Modifications to gravitational wave equation from canonical quantum gravity

被引:8
|
作者
Dapor, Andrea [1 ]
Liegener, Klaus [2 ]
机构
[1] Louisiana State Univ, Dept Phys & Astron, Baton Rouge, LA 70803 USA
[2] Univ Hamburg, Inst Theoret Phys 2, Luruper Chausee 149, D-22761 Hamburg, Germany
来源
EUROPEAN PHYSICAL JOURNAL C | 2020年 / 80卷 / 08期
关键词
COHERENT STATES GCS; SPIN DYNAMICS QSD; GENERAL-RELATIVITY; AREA;
D O I
10.1140/epjc/s10052-020-8333-8
中图分类号
O412 [相对论、场论]; O572.2 [粒子物理学];
学科分类号
摘要
It is expected that the quantum nature of spacetime leaves its imprint in all semiclassical gravitational systems, at least in certain regimes, including gravitational waves. In this paper we investigate such imprints on gravitational waves within a specific framework: space is assumed to be discrete (in the form of a regular cubic lattice), and this discrete geometry is quantised following Dirac's canonical quantisation scheme. The semiclassical behavior is then extracted by promoting the expectation value of the Hamiltonian operator on a semiclassical state to an effective Hamiltonian. Considering a family of semiclassical states representing small tensor perturbations to Minkowski background, we derive a quantum-corrected effective wave equation. The deviations from the classical gravitational wave equation are found to be encoded in a modified dispersion relation and controlled by the discreteness parameter of the underlying lattice. For finite discretisations, several interesting effects appear: we investigate the thermodynamical properties of these modified gravitons and, under certain assumptions, derive the tensor power spectrum of the cosmic microwave background. The latter is found to deviate from the classical prediction, in that an amplification of UV modes takes place. We discuss under what circumstances such effect can be in agreement with observations.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Quantum gravity and gravitational-wave astronomy
    Calcagni, Gianluca
    Kuroyanagi, Sachiko
    Marsat, Sylvain
    Sakellariadou, Mairi
    Tamanini, Nicola
    Tasinato, Gianmassimo
    JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2019, (10):
  • [2] Potential Gravitational Wave Signatures of Quantum Gravity
    Agullo, Ivan
    Cardoso, Vitor
    del Rio, Adrian
    Maggiore, Michele
    Pullin, Jorge
    PHYSICAL REVIEW LETTERS, 2021, 126 (04)
  • [3] Canonical Quantum Gravity, Constructive QFT, and Renormalisation
    Thiemann, Thomas
    FRONTIERS IN PHYSICS, 2020, 8
  • [4] Gravitational wave and tests of gravity
    Zhao, Wen
    Niu, Rui
    CHINESE SCIENCE BULLETIN-CHINESE, 2024, 69 (25): : 3770 - 3784
  • [5] Fermion coupling to loop quantum gravity: Canonical formulation
    Lewandowski, Jerzy
    Zhang, Cong
    PHYSICAL REVIEW D, 2022, 105 (12)
  • [6] From quantum gravity to gravitational waves through cosmic strings
    Eichhorn, Astrid
    Santos, Rafael R. Lino dos
    Miqueleto, Joao Lucas
    PHYSICAL REVIEW D, 2024, 109 (02)
  • [7] Gravitational Lensing Effects from Models of Loop Quantum Gravity with Rigorous Quantum Parameters
    Li, Haida
    Zhang, Xiangdong
    UNIVERSE, 2024, 10 (11)
  • [8] New loop quantum cosmology modifications from gauge-covariant fluxes
    Liegener, Klaus
    Singh, Parampreet
    PHYSICAL REVIEW D, 2019, 100 (12)
  • [9] Modifications to the signal from a gravitational wave event due to a surrounding shell of matter
    Naidoo, Monos
    Bishop, Nigel T.
    van der Walt, Petrus J.
    GENERAL RELATIVITY AND GRAVITATION, 2021, 53 (08)
  • [10] Gravitational Wilson loop in discrete quantum gravity
    Hamber, H. W.
    Williams, R. M.
    PHYSICAL REVIEW D, 2010, 81 (08):