Fabrizi de Biani Fabrizia, Reale Annalisa, Razzano Vincenzo, Paolino Marco, Giuliani Germano, Donati Alessandro, Giorgi Gianluca, Mróz Wojciech, Piovani Daniele, Botta Chiara, Cappelli Andrea
Dipartimento di Biotecnologie, Chimica e Farmacia and European Research Centre for Drug Discovery and Development, Università degli Studi di Siena Via Aldo Moro 2 53100 Siena Italy
Istituto per lo Studio delle Macromolecole (CNR) Via A. Corti 12 20133 Milano Italy.
RSC Adv. 2018 Mar 19;8(20):10836-10847. doi: 10.1039/c7ra13242e. eCollection 2018 Mar 16.
The electrochemical behavior of some polybenzofulvene derivatives bearing bithiophene (BT) or terthiophene (TT) side chains was investigated by cyclic voltammetry. Very interestingly, the presence of unsubstituted terminal thiophene moieties allowed poly-6-BT-BF3k and poly-6-TT-BF3k to be cross-linked by electrochemical procedures. Conductive films were obtained by electrodeposition from solutions of these polymers onto electrode surfaces through the formation of covalent cross-linking due to dimerization ( electrochemical oxidation) of the BT or TT side chains. The films showed electrochromic features and switched from yellow-orange (neutral) to green (positively charged) by switching the potential, and were stable to tenths of cycles, without degradation in the wet state in the electrolyte solution. Finally, the thin film obtained by electrodeposition of poly-6-TT-BF3k on a indium tin oxide (ITO) glass substrate showed in the neutral state a significantly red-shifted photoluminescence (PL) emission (∼40 nm red-shifted with respect to that of the corresponding film obtained by casting procedures), which was consistent with the presence of more conjugated moieties produced by the oxidative dimerization of the TT side chains. The innovative architecture and the easy preparation could lead to a broad range of applications in optoelectronics and bioelectronics for these cross-linked hybrid materials based on π-stacked polybenzofulvene backbones bearing oligothiophene side chains.
通过循环伏安法研究了一些带有联噻吩(BT)或三联噻吩(TT)侧链的聚苯并富烯衍生物的电化学行为。非常有趣的是,未取代的末端噻吩部分的存在使得聚-6-BT-BF3k和聚-6-TT-BF3k能够通过电化学方法进行交联。通过将这些聚合物的溶液电沉积到电极表面,由于BT或TT侧链的二聚化(电化学氧化)形成共价交联,从而获得导电膜。这些膜表现出电致变色特性,通过改变电位可从黄橙色(中性)转变为绿色(带正电),并且在十分之几的循环中保持稳定,在电解质溶液的湿态下不会降解。最后,在氧化铟锡(ITO)玻璃基板上电沉积聚-6-TT-BF3k得到的薄膜在中性状态下显示出明显红移的光致发光(PL)发射(相对于通过浇铸法获得的相应薄膜红移约40 nm),这与TT侧链氧化二聚产生的更多共轭部分的存在相一致。基于带有寡噻吩侧链的π堆积聚苯并富烯主链的这些交联杂化材料的创新结构和易于制备可能会在光电子学和生物电子学中带来广泛的应用。