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Simultaneous Observation of the Electrical and Luminous Characteristics of Light-Emitting Electrochemical Cells by Using a Displacement Current Measurement Technique

机译:利用位移电流测量技术同时观察发光电化学电池的电和发光特性

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摘要

An extended displacement current measurement (DCM) is performed to analyze the operation mechanisms of a poly(p-phenylenevinylene) derivative (Super Yellow)-based light-emitting electrochemical cell (LEC). The characteristics of the actual current, displacement current, and electroluminescence (EL) intensity during the relaxation processes of electrochemical doping are simultaneously measured. The transient characteristics indicate correlations between the conductance, capacitance, and EL efficiency. The conductance and capacitance decrease with proceeding doping relaxation, whereas the EL efficiency increases. The EL efficiency is dominated by the electrochemical doping state, rather than the actual current density. Moreover, the EL efficiency deteriorates with increasing direct current (DC) voltage applied for electrochemical doping. Since the DCM reveals that the electrical properties of the device obey the trap charge limited current regime in the intrinsic region and are almost independent of the applied DC voltage, efficiency deterioration is not responsible for the intrinsic region but for the doped region. The results suggest that the self-absorption in the doped region causes efficiency loss, otherwise the emitting zone is formed close to the doped region. The extended DCM enables us to comprehensively analyze the operation mechanisms of LECs on the basis of the simultaneous observations of electrical and luminous characteristics, including their transient changes.
机译:进行扩展位移电流测量(DCM),以分析基于聚(对亚苯基亚乙烯基)衍生物(超黄)的发光电化学电池(LEC)的工作机理。同时测量在电化学掺杂的弛豫过程中的实际电流,位移电流和电致发光(EL)强度的特性。瞬态特性表明电导,电容和EL效率之间的相关性。随着掺杂的进行,电导和电容减小,而EL效率增加。 EL效率由电化学掺杂状态决定,而不是由实际电流密度决定。而且,EL效率随着施加到电化学掺杂的直流(DC)电压的增加而恶化。由于DCM揭示了器件的电学特性在本征区域内遵循陷阱电荷受限电流机制,并且几乎与所施加的DC电压无关,因此效率下降不是本征区域的原因,而是掺杂区域的原因。结果表明,在掺杂区中的自吸收引起效率损失,否则发射区形成在靠近掺杂区的位置。扩展的DCM使我们能够在同时观察到电气和发光特性(包括瞬态变化)的基础上,全面分析LEC的运行机制。

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