PaperPanorama

Nuclear Theory·nucl-th

Monday·August 12, 2019

7 papers4 primary·3 cross-listed

  1. 05

    Towards analog quantum simulations of lattice gauge theories with trapped ions

    Zohreh Davoudi🇺🇸 · Mohammad Hafezi🇺🇸 · Christopher Monroe🇺🇸 · Guido Pagano🇺🇸 · Alireza Seif🇺🇸 · Andrew Shaw🇺🇸

    Gauge field theories play a central role in modern physics and are at the heart of the Standard Model of elementary particles and interactions. Despite significant progress in applying classical computational techniques to simulate gauge theories, it has remained a challenging task to compute the real-time dynamics of systems described by gauge theories. An exciting possibility that has been explored in recent years is the use of highly-controlled quantum systems to simulate, in an analog fashion, properties of a target system whose dynamics are difficult to compute. Engineered atom-laser interactions in a linear crystal of trapped ions offer a wide range of possibilities for quantum simulations of complex physical systems. Here, we devise practical proposals for analog simulation of simple lattice gauge theories whose dynamics can be mapped onto spin-spin interactions in any dimension. These include 1+1D quantum electrodynamics, 2+1D Abelian Chern-Simons theory coupled to fermions, and 2+1D pure Z2 gauge theory. The scheme proposed, along with the optimization protocol applied, will have applications beyond the examples presented in this work, and will enable scalable analog quantum simulation of Heisenberg spin models in any number of dimensions and with arbitrary interaction strengths.

    quant-phhep-lathep-phnucl-th+1PRResearch(2020)·165 citations
  2. 06

    Gravitational Waves from Holographic Neutron Star Mergers

    Christian Ecker🇳🇱 · Matti Järvinen🇳🇱 · Govert Nijs🇳🇱 · Wilke van der Schee🇳🇱

    We simulate the merger of binary neutron stars and analyze the spectral properties of their gravitational waveforms. For the stars we construct hybrid equations of state (EoSs) with a standard nuclear matter EoS at low densities, transitioning to a state-of-the-art holographic EoS in the otherwise intractable high density regime. Depending on the transition density the characteristic frequencies in the spectrum produced from the hybrid EoSs are shifted to significantly lower values as compared to the pure nuclear matter EoS. The highest rest-mass density reached outside a possible black hole horizon is approximately g/cm, which for the holographic model is below the density of the deconfined quark matter phase.

    astro-ph.HEgr-qchep-phhep-th+1PRD(2020)·81 citations
  3. 07

    Entanglement and collective flavor oscillations in a dense neutrino gas

    Michael J. Cervia🇺🇸 · Amol V. Patwardhan🇺🇸 · A. B. Balantekin🇺🇸 · S. N. Coppersmith🇺🇸 · Calvin W. Johnson🇺🇸

    We investigate the importance of going beyond the mean-field approximation in the dynamics of collective neutrino oscillations. To expand our understanding of the coherent neutrino oscillation problem, we apply concepts from many-body physics and quantum information theory. Specifically, we use measures of nontrivial correlations (otherwise known as "entanglement") between the constituent neutrinos of the many-body system, such as the entanglement entropy and the Bloch vector of the reduced density matrix. The relevance of going beyond the mean field is demonstrated by comparisons between the evolution of the neutrino state in the many-body picture vs the mean-field limit, for different initial conditions.

    hep-phastro-ph.HEnucl-thquant-phPRD(2019)·83 citations

Affiliations

first authorsco-authorsvia INSPIRE