Optimal Spin-and Planar-Quantum Squeezing in Superpositions of Spin Coherent States

Abstract

We investigate the presence of spin- and planar-squeezing in generalized superpositions of atomic (or spin) coherent states. Spin-squeezing has been shown to be a useful tool in determining the presence of entanglement in multipartite systems, such as collections of two-level atoms, as well as being an indication of reduced projection noise and sub-shot-noise-limited phase uncertainty in Ramsey spectroscopy, suitable for measuring phases phi tilde 0. On the other hand, planar-squeezed states display reduced projection noise in two directions simultaneously and have been shown to lead to enhanced metrological precision in measuring phases without the need for explicit prior knowledge of the phase value. In this paper, we show that the generalized superposition state can be parametrized to display both spin-squeezing along all orthogonal axes and planar-squeezing along all orthogonal planes for all values of J >1=2. We close with an application of the maximally spin- and planar-squeezed states to quantum metrology.

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Document Details

Document Type
Technical Report
Publication Date
Oct 27, 2021
Accession Number
AD1196655

Entities

People

  • Christopher C. Gerry
  • Edwin E. Hach
  • Jason Ziskind
  • Paul M. Alsing
  • Richard J. Birrittella

Organizations

  • Lehman College
  • Rochester Institute of Technology

Tags

Communities of Interest

  • Advanced Electronics

DTIC Thesaurus Topics

  • Air Force
  • Air Force Research Laboratories
  • Angular Momentum
  • Atoms
  • Bose Einstein Condensates
  • Detection
  • Information Science
  • Josephson Junctions
  • Measurement
  • Metrology
  • Military Research
  • Physics
  • Precision
  • Quantum Measurement
  • Quantum Mechanics
  • Quantum Noise
  • Quantum Optics
  • Quantum Properties
  • Sensitivity
  • Spectroscopy
  • Standards

Fields of Study

  • Physics

Readers

  • Adaptive Control and Estimation with Uncertainty in Dynamic Systems.
  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.

Technology Areas

  • Quantum Computing
  • Quantum Science - Quantum Dots