Cargando…

A Highly Active and Selective Zirconium-Based Catalyst System for the Industrial Production of Poly(lactic acid)

[Image: see text] The biodegradable, aliphatic polyester poly(lactic acid), PLA, is a leading bio-based alternative to petrochemical-derived plastic materials across a range of applications. Widely reported in the available literature as a benchmark for PLA production via the bulk ring-opening polym...

Descripción completa

Detalles Bibliográficos
Autores principales: Buchard, Antoine, Chuck, Christopher J., Davidson, Matthew G., Gobius du Sart, Gerrit, Jones, Matthew D, McCormick, Strachan N., Russell, Andrew D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9942235/
https://www.ncbi.nlm.nih.gov/pubmed/36846823
http://dx.doi.org/10.1021/acscatal.2c05690
_version_ 1784891454875762688
author Buchard, Antoine
Chuck, Christopher J.
Davidson, Matthew G.
Gobius du Sart, Gerrit
Jones, Matthew D
McCormick, Strachan N.
Russell, Andrew D.
author_facet Buchard, Antoine
Chuck, Christopher J.
Davidson, Matthew G.
Gobius du Sart, Gerrit
Jones, Matthew D
McCormick, Strachan N.
Russell, Andrew D.
author_sort Buchard, Antoine
collection PubMed
description [Image: see text] The biodegradable, aliphatic polyester poly(lactic acid), PLA, is a leading bio-based alternative to petrochemical-derived plastic materials across a range of applications. Widely reported in the available literature as a benchmark for PLA production via the bulk ring-opening polymerization of lactides is the use of divalent tin catalysts, and particularly tin(II) bis(2-ethylhexanoate). We present an alternative zirconium-based system that combines an inexpensive Group IV metal with the robustness, high activity, control, and designed compatibility with existing facilities and processes, that are required for industrial use. We have carried out a comprehensive kinetic study and applied a combined experimental and theoretical approach to understanding the mechanism by which the polymerization of lactide proceeds in the presence of this system. In the laboratory-scale (20 g) polymerization of recrystallized racemic d,l-lactide (rac-lactide), we have measured catalyst turnover frequencies up to at least 56,000 h(–1), and confirmed the reported protocols’ resistance toward undesirable epimerization, transesterification, and chain scission processes, deleterious to the properties of the polymer product. Further optimization and scale-up under industrial conditions have confirmed the relevance of the catalytic protocol to the commercial production of melt-polymerized PLA. We were able to undertake the efficient preparation of high-molecular-weight PLA on the 500–2000 g scale, via the selective and well-controlled polymerization of commercial polymer-grade l-lactide under challenging, industrially relevant conditions, and at metal concentrations as low as 8–12 ppm Zr by weight ([Zr] = 1.3 × 10(–3) to 1.9 × 10(–3) mol %). Under those conditions, a catalyst turnover number of at least 60,000 was attained, and the activity of the catalyst was comparable to that of tin(II) bis(2-ethylhexanoate).
format Online
Article
Text
id pubmed-9942235
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-99422352023-02-22 A Highly Active and Selective Zirconium-Based Catalyst System for the Industrial Production of Poly(lactic acid) Buchard, Antoine Chuck, Christopher J. Davidson, Matthew G. Gobius du Sart, Gerrit Jones, Matthew D McCormick, Strachan N. Russell, Andrew D. ACS Catal [Image: see text] The biodegradable, aliphatic polyester poly(lactic acid), PLA, is a leading bio-based alternative to petrochemical-derived plastic materials across a range of applications. Widely reported in the available literature as a benchmark for PLA production via the bulk ring-opening polymerization of lactides is the use of divalent tin catalysts, and particularly tin(II) bis(2-ethylhexanoate). We present an alternative zirconium-based system that combines an inexpensive Group IV metal with the robustness, high activity, control, and designed compatibility with existing facilities and processes, that are required for industrial use. We have carried out a comprehensive kinetic study and applied a combined experimental and theoretical approach to understanding the mechanism by which the polymerization of lactide proceeds in the presence of this system. In the laboratory-scale (20 g) polymerization of recrystallized racemic d,l-lactide (rac-lactide), we have measured catalyst turnover frequencies up to at least 56,000 h(–1), and confirmed the reported protocols’ resistance toward undesirable epimerization, transesterification, and chain scission processes, deleterious to the properties of the polymer product. Further optimization and scale-up under industrial conditions have confirmed the relevance of the catalytic protocol to the commercial production of melt-polymerized PLA. We were able to undertake the efficient preparation of high-molecular-weight PLA on the 500–2000 g scale, via the selective and well-controlled polymerization of commercial polymer-grade l-lactide under challenging, industrially relevant conditions, and at metal concentrations as low as 8–12 ppm Zr by weight ([Zr] = 1.3 × 10(–3) to 1.9 × 10(–3) mol %). Under those conditions, a catalyst turnover number of at least 60,000 was attained, and the activity of the catalyst was comparable to that of tin(II) bis(2-ethylhexanoate). American Chemical Society 2023-02-07 /pmc/articles/PMC9942235/ /pubmed/36846823 http://dx.doi.org/10.1021/acscatal.2c05690 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Buchard, Antoine
Chuck, Christopher J.
Davidson, Matthew G.
Gobius du Sart, Gerrit
Jones, Matthew D
McCormick, Strachan N.
Russell, Andrew D.
A Highly Active and Selective Zirconium-Based Catalyst System for the Industrial Production of Poly(lactic acid)
title A Highly Active and Selective Zirconium-Based Catalyst System for the Industrial Production of Poly(lactic acid)
title_full A Highly Active and Selective Zirconium-Based Catalyst System for the Industrial Production of Poly(lactic acid)
title_fullStr A Highly Active and Selective Zirconium-Based Catalyst System for the Industrial Production of Poly(lactic acid)
title_full_unstemmed A Highly Active and Selective Zirconium-Based Catalyst System for the Industrial Production of Poly(lactic acid)
title_short A Highly Active and Selective Zirconium-Based Catalyst System for the Industrial Production of Poly(lactic acid)
title_sort highly active and selective zirconium-based catalyst system for the industrial production of poly(lactic acid)
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9942235/
https://www.ncbi.nlm.nih.gov/pubmed/36846823
http://dx.doi.org/10.1021/acscatal.2c05690
work_keys_str_mv AT buchardantoine ahighlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT chuckchristopherj ahighlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT davidsonmatthewg ahighlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT gobiusdusartgerrit ahighlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT jonesmatthewd ahighlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT mccormickstrachann ahighlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT russellandrewd ahighlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT buchardantoine highlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT chuckchristopherj highlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT davidsonmatthewg highlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT gobiusdusartgerrit highlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT jonesmatthewd highlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT mccormickstrachann highlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid
AT russellandrewd highlyactiveandselectivezirconiumbasedcatalystsystemfortheindustrialproductionofpolylacticacid