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Dipole reorientation and local density of optical states influence the emission of light-emitting electrochemical cells

机译:光学状态的偶极重新定向和局部密度影响发光电化学电池的发射

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Herein, we analyze the temporal evolution of the electroluminescence of light-emitting electrochemical cells (LECs), a thin-film light-emitting device, in order to maximize the luminous power radiated by these devices. A careful analysis of the spectral and angular distribution of the emission of LECs fabricated under the same experimental conditions allows describing the dynamics of the spatial region from which LECs emit, i.e. the generation zone, as bias is applied. This effect is mediated by dipole reorientation within such an emissive region and its optical environment, since its spatial drift yields a different interplay between the intrinsic emission of the emitters and the local density of optical states of the system. Our results demonstrate that engineering the optical environment in thin-film light-emitting devices is key to maximize their brightness.
机译:这里,我们分析发光电化学电池(LECS),薄膜发光装置的电致发光的时间演变,以最大化由这些装置辐射的发光功率。 仔细分析在相同的实验条件下制造的LECS的发射的光谱和角度分布允许描述LEC发射的空间区域的动态,即施加偏差。 这种效果是通过这种发光区域的偶极性重新定向和其光学环境中的偶极重新定位介导,因为其空间漂移产生了发射器的内在发射与系统的光学状态的局部密度之间的不同相互作用。 我们的结果表明,薄膜发光装置中的光学环境是最大化其亮度的钥匙。

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