Key Laboratory of Quantum Information, Department of Optics and Optical Engineering, University of Science and Technology of China, Chinese Academy of Sciences, Hefei 230026, China.
Nat Commun. 2013;4:1401. doi: 10.1038/ncomms2412.
A basic requirement for quantum information processing is the ability to universally control the state of a single qubit on timescales much shorter than the coherence time. Although ultrafast optical control of a single spin has been achieved in quantum dots, scaling up such methods remains a challenge. Here we demonstrate complete control of the quantum-dot charge qubit on the picosecond scale [corrected], orders of magnitude faster than the previously measured electrically controlled charge- or spin-based qubits. We observe tunable qubit dynamics in a charge-stability diagram, in a time domain, and in a pulse amplitude space of the driven pulse. The observations are well described by Landau-Zener-Stückelberg interference. These results establish the feasibility of a full set of all-electrical single-qubit operations. Although our experiment is carried out in a solid-state architecture, the technique is independent of the physical encoding of the quantum information and has the potential for wider applications.
量子信息处理的一个基本要求是能够在比相干时间短得多的时间内对单个量子位的状态进行全面控制。尽管已经在量子点中实现了单个自旋的超快光学控制,但扩展这种方法仍然是一个挑战。在这里,我们在皮秒尺度上展示了对量子点电荷量子位的完全控制[更正],比以前测量的电控制电荷或基于自旋的量子位快几个数量级。我们在电荷稳定性图、时域和驱动脉冲的脉冲幅度空间中观察到可调谐的量子位动力学。观察结果很好地描述了朗道-曾泽尔-斯图克尔伯格干涉。这些结果确立了全套全电单量子位操作的可行性。尽管我们的实验是在固态架构中进行的,但该技术独立于量子信息的物理编码,并且具有更广泛应用的潜力。