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Fabrication of dense diameter-tuned quantum dot micropillar arrays for applications in photonic information processing

机译:密集直径调谐量子点微粒阵列的制造在光子信息处理中的应用

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摘要

We report on the realization of a dense, large-scale array of 900 quantum dot micropillar cavities with high spectral homogeneity. We target applications in photonic information processing such as optical reservoir computing which can be implemented in large arrays of optically coupled microlasers. To achieve the required spectral homogeneity for the underlying optical injection locking, we calculate and set the diameter of each individual micropillar within the array during the fabrication process by taking the diameter-dependent emission wavelength of the microcavities into account. Using this kind of diameter adjustment, we improve the overall wavelength homogeneity in a 30 × 30 micropillar array by 64% and reduce the standard deviation of the resonance energy distribution by 26% from 352 μeV in the planar unprocessed sample to 262 μeV in the fabricated array. In addition, we present a detailed analysis of the device quality and the diameter control of the micropillar’s emission wavelength, which includes important information for the effective application of the developed fabrication method for the realization of highly homogeneous micropillar arrays in the future.
机译:我们报告了具有高光谱均匀性的900级量子点微储物的密集,大规模阵列的实现。我们在光子信息处理中瞄准应用的应用,例如光学储存器计算,其可以在大阵列的光学耦合的微加法器中实现。为了实现底层光学注射锁定所需的光谱均匀性,通过考虑到微腔的直径依赖性发射波长,在制造过程中计算并设定在阵列内的每个单独微小硅的直径。使用这种直径调节,我们将30×30微米阵列中的总体波长均匀提高64%,并将共振能量分布的标准偏差从平面下处理的样品中的352μEV降低到262μEV中的262μEV。大批。此外,我们介绍了对微米发射波长的器件质量和直径控制的详细分析,包括有效应用开发的制造方法在未来实现高度均匀的微米阵列的重要信息。

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