Ayalew Hailemichael, Wang Tian-Lin, Yu Hsiao-Hua
Smart Organic Materials Laboratory, Institute of Chemistry, Academia Sinica, 128 Sec. 2, Academia Road, Nankang, Taipei 11529, Taiwan.
Taiwan International Graduate Program (TIGP), Sustainable Chemical Science and Technology (SCST), Academia Sinica, Taipei 11529, Taiwan.
Polymers (Basel). 2019 Apr 10;11(4):659. doi: 10.3390/polym11040659.
Deprotonation-induced conductivity shift of poly(3,4-ethylenedixoythiophene)s (PEDOTs) in aqueous solutions is a promising platform for chemical or biological sensor due to its large signal output and minimum effect from material morphology. Carboxylic acid group functionalized poly(C-EDOT-COOH)s are synthesized and electrodeposited on microelectrodes. The microelectrodes are utilized to study the effect of carboxylic acid side-chain length on the conductivity curve profiles in aqueous buffer with different pH. The conductivity shifts due to the buffer pH are effected by the length of the carboxylic acid side-chains. The shifts can be explained by the carboxylic acid dissociation property (p) at the solid-liquid interface, self-doping effect, and effective conjugation length. Conductivity profiles of poly(EDOT-OH--C₂-EDOT-COOH) copolymers are also studied. The shifts show linear relationship with the feed monomer composition used in electrochemical polymerization.
聚(3,4 - 亚乙基二氧噻吩)(PEDOTs)在水溶液中去质子化诱导的电导率变化,因其大信号输出和材料形态影响最小,是化学或生物传感器的一个有前景的平台。合成了羧酸基团功能化的聚(C - EDOT - COOH)并电沉积在微电极上。利用这些微电极研究了羧酸侧链长度对不同pH值的水性缓冲液中电导率曲线轮廓的影响。由于缓冲液pH值导致的电导率变化受羧酸侧链长度的影响。这种变化可以通过固液界面处羧酸的解离性质(p)、自掺杂效应和有效共轭长度来解释。还研究了聚(EDOT - OH - - C₂ - EDOT - COOH)共聚物的电导率曲线。这些变化与电化学聚合中使用的进料单体组成呈线性关系。