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Efficient dipole-dipole coupling of Mott-Wannier and Frenkel excitons in (Ga,In)N quantum wvell/polyfluorene semiconductor heterostructures

机译:(Ga,In)N量子阱/聚芴半导体异质结构中Mott-Wannier和Frenkel激子的有效偶极-偶极耦合

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摘要

We investigate interactions between Mott-Wannier (MW) and Frenkel excitons in a family of hybrid structures consisting of thin organic (polyfluorene) films placed in close proximity (systematically adjusted by GaN cap layer thickness) to single inorganic [(Ga,In)N/GaN] quantum wells (QWs). Characterization of the QW structures using Rutherford backscattering spectrometry and atomic force microscopy allows direct measurement of the thickness and the morphology of the GaN cap layers. Time-resolved photoluminescence experiments in the 8-75 K temperature range confirm our earlier demonstration that nonradiative energy transfer can occur between inorganic and organic semiconductors. We assign the transfer mechanism to resonant Forster (dipole-dipole) coupling between MW exciton energy donors and Frenkel exciton energy acceptors and at 15 K we find transfer efficiencies of up to 43%. The dependence of the energy transfer rate on the distance R between the inorganic QW donor dipole and organic film acceptor dipole indicates that a plane-plane interaction, characterized by a 1/R~2 variation, best describes the situation found in our structures.
机译:我们调查了由混合的有机结构组成的杂化结构族中的Mott-Wannier(MW)和Frenkel激子之间的相互作用,该有机结构紧密地(通过GaN盖层厚度系统地调节)到单个无机[(Ga,In)N / GaN]量子阱(QW)。使用卢瑟福背散射光谱和原子力显微镜对QW结构进行表征可以直接测量GaN盖层的厚度和形态。在8-75 K的温度范围内进行时间分辨的光致发光实验,证实了我们较早的论证,即无机和有机半导体之间可能发生非辐射能量转移。我们将传递机制分配给MW激子能量供体和Frenkel激子能量受体之间的共振福斯特(偶极-偶极)耦合,在15 K时,我们发现传递效率高达43%。能量传递速率对无机QW供体偶极与有机膜受体偶极之间距离R的依赖性表明,以1 / R〜2变化为特征的平面相互作用最能描述我们结构中的情况。

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