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Fabrication and characterization of semiconductor ion traps for quantum information processing.

机译:用于量子信息处理的半导体离子阱的制造和表征。

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摘要

The electromagnetic manipulation of isolated ions has led to many advances in atomic physics, from laser cooling to precision metrology and quantum control. As technical capability in this area has grown, so has interest in building miniature electromagnetic traps for the development of large-scale quantum information processors. This thesis will primarily focus on using microfabrication techniques to build arrays of miniature ion traps, similar to techniques used in fabricating high component density microprocessors. A specific focus will be on research using a gallium arsenide/aluminum gallium arsenide heterostructure as a trap architecture, as well as the recent testing of different ion traps fabricated at outside foundries. The construction and characterization of a conventional ceramic trap capable of shuttling an ion through a junction will also be detailed, and reveal the need for moving towards lithographically fabricated traps. Combined, these serve as a set of proof-of-principle experiments pointing to methods for designing and building large scale arrays of ion traps capable of constituting a quantum information processor.; As traps become smaller, electrical potentials on the electrodes have greater influence on the ion. This not only pertains to intentionally applied voltages, but also to deleterious noise sources, such as thermal Johnson noise and the more significant "patch potential" noise, which both cause motional heating of the ion. These problematic noise sources dovetail with my thesis research into trap miniaturization since their effects become more pronounced and impossible to ignore for small trap sizes. Therefore characterizing them and investigating ways to suppress them have become an important component of my research. I will describe an experiment using a pair of movable needle electrodes to measure the ion heating rate corresponding to the harmonic frequency of the trap, the ion-electrode distance, and the electrode temperature. This information is used for characterizing the fluctuating potentials and exploring the possibility of suppressing motional heating by cooling the trap electrodes. This source of noise is also observed in other systems, and its characterization could potentially improve other precision experiments, such as those measuring deviations in the gravitational inverse square law with proximate masses.
机译:从激光冷却到精密计量和量子控制,隔离离子的电磁操纵已导致原子物理学取得了许多进步。随着该领域技术能力的增长,对构建微型电磁阱以开发大规模量子信息处理器的兴趣也日益浓厚。本论文将主要集中于使用微制造技术来构建微型离子阱阵列,类似于制造高组件密度微处理器中使用的技术。将特别关注使用砷化镓/砷化镓铝异质结构作为阱结构的研究,以及最近在外部铸造厂制造的不同离子阱的测试。能够使离子通过结穿梭的常规陶瓷阱的结构和特性也将得到详细说明,并揭示了向光刻制造阱迁移的需求。结合起来,这些作为一组原理验证实验,指向设计和构建能够构成量子信息处理器的离子阱大规模阵列的方法。随着陷阱变小,电极上的电势对离子的影响更大。这不仅与故意施加的电压有关,而且还与有害的噪声源(例如热约翰逊噪声和更重要的“跳变电位”噪声)有关,它们都会引起离子的运动加热。这些有问题的噪声源与我的论文有关捕集阱小型化的研究相吻合,因为它们的影响变得更加明显,并且对于小捕集阱尺寸也无法忽略。因此,表征它们并研究抑制它们的方法已成为我研究的重要组成部分。我将描述一个实验,该实验使用一对可移动的针状电极来测量与阱的谐波频率,离子电极距离和电极温度相对应的离子加热速率。该信息用于表征波动电势,并探索通过冷却陷阱电极来抑制运动发热的可能性。在其他系统中也可以观察到这种噪声源,并且其表征可以潜在地改善其他精度实验,例如那些测量质量接近的引力平方反比定律中的偏差的实验。

著录项

  • 作者

    Stick, Daniel Lynn.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Physics Atomic.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 169 p.
  • 总页数 169
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;
  • 关键词

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