The search for quantum gravity effects i

被引:13
|
作者
Lämmerzahl C. [1 ]
机构
[1] Center for Applied Space Technology and Microgravity (ZARM), University of Bremen
关键词
Dark Matter; Dark Energy; Quantum Gravity; Dirac Equation; Maxwell Equation;
D O I
10.1007/s00340-006-2374-z
中图分类号
学科分类号
摘要
In this contribution the search for effects from possible theories of quantum gravity is reviewed. In order to distinguish quantum gravity effects from standard effects, first the standard theory and the principles it is based on has to be described. We show that standard physics (the Maxwell equations, the Dirac equation, gravity as a metric theory) is completely based on the Einstein equivalence principle, EEP (for obtaining the Einstein equations, some more requirements are needed). As a consequence, all deviations from the EEP are related to new effects originating from quantum gravity. The variety and structure of these effects is described and the expected magnitude of the effects and a corresponding strategy for the search for these effects are discussed. We stress the advantages of space for performing experiments searching for quantum gravity effects. At the end we make some remarks concerning the daily-life applications of high-precision techniques.
引用
收藏
页码:551 / 562
页数:11
相关论文
共 50 条
  • [31] Quantum gravity effects around Sagittarius A*a
    Haggard, Hal M.
    Rovelli, Carlo
    [J]. INTERNATIONAL JOURNAL OF MODERN PHYSICS D, 2016, 25 (12):
  • [32] Torsional instanton effects in quantum gravity
    Kaul, Romesh K.
    Sengupta, Sandipan
    [J]. PHYSICAL REVIEW D, 2014, 90 (12):
  • [34] Search for Quantum Gravity induced effects with PKS 2155-304 flaring period in 2006 by HESS
    Bolmont, J.
    Buehler, R.
    Jacholkowska, A.
    Wagner, S.
    [J]. INVISIBLE UNIVERSE INTERNATIONAL CONFERENCE, 2010, 1241 : 528 - 533
  • [35] Search for quantum gravity using astrophysical neutrino flavour with IceCube
    Abbasi, R.
    Ackermann, M.
    Adams, J.
    Aguilar, J. A.
    Ahlers, M.
    Ahrens, M.
    Alameddine, J. M.
    Alispach, C.
    Alves, A. A., Jr.
    Amin, N. M.
    Andeen, K.
    Anderson, T.
    Anton, G.
    Arguelles, C.
    Ashida, Y.
    Axani, S.
    Bai, X.
    Balagopal, A.
    Barbano, A.
    Barwick, S. W.
    Bastian, B.
    Basu, V
    Baur, S.
    Bay, R.
    Beatty, J. J.
    Becker, K-H
    Tjus, J. Becker
    Bellenghi, C.
    BenZvi, S.
    Berley, D.
    Bernardini, E.
    Besson, D. Z.
    Binder, G.
    Bindig, D.
    Blaufuss, E.
    Blot, S.
    Boddenberg, M.
    Bontempo, F.
    Borowka, J.
    Boser, S.
    Botner, O.
    Bottcher, J.
    Bourbeau, E.
    Bradascio, F.
    Braun, J.
    Brinson, B.
    Bron, S.
    Brostean-Kaiser, J.
    Browne, S.
    Burgman, A.
    [J]. NATURE PHYSICS, 2022, 18 (11) : 1287 - +
  • [36] Defining a crisis: the roles of principles in the search for a theory of quantum gravity
    Karen Crowther
    [J]. Synthese, 2021, 198 : 3489 - 3516
  • [37] SEARCH FOR QUANTUM GRAVITY SIGNATURE WITH PHOTONS FROM ASTROPHYSICAL SOURCES
    Jacholkowska, A.
    Bolmont, J.
    [J]. DARK MATTER IN ASTROPHYSICS AND PARTICLE PHYSICS (DARK 2009), 2010, : 413 - 425
  • [38] Search for quantum gravity using astrophysical neutrino flavour with IceCube
    [J]. Nature Physics, 2022, 18 : 1287 - 1292
  • [39] Noncanonical quantization of gravity. I. Foundations of affine quantum gravity
    Klauder, JR
    [J]. JOURNAL OF MATHEMATICAL PHYSICS, 1999, 40 (11) : 5860 - 5882
  • [40] QUANTUM THEORY OF GRAVITY .I. CANONICAL THEORY
    DEWITT, BS
    [J]. PHYSICAL REVIEW, 1967, 160 (05): : 1113 - &