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Lattice quantum codes and exotic topological phases of matter.

机译:晶格的量子代码和物质的外来拓扑阶段。

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摘要

This thesis addresses whether it is possible to build a robust memory device for quantum information. Many schemes for fault-tolerant quantum information processing have been developed so far, one of which, called topological quantum computation, makes use of degrees of freedom that are inherently insensitive to local errors. However, this scheme is not so reliable against thermal errors. Other fault-tolerant schemes achieve better reliability through active error correction, but incur a substantial overhead cost. Thus, it is of practical importance and theoretical interest to design and assess fault-tolerant schemes that work well at finite temperature without active error correction.;In this thesis, a three-dimensional gapped lattice spin model is found which demonstrates for the first time that a reliable quantum memory at finite temperature is possible, at least to some extent. When quantum information is encoded into a highly entangled ground state of this model and subjected to thermal errors, the errors remain easily correctable for a long time without any active intervention, because a macroscopic energy barrier keeps the errors well localized. As a result, stored quantum information can be retrieved faithfully for a memory time which grows exponentially with the square of the inverse temperature. In contrast, for previously known types of topological quantum storage in three or fewer spatial dimensions the memory time scales exponentially with the inverse temperature, rather than its square.;This spin model exhibits a previously unexpected topological quantum order, in which ground states are locally indistinguishable, pointlike excitations are immobile, and the immobility is not affected by small perturbations of the Hamiltonian. The degeneracy of the ground state, though also insensitive to perturbations, is a complicated number-theoretic function of the system size, and the system bifurcates into multiple noninteracting copies of itself under real-space renormalization group transformations. The degeneracy, the excitations, and the renormalization group flow can be analyzed using a framework that exploits the spin model's symmetry and some associated free resolutions of modules over polynomial algebras.
机译:本论文讨论了是否有可能为量子信息构建一个健壮的存储设备。迄今为止,已经开发了许多用于容错量子信息处理的方案,其中一种称为拓扑量子计算,它利用了对本地错误固有不敏感的自由度。但是,该方案对于热误差不是那么可靠。其他容错方案通过主动错误纠正实现了更高的可靠性,但会产生可观的开销成本。因此,设计和评估在有限温度下能很好地工作且无需主动纠错的容错方案具有实际的意义和理论意义。本论文建立了三维带隙晶格自旋模型至少在一定程度上可以在有限的温度下实现可靠​​的量子存储。当量子信息被编码到该模型的高度纠缠的基态中并遭受热误差时,由于宏观能垒使误差得以很好地定位,因此误差在很长一段时间内都易于校正,而无需任何积极干预。结果,可以在存储时间内如实地取回存储的量子信息,该存储时间与逆温度的平方成指数增长。相比之下,对于三个或更少空间维度中的先前已知类型的拓扑量子存储,存储时间与逆温度成指数关系,而不是与温度成平方关系;该自旋模型表现出先前未曾预料到的拓扑量子阶,其中基态是局部的不可区分的点状激励是固定的,并且固定性不受哈密顿量的微小扰动的影响。基态的退化虽然对扰动也不敏感,但它是系统大小的复杂的数论函数,并且在实空间重归一化组转换下,系统分叉成其自身的多个非交互副本。可以使用利用自旋模型的对称性和多项式代数上模块的一些相关自由分辨率的框架来分析简并性,激励和重归一化组流。

著录项

  • 作者

    Haah, Jeongwan.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Physics Quantum.;Physics Theory.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 200 p.
  • 总页数 200
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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