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Tunable spin and valley dependent magneto-optical absorption in molybdenum disulfide quantum dots

机译:二硫化钼量子点中依赖于自旋和谷的可调谐自旋光吸收

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摘要

Photonic quantum computer, quantum communication, quantum metrology and quantum optical technologies rely on the single-photon source (SPS). However, the SPS with valley-polarization remains elusive and the tunability of magneto-optical transition frequency and emission/absorption intensity is restricted, in spite of being highly in demand for valleytronic applications. Here we report a new class of SPSs based on carriers spatially localized in two-dimensional monolayer transition metal dichalcogenide quantum dots (QDs). We demonstrate that the photons are absorbed (or emitted) in the QDs with distinct energy but definite valley-polarization. The spin-coupled valley-polarization is invariant under either spatial or magnetic quantum quantization. However, the magneto-optical absorption peaks undergo a blue shift as the quantization is enhanced. Moreover, the absorption spectrum pattern changes considerably with a variation of Fermi energy. This together with the controllability of absorption spectrum by spatial and magnetic quantizations, offers the possibility of tuning the magneto-optical properties at will, subject to the robust spin-coupled valley polarization.
机译:光子量子计算机,量子通信,量子计量学和量子光学技术都依赖于单光子源(SPS)。然而,尽管对山谷电子应用的需求很高,但具有谷极化的SPS仍然难以捉摸,并且磁光跃迁频率和发射/吸收强度的可调性受到限制。在这里,我们报告了一种基于空间定位在二维单层过渡金属二卤化碳二量子点(QDs)中的载流子的新型SPS。我们证明光子在量子点中以不同的能量被吸收(或发射),但具有明显的谷极化。在空间或磁量子量化下,自旋耦合谷底极化是不变的。但是,随着量化的增强,磁光吸收峰会发生蓝移。此外,吸收光谱图随着费米能量的变化而显着变化。这与通过空间和磁量化对吸收光谱的可控制性一起,可以根据自旋耦合谷底极化的强弱随意调整磁光特性。

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