Xu Xiaodong, Sun Bo, Berman Paul R, Steel Duncan G, Bracker Allan S, Gammon Dan, Sham L J
H. M. Randall Laboratory of Physics, University of Michigan, Ann Arbor, MI 48109, USA.
Science. 2007 Aug 17;317(5840):929-32. doi: 10.1126/science.1142979.
Quantum dots are typically formed from large groupings of atoms and thus may be expected to have appreciable many-body behavior under intense optical excitation. Nonetheless, they are known to exhibit discrete energy levels due to quantum confinement effects. We show that, like single-atom or single-molecule two- and three-level quantum systems, single semiconductor quantum dots can also exhibit interference phenomena when driven simultaneously by two optical fields. Probe absorption spectra are obtained that exhibit Autler-Townes splitting when the optical fields drive coupled transitions and complex Mollow-related structure, including gain without population inversion, when they drive the same transition. Our results open the way for the demonstration of numerous quantum level-based applications, such as quantum dot lasers, optical modulators, and quantum logic devices.
量子点通常由大量原子团组成,因此在强光学激发下可能会表现出明显的多体行为。尽管如此,由于量子限制效应,它们已知会表现出离散的能级。我们表明,与单原子或单分子二能级和三能级量子系统一样,单个半导体量子点在由两个光场同时驱动时也能表现出干涉现象。当光场驱动耦合跃迁时,获得的探测吸收光谱会呈现奥特勒-汤斯分裂,而当它们驱动相同跃迁时,则会呈现与莫洛相关的复杂结构,包括无粒子数反转增益。我们的结果为众多基于量子能级的应用(如量子点激光器、光调制器和量子逻辑器件)的演示开辟了道路。