through different modification pathways to yield alternative products to petroleum-based ones. In this work, hydrolysis lignin (HL) was copolymerized with acrylamide (AM) and acrylic acid (AA) under acidic conditions to generate the lignin/AM polymer (HM), lignin/AA polymer (HA), and lignin/AM/AA copolymer (HAM) with different negative charge densities and molecular weights. Lignin-based polymers characterized by advanced tools, such as proton nuclear magnetic resonance ((1)H NMR), gel permission chromatography (GPC), and elemental analysis confirmed the successful polymerization of HL with AM, AA, or AM/AA monomers. The adsorption analysis using a quartz crystal microbalance (QCM) revealed that compared to diblock HM and HA, the triblock copolymers of HAM adsorbed more on the Al(2)O(3) surface and generated a bulkier adsorbed layer, which is important for lignin-based coating formulation. HAM1 with a lower charge density yielded a higher surface excess density, while HAM2 with a larger R(h) occupied more space (153.7 Å(2)) at the interface of water and Al(2)O(3). In suspension systems, because of the higher M(w), R(h), and adsorption affinity, the bridging performance of HAM2 was more remarkable than that of the other lignin derivatives for Al(2)O(3) particles via forming stronger flocs (with a deflocculation parameter, T(df), of 80.6 s). However, the diblock lignin–AA (HA1) polymer showed the fastest floc regrowth capability after reducing the shear forces (with a reflocculation parameter, T(rf), of 62.5 s). The high thermal stability, T(g), and rheological characteristics of the HAM copolymer proved that it can be an excellent material for coating formulations and flocculants for wastewater treatment systems.
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spelling pubmed-79484382021-03-12 Production and Application of Triblock Hydrolysis Lignin-Based Anionic Copolymers in Aqueous Systems Sabaghi, Sanaz Alipoormazandarani, Niloofar Fatehi, Pedram ACS Omega [Image: see text] Although lignin is currently an under-utilized biopolymer, it has the potential to be valorized through different modification pathways to yield alternative products to petroleum-based ones. In this work, hydrolysis lignin (HL) was copolymerized with acrylamide (AM) and acrylic acid (AA) under acidic conditions to generate the lignin/AM polymer (HM), lignin/AA polymer (HA), and lignin/AM/AA copolymer (HAM) with different negative charge densities and molecular weights. Lignin-based polymers characterized by advanced tools, such as proton nuclear magnetic resonance ((1)H NMR), gel permission chromatography (GPC), and elemental analysis confirmed the successful polymerization of HL with AM, AA, or AM/AA monomers. The adsorption analysis using a quartz crystal microbalance (QCM) revealed that compared to diblock HM and HA, the triblock copolymers of HAM adsorbed more on the Al(2)O(3) surface and generated a bulkier adsorbed layer, which is important for lignin-based coating formulation. HAM1 with a lower charge density yielded a higher surface excess density, while HAM2 with a larger R(h) occupied more space (153.7 Å(2)) at the interface of water and Al(2)O(3). In suspension systems, because of the higher M(w), R(h), and adsorption affinity, the bridging performance of HAM2 was more remarkable than that of the other lignin derivatives for Al(2)O(3) particles via forming stronger flocs (with a deflocculation parameter, T(df), of 80.6 s). However, the diblock lignin–AA (HA1) polymer showed the fastest floc regrowth capability after reducing the shear forces (with a reflocculation parameter, T(rf), of 62.5 s). The high thermal stability, T(g), and rheological characteristics of the HAM copolymer proved that it can be an excellent material for coating formulations and flocculants for wastewater treatment systems. American Chemical Society 2021-02-23 /pmc/articles/PMC7948438/ /pubmed/33718730 http://dx.doi.org/10.1021/acsomega.0c06344 Text en © 2021 The Authors. Published by American Chemical Society This is an open access article published under an ACS AuthorChoice License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Sabaghi, Sanaz
Alipoormazandarani, Niloofar
Fatehi, Pedram
Production and Application of Triblock Hydrolysis Lignin-Based Anionic Copolymers in Aqueous Systems
title Production and Application of Triblock Hydrolysis Lignin-Based Anionic Copolymers in Aqueous Systems
title_full Production and Application of Triblock Hydrolysis Lignin-Based Anionic Copolymers in Aqueous Systems
title_fullStr Production and Application of Triblock Hydrolysis Lignin-Based Anionic Copolymers in Aqueous Systems
title_full_unstemmed Production and Application of Triblock Hydrolysis Lignin-Based Anionic Copolymers in Aqueous Systems
title_short Production and Application of Triblock Hydrolysis Lignin-Based Anionic Copolymers in Aqueous Systems
title_sort production and application of triblock hydrolysis lignin-based anionic copolymers in aqueous systems
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7948438/
https://www.ncbi.nlm.nih.gov/pubmed/33718730
http://dx.doi.org/10.1021/acsomega.0c06344
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