Literature DB >> 29522325

A Rational Design of Highly Controlled Suzuki-Miyaura Catalyst-Transfer Polycondensation for Precision Synthesis of Polythiophenes and Their Block Copolymers: Marriage of Palladacycle Precatalysts with MIDA-Boronates.

Kyeong-Bae Seo1, In-Hwan Lee2, Jaeho Lee1, Inho Choi1, Tae-Lim Choi1.   

Abstract

Herein, we report a highly efficient Suzuki-Miyaura catalyst-transfer polycondensation (SCTP) of 3-alkylthiophenes using bench-stable but highly active Buchwald dialkylbiarylphospine Pd G3 precatalysts and N-methylimidodiacetic (MIDA)-boronate monomers. Initially, the feasibility of the catalyst-transfer process was examined by screening various dialkylbiarylphospine-Pd(0) species. After optimizing a small molecule model reaction, we identified both RuPhos and SPhos Pd G3 precatalysts as excellent catalyst systems for this purpose. On the basis of these model studies, SCTP was tested using either RuPhos or SPhos Pd G3 precatalyst, and 5-bromo-4- n-hexylthien-2-yl-pinacol-boronate. Poly(3-hexylthiophene) (P3HT) was produced with controlled molecular weight and narrow dispersity for a low degree of polymerization (DP) only, while attempts to synthesize P3HT having a higher DP with good control were unsuccessful. To improve the control, slowly hydrolyzed 5-bromo-4- n-hexylthien-2-yl-MIDA-boronate was introduced as a new monomer. As a result, P3HT and P3EHT (up to 17.6 kg/mol) were prepared with excellent control, narrow dispersity, and excellent yield (>90%). Detailed mechanistic investigation using 31P NMR and MALDI-TOF spectroscopy revealed that both fast initiation using Buchwald precatalysts and the suppression of protodeboronation due to the protected MIDA-boronate were crucial to achieve successful living polymerization of P3HT. In addition, a block copolymer of P3HT- b-P3EHT was prepared via SCTP by sequential addition of each MIDA-boronate monomer. Furthermore, the same block copolymer was synthesized by one-shot copolymerization for the first time by using fast propagating pinacol-boronate and slow propagating MIDA-boronate.

Entities:  

Year:  2018        PMID: 29522325     DOI: 10.1021/jacs.7b13701

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  5 in total

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Authors:  Evan R Darzi; Joyann S Barber; Neil K Garg
Journal:  Angew Chem Int Ed Engl       Date:  2019-05-30       Impact factor: 15.336

2.  Automated iterative Csp3-C bond formation.

Authors:  Daniel J Blair; Sriyankari Chitti; Melanie Trobe; David M Kostyra; Hannah M S Haley; Richard L Hansen; Steve G Ballmer; Toby J Woods; Wesley Wang; Vikram Mubayi; Michael J Schmidt; Robert W Pipal; Greg F Morehouse; Andrea M E Palazzolo Ray; Danielle L Gray; Adrian L Gill; Martin D Burke
Journal:  Nature       Date:  2022-02-08       Impact factor: 49.962

3.  The role of halogens in the catalyst transfer polycondensation for π-conjugated polymers.

Authors:  Shuyang Ye; Scott M Foster; Adam A Pollit; Susan Cheng; Dwight S Seferos
Journal:  Chem Sci       Date:  2018-12-19       Impact factor: 9.825

4.  Synthesis, properties, and material hybridization of bare aromatic polymers enabled by dendrimer support.

Authors:  Shusei Fujiki; Kazuma Amaike; Akiko Yagi; Kenichiro Itami
Journal:  Nat Commun       Date:  2022-09-16       Impact factor: 17.694

5.  A Convenient, Rapid, Conventional Heating Route to MIDA Boronates.

Authors:  Andrew McGown; Anthony K Edmonds; Daniel Guest; Verity L Holmes; Chris Dadswell; Ramón González-Méndez; Charles A I Goodall; Mark C Bagley; Barnaby W Greenland; John Spencer
Journal:  Molecules       Date:  2022-08-09       Impact factor: 4.927

  5 in total

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