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首页> 外文期刊>Journal of Nanoparticle Research >Calculation of the quantum efficiency for the absorption on confinement levels in quantum dots
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Calculation of the quantum efficiency for the absorption on confinement levels in quantum dots

机译:量子点中限制水平吸收的量子效率计算

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The quantum efficiency of the absorption on quantum confinement levels is investigated. This is achieved by modeling the electron confinement in a spherical quantum dot (QD). The confinement levels are calculated using both infinite and finite rectangular quantum wells. The spectral internal quantum efficiency is evaluated within both the models, by computing Einstein’s coefficients for the transitions between confinement levels. The size of QDs (1–3 nm radius) leads to negligible many body effects. The nature of the QD material and of the matrix embedding is taken into account in the finite rectangular quantum well approximation and introduces only a small correction. The temperature dependence of the efficiency is also taken into account. A numerical application is performed for a silicon QD of 2.5 nm radius, embedded in amorphous silica. It is proved that the absorption threshold shifts toward the far infrared limit and that the spectral internal quantum efficiency reaches 4–5% at the threshold.
机译:研究了吸收在量子约束水平上的量子效率。这是通过对球形量子点(QD)中的电子约束进行建模来实现的。使用无限和有限的矩形量子阱来计算约束水平。在两个模型中通过计算爱因斯坦在约束水平之间的转换系数来评估光谱内部量子效率。 QD的大小(半径1-3 nm)导致许多对人体的影响可忽略不计。在有限的矩形量子阱近似中考虑了QD材料和基质嵌入的性质,并且仅引入了很小的校正量。还考虑了效率的温度依赖性。对半径为2.5 nm的硅QD(嵌入无定形二氧化硅中)进行了数值应用。事实证明,吸收阈值向远红外极限移动,并且光谱内部量子效率在阈值处达到4–5%。

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