Wolski Karol, Smenda Joanna, Świerz Wojciech, Dąbczyński Paweł, Marzec Mateusz, Zapotoczny Szczepan
Faculty of Chemistry, Jagiellonian University, Gronostajowa 2, Krakow, 30-387, Poland.
Doctoral School of Exact and Natural Sciences, Jagiellonian University, Łojasiewicza 11, Krakow, 30-348, Poland.
Small. 2024 Jul;20(29):e2309216. doi: 10.1002/smll.202309216. Epub 2024 Feb 9.
An effective synthesis of conductive polymer brushes, i.e., self-templating surface-initiated copolymerization (ST-SICP), is developed. It proceeds through copolymerization of pendant thiophene groups in the precursor multimonomer poly(3-methylthienyl methacrylate) (PMTM) brushes with free 3-methylthiophene (3MT) monomers leading to PMTM-co-P3MT brushes. This approach leads to improved conformational freedom of generated conjugated poly(thiophene)-based chains and their higher share in the brushes with respect to conjugation of pendant thiophene groups only. As a result, best performing conjugated PMTM-co-P3MT brushes demonstrate high ohmic conductivity in both out-of-plane and in-plane direction. Furthermore, thanks to the covalent anchoring as well as intra- and intermolecular connections, highly stable and mechanically robust nanocoatings are produced which can survive mechanical cleaning and long-term storage under ambient conditions. Grafting of ionic poly(sodium 4-styrenesulfonate) (PSSNa) in between PMTM-co-P3MT chains brings new properties to such binary mixed brushes that can operate as thin-film memristive coating with switchable conductance. It is worth mentioning that the crucial synthetic steps, i.e., grafting of precursor PMTM brushes by surface-initiated organocatalyzed atom transfer radical polymerization (SI-O-ATRP) and PSSNa chains by surface-initiated photoiniferter-mediated polymerization (SI-PIMP) are conducted under ambient conditions using only microliter volumes of reagents providing methodology that can be considered for use beyond the laboratory scale.
开发了一种有效的导电聚合物刷合成方法,即自模板表面引发共聚(ST-SICP)。它通过前体多单体聚(3-甲基噻吩基甲基丙烯酸酯)(PMTM)刷中的侧链噻吩基团与游离的3-甲基噻吩(3MT)单体共聚,生成PMTM-co-P3MT刷。这种方法提高了生成的基于聚噻吩的链的构象自由度,并且相对于仅侧链噻吩基团的共轭,它们在刷中的比例更高。结果,性能最佳的共轭PMTM-co-P3MT刷在平面外和平面内方向均表现出高欧姆电导率。此外,由于共价锚固以及分子内和分子间连接,制备了高度稳定且机械坚固的纳米涂层,该涂层能够在环境条件下经受机械清洗和长期储存。在PMTM-co-P3MT链之间接枝离子型聚(4-苯乙烯磺酸钠)(PSSNa)为这种二元混合刷带来了新的性能,使其可以作为具有可切换电导的薄膜忆阻涂层。值得一提的是,关键的合成步骤,即通过表面引发的有机催化原子转移自由基聚合(SI-O-ATRP)接枝前体PMTM刷,以及通过表面引发的光引发转移终止剂介导的聚合(SI-PIMP)接枝PSSNa链,都是在环境条件下仅使用微升体积的试剂进行的,提供了一种可考虑在实验室规模之外使用的方法。