生物电子学
极化子
晶体管
神经形态工程学
电化学
电子迁移率
材料科学
光电子学
电子线路
纳米技术
功率消耗
载流子
导电聚合物
电子
聚合物
化学物理
功率(物理)
化学
电气工程
电极
电压
物理
计算机科学
生物传感器
工程类
量子力学
物理化学
复合材料
机器学习
人工神经网络
作者
Junwei Shi,Peiyun Li,Xinyu Deng,Jingcao Xu,Zhen Huang,Yuqiu Lei,Yunfei Wang,Jie‐Yu Wang,Xiaodan Gu,Ting Lei
标识
DOI:10.1021/acs.chemmater.1c04037
摘要
Organic electrochemical transistors (OECTs) have shown great potential in bioelectronics and neuromorphic computing. However, the low performance of n-type OECTs impedes the construction of complementary-type circuits for low-power-consumption logic circuits and high-performance sensing. Compared with their p-type counterparts, the low electron mobility of n-type OECT materials is the primary challenge, leading to low μ C * and slow response speed. Nevertheless, no successful method has been reported to address the issue. Here, we find that the charge carrier mobility of n-type OECTs can be significantly enhanced by redistributing the polarons on the polymer backbone. As a result, 1 order of magnitude higher electron mobility is achieved in a new polymer, P(gPzDPP-CT2), with a simultaneously enhanced μ C * value and faster response speed. This work reveals the important role of polaron distribution in enhancing the performance of n-type OECTs.
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