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时间分辨化学成像在电致发光电化学池中的应用。

Time-Resolved Chemical Mapping in Light-Emitting Electrochemical Cells.

机构信息

Division of Molecular Physics, Department of Physics, Chemistry and Biology, Linköping University , Linköping SE-581 83, Sweden.

Department of Science and Technology, Campus Norrköping, Linköping University , Norrköping SE-601 74, Sweden.

出版信息

ACS Appl Mater Interfaces. 2017 Jan 25;9(3):2747-2757. doi: 10.1021/acsami.6b14162. Epub 2017 Jan 13.

Abstract

An understanding of the doping and ion distributions in light-emitting electrochemical cells (LECs) is required to approach a realistic conduction model which can precisely explain the electrochemical reactions, p-n junction formation, and ion dynamics in the active layer and to provide relevant information about LECs for systematic improvement of function and manufacture. Here, Fourier-transform infrared (FTIR) microscopy is used to monitor anion density profile and polymer structure in situ and for time-resolved mapping of electrochemical doping in an LEC under bias. The results are in very good agreement with the electrochemical doping model with respect to ion redistribution and formation of a dynamic p-n junction in the active layer. We also physically slow ions by decreasing the working temperature and study frozen-junction formation and immobilization of ions in a fixed-junction LEC device by FTIR imaging. The obtained results show irreversibility of the ion redistribution and polymer doping in a fixed-junction device. In addition, we demonstrate that infrared microscopy is a useful tool for in situ characterization of electroactive organic materials.

摘要

为了接近一个能够精确解释电化学反应、p-n 结形成和活性层中离子动力学的现实传导模型,需要了解发光电化学电池(LEC)中的掺杂和离子分布情况,并提供有关 LEC 的相关信息,以系统地提高功能和制造水平。在这里,傅里叶变换红外(FTIR)显微镜用于原位监测阴离子密度分布和聚合物结构,并对偏压下 LEC 中的电化学掺杂进行时间分辨映射。结果与离子再分布和活性层中动态 p-n 结形成的电化学掺杂模型非常吻合。我们还通过降低工作温度物理上减缓离子的运动速度,并通过 FTIR 成像研究固定结 LEC 器件中冻结结的形成和离子的固定。得到的结果表明,在固定结器件中,离子重新分布和聚合物掺杂是不可逆的。此外,我们证明了红外显微镜是一种用于原位表征电活性有机材料的有用工具。

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