电化学
材料科学
循环伏安法
兴奋剂
电解质
导电聚合物
化学工程
电极
化学
物理化学
光电子学
工程类
作者
Runxia Wang,Junxin Chen,J. S. Tan,Sairathna Choppella,Mahesh Kumar Ravva,Zhengke Li,Qi Cui,Mingfei Xiao,Tao Zhang,Wan Yue
出处
期刊:Small methods
[Wiley]
日期:2025-09-18
卷期号:9 (11): e01365-e01365
被引量:1
标识
DOI:10.1002/smtd.202501365
摘要
Electrochemical doping is central to energy storage, neuromorphic computing, and biosensing, yet the mechanisms governing efficient n-type doping and ion-structure correlations remain poorly understood. Here, efficient n-type electrochemical doping is reported in the polymeric mixed conductor gDPP-tB0 through tailored organic cation interactions, investigated via cyclic voltammetry, in situ spectroelectrochemistry, grazing-incidence wide-angle X-ray scattering, and molecular dynamics simulations. Compared to the choline cation (Ch+) system, the 1-ethylpyridinium cation (EPy+) system exhibited superior doping kinetics, achieving a higher reduction current density (0.47 mA cm-2), faster ion diffusion coefficient (6.77 × 10-9 cm2 s-1), more pronounced polaron generation, and improved OECT performance (µC* up to 18.7 F cm-1 V-1 s-1). These improvements stem from EPy+'s preferential backbone localization, which minimizes polymer distortion, maintains high crystallinity, and optimizes ion-electron coupling, thus resulting in more efficient n-type electrochemical doping. Moreover, further gains in doping efficiency are realized by tuning the pyridyl cation concentration and alkyl chain length. The work reveals a new paradigm for efficient n-type electrochemical doping in polymeric mixed conductors via organic cation engineering, offering new insights into the rational design of ionic liquids for enhancing n-type electrochemical doping and accelerating the development of wearable bioelectronics.
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