Literature DB >> 22614678

Lewis pair polymerization by classical and frustrated Lewis pairs: acid, base and monomer scope and polymerization mechanism.

Yuetao Zhang1, Garret M Miyake, Mallory G John, Laura Falivene, Lucia Caporaso, Luigi Cavallo, Eugene Y-X Chen.   

Abstract

Classical and frustrated Lewis pairs (LPs) of the strong Lewis acid (LA) Al(C(6)F(5))(3) with several Lewis base (LB) classes have been found to exhibit exceptional activity in the Lewis pair polymerization (LPP) of conjugated polar alkenes such as methyl methacrylate (MMA) as well as renewable α-methylene-γ-butyrolactone (MBL) and γ-methyl-α-methylene-γ-butyrolactone (γ-MMBL), leading to high molecular weight polymers, often with narrow molecular weight distributions. This study has investigated a large number of LPs, consisting of 11 LAs as well as 10 achiral and 4 chiral LBs, for LPP of 12 monomers of several different types. Although some more common LAs can also be utilized for LPP, Al(C(6)F(5))(3)-based LPs are far more active and effective than other LA-based LPs. On the other hand, several classes of LBs, when paired with Al(C(6)F(5))(3), can render highly active and effective LPP of MMA and γ-MMBL; such LBs include phosphines (e.g., P(t)Bu(3)), chiral chelating diphosphines, N-heterocyclic carbenes (NHCs), and phosphazene superbases (e.g., P(4)-(t)Bu). The P(4)-(t)Bu/Al(C(6)F(5))(3) pair exhibits the highest activity of the LP series, with a remarkably high turn-over frequency of 9.6 × 10(4) h(-1) (0.125 mol% catalyst, 100% MMA conversion in 30 s, M(n) = 2.12 × 10(5) g mol(-1), PDI = 1.34). The polymers produced by LPs at RT are typically atactic (P(γ)MMBL with ∼47% mr) or syndio-rich (PMMA with ∼70-75% rr), but highly syndiotactic PMMA with rr ∼91% can be produced by chiral or achiral LPs at -78 °C. Mechanistic studies have identified and structurally characterized zwitterionic phosphonium and imidazolium enolaluminates as the active species of the current LPP system, which are formed by the reaction of the monomer·Al(C(6)F(5))(3) adduct with P(t)Bu(3) and NHC bases, respectively. Kinetic studies have revealed that the MMA polymerization by the (t)Bu(3)P/Al(C(6)F(5))(3) pair is zero-order in monomer concentration after an initial induction period, and the polymerization is significantly catalyzed by the LA, thus pointing to a bimetallic, activated monomer propagation mechanism. Computational study on the active species formation as well as the chain initiation and propagation events involved in the LPP of MMA with some of the most representative LPs has added our understanding of fundamental steps of LPP. The main difference between NHC and PR(3) bases is in the energetics of zwitterion formation, with the NHC-based zwitterions being remarkably more stable than the PR(3)-based zwitterions. Comparison of the monometallic and bimetallic mechanisms for MMA addition shows a clear preference for the bimetallic mechanism.

Entities:  

Year:  2012        PMID: 22614678     DOI: 10.1039/c2dt30427a

Source DB:  PubMed          Journal:  Dalton Trans        ISSN: 1477-9226            Impact factor:   4.390


  10 in total

1.  Chemoselective Lewis pair polymerization of renewable multivinyl-functionalized γ-butyrolactones.

Authors:  Ravikumar R Gowda; Eugene Y-X Chen
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2017-08-28       Impact factor: 4.226

2.  Lewis Pair Polymerization for New Reactivity and Structure in Polymer Synthesis.

Authors:  Jiawei Chen; Miao Hong; Eugene Y-X Chen
Journal:  Molecules       Date:  2018-04-16       Impact factor: 4.411

3.  The Lewis Pair Polymerization of Lactones Using Metal Halides and N-Heterocyclic Olefins: Theoretical Insights.

Authors:  Jan Meisner; Johannes Karwounopoulos; Patrick Walther; Johannes Kästner; Stefan Naumann
Journal:  Molecules       Date:  2018-02-15       Impact factor: 4.411

4.  Controlled and Efficient Polymerization of Conjugated Polar Alkenes by Lewis Pairs Based on Sterically Hindered Aryloxide-Substituted Alkylaluminumitle.

Authors:  Xiaojun Wang; Yixin Zhang; Miao Hong
Journal:  Molecules       Date:  2018-02-17       Impact factor: 4.411

5.  Tandem Lewis Pair Polymerization and Organocatalytic Ring-Opening Polymerization for Synthesizing Block and Brush Copolymers.

Authors:  Xing-Yu Sun; Wei-Min Ren; Si-Jie Liu; Yin-Bao Jia; Yi-Ming Wang; Xiao-Bing Lu
Journal:  Molecules       Date:  2018-02-21       Impact factor: 4.411

6.  Zn(OAc)₂-Catalyzing Ring-Opening Polymerization of N-Carboxyanhydrides for the Synthesis of Well-Defined Polypeptides.

Authors:  Yanzhao Nie; Xinmei Zhi; Haifeng Du; Jing Yang
Journal:  Molecules       Date:  2018-03-26       Impact factor: 4.411

7.  Chemoselective Polymerization of Polar Divinyl Monomers with Rare-Earth/Phosphine Lewis Pairs.

Authors:  Pengfei Xu; Lei Wu; Liqiu Dong; Xin Xu
Journal:  Molecules       Date:  2018-02-08       Impact factor: 4.411

Review 8.  Lewis Pair Catalysts in the Polymerization of Lactide and Related Cyclic Esters.

Authors:  Xinlei Li; Changjuan Chen; Jincai Wu
Journal:  Molecules       Date:  2018-01-17       Impact factor: 4.411

9.  Silyl Ketene Acetals/B(C₆F₅)₃ Lewis Pair-Catalyzed Living Group Transfer Polymerization of Renewable Cyclic Acrylic Monomers.

Authors:  Lu Hu; Wuchao Zhao; Jianghua He; Yuetao Zhang
Journal:  Molecules       Date:  2018-03-15       Impact factor: 4.411

10.  A Highly Lewis Acidic Strontium ansa-Arene Complex for Lewis Acid Catalysis and Isobutylene Polymerization.

Authors:  Philipp Dabringhaus; Marcel Schorpp; Harald Scherer; Ingo Krossing
Journal:  Angew Chem Int Ed Engl       Date:  2020-09-28       Impact factor: 15.336

  10 in total

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