Repositorio Institucional
Repositorio Institucional
CONICET Digital
  • Inicio
  • EXPLORAR
    • AUTORES
    • DISCIPLINAS
    • COMUNIDADES
  • Estadísticas
  • Novedades
    • Noticias
    • Boletines
  • Ayuda
    • General
    • Datos de investigación
  • Acerca de
    • CONICET Digital
    • Equipo
    • Red Federal
  • Contacto
JavaScript is disabled for your browser. Some features of this site may not work without it.
  • INFORMACIÓN GENERAL
  • RESUMEN
  • ESTADISTICAS
 
Artículo

Spacetime quantum and classical mechanics with dynamical foliation

Diaz, Nahuel LucianoIcon ; Matera, Juan MauricioIcon ; Rossignoli, Raúl Dante
Fecha de publicación: 05/2024
Editorial: American Physical Society
Revista: Physical Review D
ISSN: 2470-0010
e-ISSN: 2470-0029
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Física de Partículas y Campos

Resumen

The conventional phase space of classical physics treats space and time differently, and this difference carries over to field theories and quantum mechanics (QM). In this paper, the phase space is enhanced through two main extensions. First, we promote the time choice of the Legendre transform to a dynamical variable. Second, we extend the Poisson brackets of matter fields to a spacetime symmetric form. The ensuing “spacetime phase space” is employed to obtain an explicitly covariant version of Hamilton equations for relativistic field theories. A canonical-like quantization of the formalism is then presented in which the fields satisfy spacetime commutation relations and the foliation is quantum. In this approach, the classical action is also promoted to an operator and retains explicit covariance through its nonseparability in the matter-foliation partition. The problem of establishing a correspondence between the new noncausal framework (where fields at different times are independent) and conventional QM is solved through a generalization of spacelike correlators to spacetime. In this generalization, the Hamiltonian is replaced by the action, and conventional particles by off-shell particles. When the foliation is quantized, the previous map is recovered by conditioning on foliation eigenstates, in analogy with the Page and Wootters mechanism. We also provide an interpretation of the correspondence in which the causal structure of a given theory emerges from the quantum correlations between the system and an environment. This idea holds for general quantum systems and allows one to generalize the density matrix to an operator containing the information of correlators both in space and time.
Palabras clave: Quantum Mechanics , Quantum Spacetime , Quantum entanglement , Quantum time
Ver el registro completo
 
Archivos asociados
Tamaño: 930.9Kb
Formato: PDF
.
Solicitar
Licencia
info:eu-repo/semantics/restrictedAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Unported (CC BY-NC-SA 2.5)
Identificadores
URI: http://hdl.handle.net/11336/264024
URL: https://link.aps.org/doi/10.1103/PhysRevD.109.105008
DOI: http://dx.doi.org/10.1103/PhysRevD.109.105008
Colecciones
Articulos(IFLP)
Articulos de INST.DE FISICA LA PLATA
Citación
Diaz, Nahuel Luciano; Matera, Juan Mauricio; Rossignoli, Raúl Dante; Spacetime quantum and classical mechanics with dynamical foliation; American Physical Society; Physical Review D; 109; 10; 5-2024; 1-28
Compartir
Altmétricas
 

Items relacionados

Mostrando titulos relacionados por título, autor y tema.

  • Artículo Thermal baths as quantum resources: More friends than foes?
    Kurizki, Gershon; Shahmoon, Ephraim; Zwick, Analía Elizabeth (IOP Publishing, 2015-11-06)
  • Artículo Thermodynamics and Steady State of Quantum Motors and Pumps Far from Equilibrium
    Bustos Marun, Raul Alberto ; Calvo, Hernan Laureano (MDPI, 2019-08-23)
  • Artículo From quantum correlations in dissipative quantum walk to two-qubit systems
    Nizama Mendoza, Marco Alfredo ; Caceres Garcia Faure, Manuel Osvaldo (Elsevier Science, 2014-04)
Enviar por e-mail
Separar cada destinatario (hasta 5) con punto y coma.
  • Facebook
  • X Conicet Digital
  • Instagram
  • YouTube
  • Sound Cloud
  • LinkedIn

Los contenidos del CONICET están licenciados bajo Creative Commons Reconocimiento 2.5 Argentina License

https://www.conicet.gov.ar/ - CONICET

Inicio

Explorar

  • Autores
  • Disciplinas
  • Comunidades

Estadísticas

Novedades

  • Noticias
  • Boletines

Ayuda

Acerca de

  • CONICET Digital
  • Equipo
  • Red Federal

Contacto

Godoy Cruz 2290 (C1425FQB) CABA – República Argentina – Tel: +5411 4899-5400 repositorio@conicet.gov.ar
TÉRMINOS Y CONDICIONES