School of Chemistry and Biochemistry, School of Materials Science and Engineering, Center for Organic Photonics and Electronics, Georgia Tech Polymer Network, Georgia Institute of Technology, Atlanta, GA, 30332, USA.
Department of Biomedical Engineering, McCormick School of Engineering, Northwestern University, Evanston, IL, 60208, USA.
Adv Mater. 2018 Dec;30(50):e1804647. doi: 10.1002/adma.201804647. Epub 2018 Oct 14.
This work presents a soluble oligo(ether)-functionalized propylenedioxythiophene (ProDOT)-based copolymer as a versatile platform for a range of high-performance electrochemical devices, including organic electrochemical transistors (OECTs), electrochromic displays, and energy-storage devices. This polymer exhibits dual electroactivity in both aqueous and organic electrolyte systems, redox stability for thousands of redox cycles, and charge-storage capacity exceeding 80 F g . As an electrochrome, this material undergoes full colored-to-colorless optical transitions on rapid time scales (<2 s) and impressive electrochromic contrast (Δ%T > 70%). Incorporation of the polymer into OECTs yields accumulation-mode devices with an I current ratio of 10 , high transconductance without post-treatments, as well as competitive hole mobility and volumetric capacitance, making it an attractive candidate for biosensing applications. In addition to being the first ProDOT-based OECT active material reported to date, this is also the first reported OECT material synthesized via direct(hetero)arylation polymerization, which is a highly favorable polymerization method when compared to commonly used Stille cross-coupling. This work provides a demonstration of how a single ProDOT-based polymer, prepared using benign polymerization chemistry and functionalized with highly polar side chains, can be used to access a range of highly desirable properties and performance metrics relevant to electrochemical, optical, and bioelectronic applications.
这项工作提出了一种可溶性的醚官能化丙撑二氧噻吩(ProDOT)基共聚物,作为一系列高性能电化学器件的通用平台,包括有机电化学晶体管(OECT)、电致变色显示器和储能器件。该聚合物在水相和有机电解质体系中均表现出双重电化学活性、数千个循环的氧化还原稳定性和超过 80 F g 的电荷存储容量。作为电致变色材料,该材料在快速时间尺度(<2 s)内经历全彩色到无色的光学转变,具有令人印象深刻的电致变色对比度(Δ%T > 70%)。将聚合物掺入 OECT 中可得到积累模式器件,其 I 电流比为 10,无需后处理即可获得高跨导,以及具有竞争力的空穴迁移率和体积电容,使其成为生物传感应用的有吸引力的候选者。除了是迄今为止报道的第一个基于 ProDOT 的 OECT 活性材料外,这也是第一个通过直接(杂)芳基化聚合合成的 OECT 材料,与常用的 Stille 交叉偶联相比,这是一种非常有利的聚合方法。这项工作展示了如何使用一种基于 ProDOT 的聚合物,该聚合物使用良性聚合化学制备并具有高度极性的侧链官能化,从而获得一系列与电化学、光学和生物电子学应用相关的高度理想的性质和性能指标。