AI Article Synopsis

  • The text discusses the importance of averaging multiple measurements to accurately capture physical observables and introduces full counting statistics as a method for a deeper understanding of quantum fluctuations in many-body systems.
  • This study suggests that cusp singularities in full counting statistics can be used to differentiate between ordered and disordered phases, particularly highlighting the superfluid-to-Mott transition in the Bose-Hubbard model.
  • Through analytical and numerical methods, the research shows that full counting statistics exhibit a discontinuity in the superfluid phase, indicating a first-order transition, which can be tested using advanced experimental platforms like ultracold atoms and superconducting qubits.

Article Abstract

Measuring physical observables requires averaging experimental outcomes over numerous identical measurements. The complete distribution function of possible outcomes or its Fourier transform, known as the full counting statistics, provides a more detailed description. This method captures the fundamental quantum fluctuations in many-body systems and has gained significant attention in quantum transport research. In this Letter, we propose that cusp singularities in the full counting statistics are a novel tool for distinguishing between ordered and disordered phases. As a specific example, we focus on the superfluid-to-Mott transition in the Bose-Hubbard model. Through both analytical analysis and numerical simulations, we demonstrate that the full counting statistics exhibit a cusp singularity as a function of the phase angle in the superfluid phase when the subsystem size is sufficiently large, while it remains smooth in the Mott phase. This discontinuity can be interpreted as a first-order transition between different semiclassical configurations of vortices. We anticipate that our discoveries can be readily tested using state-of-the-art ultracold atom and superconducting qubit platforms.

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Source
http://dx.doi.org/10.1103/PhysRevLett.133.083402DOI Listing

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