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The coherent optical spectroscopy and control of an electron spin in a self-assembled quantum dot for quantum computing.

机译:自组装量子点中电子自旋的相干光谱和控制,用于量子计算。

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摘要

Self-assembled quantum dots (QDs) containing a single electron are one of the leading candidate systems for the realization of a quantum computer. The spin states of charges confined in these dots have been shown to possess a number of qualities that are attractive for use as the quantum bits (qubits) in quantum computing implementations, particularly their long lifetimes and coherence times. In addition, these spin qubits may be controlled optically, offering the prospect of ultrafast qubit gate operations, a crucial necessity for the execution of quantum algorithms. Due to the weak interaction of self-assembled QDs with light, however, the coherent optical control and read-out of the spin states of charged self-assembled QDs has proven to be a considerable challenge.;This thesis presents two sets of experiments demonstrating the coherent optical control and read-out of the quantum states of a self assembled InAs QD containing a single electron. The first utilizes mode-locked picosecond optical pulses to control the optical transitions in the dot and to detect QD level occupations. These capabilities are used to observe transient phenomena in a singly charged InAs QD such as the generation and decay of excited state population and spin precession. Further, Rabi oscillations between the electron and the lowest-lying excited state are observed, demonstrating the ability to coherently control the optical transitions of the QD, a prerequisite for spin control.;These results are built upon in the second set of experiments, in which a combination of optical pulses, an externally applied DC magnetic field and a continuous-wave (CW) optical field are employed to initialize and completely control the states of a QD confined electron spin. Spin control by the use of pulse-driven two-photon Raman processes, spin precession about the external magnetic field and geometric phases generated by CW-driven cyclic evolutions in the dot is demonstrated. A number of spin qubit gate operations are shown for these spin control mechanisms, forming a foundational set of single qubit gates required for the implementation of quantum computing with singly charged self-assembled QDs.
机译:包含单个电子的自组装量子点(QD)是用于实现量子计算机的领先候选系统之一。限制在这些点中的电荷的自旋状态已经显示出具有许多吸引人的品质,特别是它们的长寿命和相干时间,这些品质在量子计算实现中可用作量子位(qubit)。此外,这些自旋量子比特可以通过光学方式进行控制,从而提供了超快速量子比特门操作的前景,这是执行量子算法的关键必要条件。然而,由于自组装量子点与光的相互作用较弱,带电自组装量子点的相干光学控制和自旋状态的读出已被证明是一个巨大的挑战。本论文提出了两组实验证明包含单个电子的自组装InAs QD的相干光学控制和量子态读出。第一种利用锁模皮秒光脉冲来控制点中的光学跃迁并检测QD级别的占用。这些功能用于观察单电荷InAs量子点中的瞬态现象,例如激发态种群的产生和衰减以及自旋进动。此外,观察到电子和最低激发态之间的拉比振荡,证明了相干控制量子点光学跃迁的能力,这是自旋控制的先决条件。这些结果建立在第二组实验中,它结合了光脉冲,外部施加的直流磁场和连续波(CW)光场来初始化和完全控制QD受限电子自旋的状态。通过使用脉冲驱动的两光子拉曼过程的自旋控制,关于外部磁场的自旋进动和点的CW驱动的循环演化产生的几何相位的自旋进动得到了证明。这些自旋控制机制显示了许多自旋量子位门操作,形成了单电荷自组装QD实施量子计算所需的基础单量子位门组。

著录项

  • 作者

    Kim, Erik D.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Physics Condensed Matter.;Physics Optics.;Physics Atomic.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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