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Engineering the Spin–Flip Limited Exciton Dephasing in Colloidal CdSe/CdS Quantum Dots

机译:在胶体CdSe / CdS量子点中设计自旋翻转有限的激子相移

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摘要

We have measured the intrinsic exciton dephasing in high-quality zinc blende CdSe/CdS colloidal quantum dots in the temperature range from 5 to 170 K using a sensitive three-beam photon echo technique in heterodyne detection, which is not affected by spectral diffusion. Pure dephasing via acoustic phonons dominates the initial dynamics, followed by an exponential zero-phonon line dephasing. From the temperature dependence of the zero-phonon line dephasing, the exciton lifetime, and the exciton thermalization within its fine structure, we show that the zero-phonon line dephasing of the lowest bright state originates from the phonon-assisted spin–flip to dark exciton states. Importantly, we can control the dephasing by tailoring the exciton fine structure through its dependence on the dot core size and shell thickness, as expected from the spin–flip mechanism. By reducing the electron–hole exchange interaction with increasing core size and delocalization of the electron wave function in the quasi-type-II core/shell band alignment, we find the longest zero-phonon line dephasing time of ∼110 ps at 5 K in dots with the largest core diameter (5.7 nm) and the thickest CdSe shell (9 monolayers) in the series studied.
机译:我们在外差检测中使用灵敏的三束光子回波技术测量了在5至170 K温度范围内的高质量锌共混物CdSe / CdS胶体量子点的固有激子相移,该外差检测不受光谱扩散的影响。通过声子的纯去相控制了初始动态,随后是指数零声子线的去相。从零声子线移相的温度依赖性,激子寿命以及其精细结构内的激子热化,我们表明最低亮态的零声子线移相源自声子辅助的自旋翻转到暗态。激子态。重要的是,正如自旋翻转机制所期望的那样,我们可以通过调整激子精细结构来控制相移,因为它取决于点芯尺寸和壳厚度。通过在准II型核/壳带对准中通过增加核尺寸和电子波函数的离域来减少电子-空穴交换相互作用,我们发现在5 K in时最长的零声子线相移时间约为110 ps。在所研究的系列中,具有最大核心直径(5.7 nm)和最厚CdSe壳层(9个单层)的点。

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