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Optical analysis of light-emitting electrochemical cells

机译:发光电化学电池的光学分析

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摘要

The light-emitting electrochemical cell (LEC) is a contender for emerging applications of light, primarily because it offers low-cost solution fabrication of easily functionalized device architectures. The attractive properties originate in the in-situ formation of electrochemically doped transport regions that enclose an emissive intrinsic region, but the understanding of how this intricate doping structure affects the optical performance of the LEC is largely lacking. We combine angle- and doping-dependent measurements and simulations, and demonstrate that the emission zone in our high-performance LEC is centered at ~30% of the active-layer thickness (dal) from the anode. We further find that the emission intensity and efficiency are undulating with dal, and establish that the first emission maximum at dal ~ 100 nm is largely limited by the lossy coupling of excitons to the doping regions, whereas the most prominent loss channel at the second maximum at dal ~ 300 nm is wave-guided modes.
机译:发光电化学电池(LEC)是光新兴应用的竞争者,主要是因为它提供了易于功能化的器件架构的低成本解决方案制造。吸引人的特性源自包围发射的本征区的电化学掺杂的传输区的原位形成,但是,对这种复杂的掺杂结构如何影响LEC的光学性能的了解仍然很缺乏。我们结合了角度和掺杂相关的测量和模拟,并证明了高性能LEC中的发射区位于阳极活性层厚度(dal)的约30%中心。我们进一步发现,发射强度和效率随dal波动,并确定dal〜100 nm处的第一个发射最大值在很大程度上受到激子与掺杂区的有损耦合的限制,而第二个最大值处最突出的损耗通道在达〜300 nm处是波导模式。

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