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Two-Photon Induced Blue Shift of Core and Shell Optical Transitions in Colloidal CdSe/CdS quasi-type II Quantum Rods

机译:胶体Cdse / Cds准II型量子棒中双光子诱导的核和壳光学跃迁的蓝移

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摘要

The spectral dependence of the two-photon absorption in CdSe/CdS core/shell nanocrystal heterorods has been studied via two-photon-induced luminescence excitation spectroscopy. We verified that the two-photon absorption in these samples is a purely nonlinear phenomenon, excluding the contribution from multistep linear absorption mediated by defect states. A large absorption cross section was observed for CdSe/CdS core/shell quantum rods, in the range of 105 GM (1 GM = 10–50 cm4 s phot–1), scaling with the total nanocrystal volume and thus independent of the core emission wavelength. In the two-photon luminescence excitation spectra, peaks are strongly blue-shifted with respect to the one-photon absorption peaks, for both core and shell transitions. The experimental results are confirmed by k·p calculations, which attribute the shift to both different parity selection rules that apply to one-photon and two-photon transitions and a low oscillator strength for two-photon transitions close to the ground-state one-photon absorption. In contrast with lead chalcogenide quantum dots, we found no evidence of a breakdown of the optical selection rules, despite the presence of band anisotropy, via the anisotropic hole masses, and the explicitly induced reduction of the electron wave function symmetry via the rod shape of the shell. The anisotropy does lead to an unexpected splitting of the electron P-states in the case of a large CdSe core encapsulated in a thin CdS shell. Hence, tuning of the core and shell dimensions and the concurrent transition from type I to quasi-type II carrier localization enables unprecedented control over the band-edge two-photon absorption.
机译:通过双光子诱导发光激发光谱研究了CdSe / CdS核/壳纳米晶异质棒中双光子吸收的光谱依赖性。我们验证了这些样品中的双光子吸收是纯粹的非线性现象,不包括缺陷状态介导的多步线性吸收的影响。在105 GM(1 GM = 10–50 cm4 s phot-1)范围内,观察到了CdSe / CdS核/壳量子棒的大吸收截面,与总纳米晶体体积成比例,因此与核发射无关波长。在双光子发光激发光谱中,对于核和壳的跃迁,峰相对于单光子吸收峰都发生了强烈的蓝移。实验结果通过k·p计算得到了证实,该计算将位移归因于适用于一光子和二光子跃迁的不同奇偶校验选择规则,以及针对接近基态单光子跃迁的两光子跃迁的低振荡强度。光子吸收。与硫族元素铅量子点相反,尽管通过各向异性的空穴质量存在能带各向异性,并且通过杆的形状显着地诱导了电子波函数对称性的降低,但我们没有发现任何光学选择规则被破坏的证据。贝壳。在将大的CdSe芯封装在薄CdS壳中的情况下,各向异性确实会导致电子P状态发生意外分离。因此,对核和壳尺寸的调整以及从I型到准II型载流子定位的同时过渡,可以实现对带边双光子吸收的空前控制。

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