论文标题

半导体纳米晶体中非放射性过程的模拟

Simulations of nonradiative processes in semiconductor nanocrystals

论文作者

Jasrasaria, Dipti, Weinberg, Daniel, Philbin, John P., Rabani, Eran

论文摘要

在空间限制的半导体纳米晶体(NCS)中对载体动力学的描述,这些纳米晶体(NCS)增强了电子孔和激子相互作用,对现代计算科学来说是一个巨大的挑战。这些NC通常包含成千上万的原子和数以万计的价电子,它们在低激发能,类似于原子和分子,它们会收敛到较高能量下的连续体积极限。针对分子开发的计算方法仅限于很小的纳米簇,并且具有周期性边界条件的批量系统的方法不合适,因为NC中缺乏翻译对称性。这种观点的重点是我们在开发基于半经验的伪能力方法开发统一的原子模型方面的努力,该方法通过第一原理计算进行了参数,并针对实验测量进行了验证,以描述两个主要的非源自放松量子的量子量子量子量:Exciton冷却和增强培养剂的重新组合。我们专注于在我们的方法中对电子孔和激子相互作用的描述,并讨论了II-VI和III-V半导体NCS的大小,形状和接口对电子性能和动力学的作用。

The description of carrier dynamics in spatially confined semiconductor nanocrystals (NCs), which have enhanced electron-hole and exciton-phonon interactions, is a great challenge for modern computational science. These NCs typically contain thousands of atoms and tens of thousands of valence electrons with a discrete spectrum at low excitation energies, similar to atoms and molecules, that converges to the continuum bulk limit at higher energies. Computational methods developed for molecules are limited to very small nanoclusters, and methods for bulk systems with periodic boundary conditions are not suitable due to the lack of translational symmetry in NCs. This perspective focuses on our recent efforts in developing a unified atomistic model based on the semiempirical pseudopotential approach, which is parametrized by first-principles calculations and validated against experimental measurements, to describe two of the main nonradiative relaxation processes of quantum confined excitons: exciton cooling and Auger recombination. We focus on the description of both electron-hole and exciton-phonon interactions in our approach and discuss the role of size, shape, and interfacing on the electronic properties and dynamics for II-VI and III-V semiconductor NCs.

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