Heyn Christian, Ranasinghe Leonardo, Alshaikh Ahmed, Duque Carlos A
Center for Hybrid Nanostructures (CHyN), University of Hamburg, Luruper Chaussee 149, 22761 Hamburg, Germany.
Grupo de Materia Condensada-UdeA, Instituto de Física, Facultad de Ciencias Exactas y Naturales, Universidad de Antioquia UdeA, Calle 70 No. 52-21, Medellín AA 1226, Colombia.
Nanomaterials (Basel). 2023 May 22;13(10):1696. doi: 10.3390/nano13101696.
The optical emission of cone-shell quantum structures (CSQS) under vertical electric () and magnetic () fields is studied by means of simulations. A CSQS has a unique shape, where an electric field induces the transformation of the hole probability density from a disk into a quantum-ring with a tunable radius. The present study addresses the influence of an additional magnetic field. A common description for the influence of a -field on charge carriers confined in a quantum dot is the Fock-Darwin model, which introduces the angular momentum quantum number to describe the splitting of the energy levels. For a CSQS with the hole in the quantum ring state, the present simulations demonstrate a -dependence of the hole energy which substantially deviates from the prediction of the Fock-Darwin model. In particular, the energy of exited states with a hole lh> 0 can become lower than the ground state energy with lh= 0. Because for the lowest-energy state the electron le is always zero, states with lh> 0 are optically dark due to selection rules. This allows switching from a bright state (lh= 0) to a dark state (lh> 0) or vice versa by changing the strength of the or field. This effect can be very interesting for trapping photoexcited charge carriers for a desired time. Furthermore, the influence of the CSQS shape on the fields required for the bright to dark state transition is investigated.
通过模拟研究了垂直电场()和磁场()作用下锥壳量子结构(CSQS)的光发射。CSQS具有独特的形状,其中电场会导致空穴概率密度从圆盘状转变为半径可调的量子环。本研究探讨了额外磁场的影响。对于磁场对限制在量子点中的电荷载流子的影响,一种常见的描述是福克 - 达尔文模型,该模型引入角动量量子数来描述能级的分裂。对于处于量子环态且有空穴的CSQS,当前模拟表明空穴能量与磁场相关,这与福克 - 达尔文模型的预测有很大偏差。特别是,具有空穴lh> 0的激发态能量可能会低于具有lh = 0的基态能量。由于对于最低能量态电子le始终为零,根据选择定则,具有lh> 0的态在光学上是暗态。这使得通过改变电场或磁场的强度,可以从亮态(lh = 0)切换到暗态(lh> 0),反之亦然。这种效应对于在所需时间内捕获光激发的电荷载流子可能非常有趣。此外,还研究了CSQS形状对亮态到暗态转变所需场的影响。