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首页> 外文期刊>Journal of Electronic Materials >Dynamics of an Optically Generated Electric Field in a Quantum Dot Molecule Device Using Time-Resolved Photoluminescence Measurements
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Dynamics of an Optically Generated Electric Field in a Quantum Dot Molecule Device Using Time-Resolved Photoluminescence Measurements

机译:使用时间分辨光致发光测量的量子点分子器件中的光生电场的动力学

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Interdot transitions in the emission spectra of a quantum dot molecule may be used as a sensitive nanoscale probe to measure electric fields. Here, we demonstrate this potential by monitoring the temporal behavior of photovoltaic band flattening in a Schottky diode structure using a two-color excitation scheme. First, a continuous wave laser is tuned to an excitation energy below the wetting layer (WL) emission energy to create the interdot transition that is used to monitor the electric field in the device. A second modulated laser, at higher energy, is then used to create the optically generated electric field (OGEF) which leads to the photovoltaic band flattening. It is found that the rise time of this OGEF is similar to 2.85 mu s and the decay, or fall time, is on the order of similar to 110 mu s, most likely determined by device-dependent carrier transport, trapping, and tunneling rates. We also find that, at higher applied fields, the OGEF tends to decay faster and the measured values are consistent with the photovoltaic band-flattening effects reported previously in nanostructure devices.
机译:量子点分子的发射光谱中的点间跃迁可以用作灵敏的纳米级探针来测量电场。在这里,我们通过监视使用双色激励方案的肖特基二极管结构中的光伏带平坦化的时间行为来证明这种潜力。首先,将连续波激光器调谐到低于润湿层(WL)发射能量的激发能,以产生点间跃迁,该点跃迁用于监视设备中的电场。然后,以更高的能量使用第二个调制激光器来创建光学产生的电场(OGEF),该电场导致光伏带平坦化。发现该OGEF的上升时间大约为2.85μs,衰减或下降时间大约为110μs,最有可能由与器件有关的载流子传输,俘获和隧穿速率决定。我们还发现,在更高的应用领域,OGEF倾向于衰减更快,并且测量值与先前在纳米结构器件中报道的光伏带展平效应一致。

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