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Unruh-DeWitt Quantum Computing: Realizing Quantum Shannon Theory With Quantum Fields

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arxiv 2407.13628 v1 pith:O5JSDRNZ submitted 2024-07-18 quant-ph cond-mat.mtrl-scihep-th

classification quant-phcond-mat.mtrl-scihep-th
keywords quantumtheorysystemsunruh--dewittfermionicinformationshannonallowed
verification ladder T0 review T1 audit T2 compute T3 formal
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Qubit-field quantum transduction provides numerous advantages to quantum computing, such as device-specific error-correcting codes, efficient scalability, and effective entanglement generation. An all-to-all connected bus of qubits implanted around the outside of a topological insulator, allowed to interact with the edge state, is a promising arena for transduction with flying fermionic qubits. Unruh--DeWitt detectors have allowed quantum information scientists to model entanglement properties of qubit-field interactions in many settings in a field known as Relativistic Quantum Information (RQI). Unruh--DeWitt detectors are useful tools to realize quantum Shannon theory, a subset of the theory of quantum communication, in condensed matter systems, aptly named Unruh--DeWitt quantum computers. These systems will provide quantitative measurements of communication in quantum materials that utilize coherent states for bosonic and fermionic fields. In this thesis, emphasis is placed on the well-studied theory of Tomonaga-Luttinger liquids, as the bosonization of a helical Luttinger liquid provides a pedagogical arena to construct RQI channels of fermionic systems. Multiple experimentally realizable systems are proposed, and design constraints are constructed to ensure maximum channel capacity. Furthermore, we elucidate the strength of these quantum channels using measurements from quantum Shannon theory such as coherent information, dephasing formalism, diamond distance and universality of Unruh--DeWitt quantum logic gates.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Kappa Plane Wave Modes and Continuous Squeezing in Quantum Field Theory

    hep-th 2025-07 conditional novelty 4.0 of 10

    A one-parameter family of flat-spacetime vacua, built from Minkowski plane waves with exponential weights, is shown to be a continuous-mode squeezed vacuum with tanh r(ν) = e^(−πν/κ), reducing to the Minkowski vacuum as κ→0.

  2. A Tunable Unruh Effect: Accelerated Detectors in Kappa-Rindler Vacua

    hep-th 2025-06 conditional novelty 4.0 of 10

    An accelerated detector in a kappa-deformed version of the Minkowski vacuum sees a perfect thermal bath at temperature T = κ times the standard Unruh temperature.

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