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An Integrated High Throughput Experimentation/Predictive QSAR Modeling Approach to ansa-Zirconocene Catalysts for Isotactic Polypropylene

Compared to heterogenous Ziegler–Natta systems (ZNS), ansa-metallocene catalysts for the industrial production of isotactic polypropylene feature a higher cost-to-performance balance. In particular, the C(2)-symmetric bis(indenyl) ansa-zirconocenes disclosed in the 1990s are complex to prepare, less...

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Autores principales: Ehm, Christian, Vittoria, Antonio, Goryunov, Georgy P., Izmer, Vyatcheslav V., Kononovich, Dmitry S., Samsonov, Oleg V., Di Girolamo, Rocco, Budzelaar, Peter H. M., Voskoboynikov, Alexander Z., Busico, Vincenzo, Uborsky, Dmitry V., Cipullo, Roberta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7284373/
https://www.ncbi.nlm.nih.gov/pubmed/32349220
http://dx.doi.org/10.3390/polym12051005
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author Ehm, Christian
Vittoria, Antonio
Goryunov, Georgy P.
Izmer, Vyatcheslav V.
Kononovich, Dmitry S.
Samsonov, Oleg V.
Di Girolamo, Rocco
Budzelaar, Peter H. M.
Voskoboynikov, Alexander Z.
Busico, Vincenzo
Uborsky, Dmitry V.
Cipullo, Roberta
author_facet Ehm, Christian
Vittoria, Antonio
Goryunov, Georgy P.
Izmer, Vyatcheslav V.
Kononovich, Dmitry S.
Samsonov, Oleg V.
Di Girolamo, Rocco
Budzelaar, Peter H. M.
Voskoboynikov, Alexander Z.
Busico, Vincenzo
Uborsky, Dmitry V.
Cipullo, Roberta
author_sort Ehm, Christian
collection PubMed
description Compared to heterogenous Ziegler–Natta systems (ZNS), ansa-metallocene catalysts for the industrial production of isotactic polypropylene feature a higher cost-to-performance balance. In particular, the C(2)-symmetric bis(indenyl) ansa-zirconocenes disclosed in the 1990s are complex to prepare, less stereo- and/or regioselective than ZNS, and lose performance at practical application temperatures. The golden era of these complexes, though, was before High Throughput Experimentation (HTE) could contribute significantly to their evolution. Herein, we illustrate a Quantitative Structure – Activity Relationship (QSAR) model trained on a robust and highly accurate HTE database. The clear-box QSAR model utilizes, in particular, a limited number of chemically intuitive 3D geometric descriptors that screen various regions of space in and around the catalytic pocket in a modular way thus enabling to quantify individual substituent contributions. The main focus of the paper is on the methodology, which should be of rather broad applicability in molecular organometallic catalysis. Then again, it is worth emphasizing that the specific application reported here led us to identify in a comparatively short time novel zirconocene catalysts rivaling or even outperforming all previous homologues which strongly indicates that the metallocene story is not over yet.
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spelling pubmed-72843732020-08-13 An Integrated High Throughput Experimentation/Predictive QSAR Modeling Approach to ansa-Zirconocene Catalysts for Isotactic Polypropylene Ehm, Christian Vittoria, Antonio Goryunov, Georgy P. Izmer, Vyatcheslav V. Kononovich, Dmitry S. Samsonov, Oleg V. Di Girolamo, Rocco Budzelaar, Peter H. M. Voskoboynikov, Alexander Z. Busico, Vincenzo Uborsky, Dmitry V. Cipullo, Roberta Polymers (Basel) Article Compared to heterogenous Ziegler–Natta systems (ZNS), ansa-metallocene catalysts for the industrial production of isotactic polypropylene feature a higher cost-to-performance balance. In particular, the C(2)-symmetric bis(indenyl) ansa-zirconocenes disclosed in the 1990s are complex to prepare, less stereo- and/or regioselective than ZNS, and lose performance at practical application temperatures. The golden era of these complexes, though, was before High Throughput Experimentation (HTE) could contribute significantly to their evolution. Herein, we illustrate a Quantitative Structure – Activity Relationship (QSAR) model trained on a robust and highly accurate HTE database. The clear-box QSAR model utilizes, in particular, a limited number of chemically intuitive 3D geometric descriptors that screen various regions of space in and around the catalytic pocket in a modular way thus enabling to quantify individual substituent contributions. The main focus of the paper is on the methodology, which should be of rather broad applicability in molecular organometallic catalysis. Then again, it is worth emphasizing that the specific application reported here led us to identify in a comparatively short time novel zirconocene catalysts rivaling or even outperforming all previous homologues which strongly indicates that the metallocene story is not over yet. MDPI 2020-04-27 /pmc/articles/PMC7284373/ /pubmed/32349220 http://dx.doi.org/10.3390/polym12051005 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ehm, Christian
Vittoria, Antonio
Goryunov, Georgy P.
Izmer, Vyatcheslav V.
Kononovich, Dmitry S.
Samsonov, Oleg V.
Di Girolamo, Rocco
Budzelaar, Peter H. M.
Voskoboynikov, Alexander Z.
Busico, Vincenzo
Uborsky, Dmitry V.
Cipullo, Roberta
An Integrated High Throughput Experimentation/Predictive QSAR Modeling Approach to ansa-Zirconocene Catalysts for Isotactic Polypropylene
title An Integrated High Throughput Experimentation/Predictive QSAR Modeling Approach to ansa-Zirconocene Catalysts for Isotactic Polypropylene
title_full An Integrated High Throughput Experimentation/Predictive QSAR Modeling Approach to ansa-Zirconocene Catalysts for Isotactic Polypropylene
title_fullStr An Integrated High Throughput Experimentation/Predictive QSAR Modeling Approach to ansa-Zirconocene Catalysts for Isotactic Polypropylene
title_full_unstemmed An Integrated High Throughput Experimentation/Predictive QSAR Modeling Approach to ansa-Zirconocene Catalysts for Isotactic Polypropylene
title_short An Integrated High Throughput Experimentation/Predictive QSAR Modeling Approach to ansa-Zirconocene Catalysts for Isotactic Polypropylene
title_sort integrated high throughput experimentation/predictive qsar modeling approach to ansa-zirconocene catalysts for isotactic polypropylene
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7284373/
https://www.ncbi.nlm.nih.gov/pubmed/32349220
http://dx.doi.org/10.3390/polym12051005
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