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State Preparation and Metrology of Nitrogen Nuclear Spin in Diamond.

机译:金刚石中氮核自旋的状态制备和计量。

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摘要

A negatively-charged nitrogen-vacancy (NV) center in diamond is a promising system for quantum computation and quantum information. It has the diamond structure with a substitutional nitrogen atom and a neighboring vacancy. An electron spin in the NV center has an exceptionally long coherence time at room temperature. Thus the NV center has a potential to realize a room-temperature quantum computer which is more efficient than a classical computer.;In this dissertation, we focus on the nitrogen nuclear spin as well as the electron spin in the NV center. Every NV center has the nitrogen nuclear spin. Because of the long coherence time of the nitrogen nuclear spin, it is a good candidate for a quantum memory. Thus it is important to prepare the nitrogen nuclear spin qubit in a given pure state for quantum computation. We provide a theoretical understanding of the popular nuclear spin initialization technique. Furthermore, we propose an optimal condition for the initialization of the nitrogen nuclear spin by including the local strain in the NV center. We expect that this optimal condition can improve the purity of the nuclear spin initialization.;We also propose an efficient quantum measurement protocol for the hyperfine interaction between the electron spin and the 15 N nuclear spin in the NV center. A precise knowledge of the hyperfine interaction is important to reduce an error in a coherent control of the 15N nuclear spin. In this protocol, a sequence of quantum operations with successively increasing duration is utilized to estimate the hyperfine interaction with successively higher precision approaching the quantum metrology limit. Unlike common quantum metrological methods, this protocol does not need the preparation of the nuclear spin in a pure state. In the presence of realistic operation errors and electron spin decoherence, we show the overall precision of our protocol still surpasses the standard quantum limit.
机译:金刚石中带负电荷的氮空位(NV)中心是用于量子计算和量子信息的有前途的系统。它具有带取代氮原子和相邻空位的菱形结构。 NV中心的电子自旋在室温下具有非常长的相干时间。因此,NV中心具有实现比传统计算机更高效的室温量子计算机的潜力。本文主要研究NV中心的氮核自旋和电子自旋。每个NV中心都有氮核自旋。由于氮核自旋的相干时间长,因此它是量子存储的良好候选者。因此,重要的是要准备给定的纯态氮核自旋量子位,以便进行量子计算。我们提供了对流行的核自旋初始化技术的理论理解。此外,我们通过包括NV中心的局部应变,为氮核自旋的初始化提出了最佳条件。我们期望该最佳条件可以提高核自旋初始化的纯度。我们还提出了一种有效的量子测量方案,用于电子自旋与NV中心的15 N核自旋之间的超精细相互作用。对超精细相互作用的精确了解对于减少15N核自旋的相干控制中的错误很重要。在该协议中,具有连续增加的持续时间的一系列量子操作被用于以接近量子计量极限的更高的精确度来估计超精细相互作用。与普通的量子计量方法不同,此协议不需要准备纯净状态的核自旋。在存在实际操作错误和电子自旋退相干的情况下,我们证明了协议的整体精度仍超过标准量子极限。

著录项

  • 作者

    Bang, Kilhyun.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Physics Quantum.;Physics Condensed Matter.;Physics General.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 98 p.
  • 总页数 98
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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