Johan Gadolin Process Chemistry Centre, Laboratory of Molecular Science and Engineering, Åbo Akademi University, Biskopsgatan 8, FI-20500 Turku/Åbo, Finland.
Molecular Plant Biology, Department of Biochemistry, University of Turku, FI-20014 Turku, Finland.
ACS Appl Bio Mater. 2021 Jan 18;4(1):483-493. doi: 10.1021/acsabm.0c00989. Epub 2020 Dec 15.
Electrically conductive composite nanofibers were fabricated using poly(3,4-ethylenedioxythiophene) doped with poly(styrenesulfonate) (PEDOT-PSS) and cellulose nanofibrils (CNFs) via the electrospinning technique. Poly(ethylene oxide) (PEO) was used to assist the electrospinning process, and poly(ethylene glycol) diglycidyl ether was used to induce chemical cross-linking, enabling stability of the formed fibrous mats in water. The experimental parameters regarding the electrospinning polymer dispersion and electrospinning process were carefully studied to achieve a reproducible method to obtain bead-free nanofibrous mats with high stability after water contact, with an electrical conductivity of 13 ± 5 S m, thus making them suitable for bioelectrochemical applications. The morphology of the electrospun nanofibers was characterized by scanning electron microscopy, and the C/S ratio was determined with energy dispersive X-ray analysis. Cyclic voltammetric studies showed that the PEDOT-PSS/CNF/PEO composite fibers exhibited high electroactivity and high stability in water for at least two months. By infrared spectroscopy, the slightly modified fiber morphology after water contact was demonstrated to be due to dissolution of some part of the PEO in the fiber structure. The biocompatibility of the PEDOT-PSS/CNF/PEO composite fibers when used as an electroconductive substrate to immobilize microalgae and cyanobacteria in a photosynthetic bioelectrochemical cell was also demonstrated.
通过静电纺丝技术,使用掺杂有聚(苯乙烯磺酸盐)(PEDOT-PSS)和纤维素纳米纤维(CNF)的聚(3,4-亚乙基二氧噻吩)(PEDOT-PSS)和纤维素纳米纤维(CNF)制备了导电复合纳米纤维。使用聚(氧化乙烯)(PEO)来辅助静电纺丝过程,并用聚乙二醇二缩水甘油醚来诱导化学交联,使形成的纤维垫在水中具有稳定性。仔细研究了关于静电纺丝聚合物分散体和静电纺丝过程的实验参数,以实现一种可重复的方法,获得无珠状的纳米纤维垫,在接触水后具有高稳定性,电导率为 13±5 S m,从而使其适用于生物电化学应用。通过扫描电子显微镜对静电纺纳米纤维的形态进行了表征,并通过能谱分析确定了 C/S 比。循环伏安研究表明,PEDOT-PSS/CNF/PEO 复合纤维在水中具有高电活性和高稳定性,至少可稳定两个月。通过红外光谱,证明了水接触后纤维形态的轻微变化是由于部分 PEO 在纤维结构中溶解。还证明了 PEDOT-PSS/CNF/PEO 复合纤维作为固定微藻和蓝细菌的导电基底在光合生物电化学电池中的生物相容性。