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Calibrating and controlling the quantum efficiency distribution of inhomogeneously broadened quantum rods by using a mirror ball

机译:使用镜球校准和控制非均匀加宽量子棒的量子效率分布

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We demonstrate that a simple silver coated ball lens can be used to accurately measure the entire distribution of radiative transition rates of quantum dot nanocrystals. This simple and cost-effective implementation of Drexhage's method that uses nanometer-controlled optical mode density variations near a mirror, not only allows an extraction of calibrated ensemble-averaged rates, but for the first time also to quantify the full inhomogeneous dispersion of radiative and non radiative decay rates across thousands of nanocrystals. We apply the technique to novel ultrastable CdSe/CdS dot-in-rod emitters. The emitters are of large current interest due to their improved stability and reduced blinking. We retrieve a room-temperature ensemble average quantum efficiency of 0.87 ± 0.08 at a mean lifetime around 20 ns. We confirm a log-normal distribution of decay rates as often assumed in literature, and we show that the rate distribution-width, that amounts to about 30% of the mean decay rate, is strongly dependent on the local density of optical states.
机译:我们证明了一个简单的镀银球形透镜可用于准确测量量子点纳米晶体的辐射跃迁速率的整个分布。 Drexhage方法的这种简单且经济高效的实现方式是在镜子附近使用纳米级控制的光学模式密度变化,不仅可以提取校准的集合平均速率,而且还首次可以量化辐射和辐射的完全不均匀色散。数千个纳米晶体的非辐射衰减率。我们将该技术应用于新型超稳定CdSe / CdS点对棒发射器。发射器由于其提高的稳定性和减少的闪烁而引起了大电流需求。我们在20 ns左右的平均寿命下获得了0.87±0.08的室温整体平均量子效率。我们确认了文献中经常假设的衰减率的对数正态分布,并且我们证明了速率分布宽度(约等于平均衰减率的30%)在很大程度上取决于光学状态的局部密度。

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