Institute of Atomic and Molecular Physics, Sichuan University, Chengdu 610065, China.
School of Physics and Electronic Engineering, Zhengzhou Normal University, Zhengzhou 450044, China.
J Chem Phys. 2023 Mar 28;158(12):124311. doi: 10.1063/5.0135931.
The dielectric properties in semiconductor quantum dots are crucial for exciton formation, migration, and recombination. Different from 3D bulk materials, the dielectric response is, however, ambiguous for the small-sized 0D dots in which the effect of outer atoms on the inner atoms is usually described qualitatively. Based on the first-principles calculated electron density, the polarizability of the core-shell CdSe@ZnS wurtzite quantum dots is decomposed into the distributional contributions among which the dipole polarizability of the core is proposed to measure the shell effect on the dielectric properties of core-shell quantum dots. The shell thickness dependence on the shell effect is then studied, which is significant for the outermost shell but decays rapidly in the additional shells. Moreover, this model gives explicit physical origins of the core dipole polarizability in the core-shell QDs, which is determined by the intra-shell polarization and inter-core-shell charge transfer. Our study proposes a new approach for studying the dielectric properties of core-shell quantum dots, which is effective and extendable for other low-dimensional structures.
半导体量子点的介电性质对于激子的形成、迁移和复合至关重要。与 3D 体材料不同,对于小尺寸的 0D 点,介电响应是不明确的,因为外部原子对内部原子的影响通常只能定性描述。基于第一性原理计算的电子密度,将核壳型 CdSe@ZnS 纤锌矿量子点的极化率分解为分布贡献,其中核心的偶极极化率被提出用来衡量壳层对核壳量子点介电性质的影响。然后研究了壳层厚度对壳层效应的影响,对于最外层壳层是显著的,但在附加壳层中迅速衰减。此外,该模型给出了核壳 QD 中核偶极极化率的明确物理起源,这是由壳内极化和核间电荷转移决定的。我们的研究提出了一种研究核壳量子点介电性质的新方法,该方法对于其他低维结构也是有效和可扩展的。