New Quantum Structure of Space-Time

被引:0
|
作者
Norma G. Sanchez
机构
[1] Sorbonne Universite UPMC Paris VI,LERMA CNRS UMR 8112 Observatoire de Paris PSL, Research University
来源
Gravitation and Cosmology | 2019年 / 25卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Starting from quantum theory (instead of general relativity) to approach quantum gravity within a minimal setting allows us here to describe the quantum space-time structure and the quantum light cone. From the classical-quantum duality and quantum harmonic oscillator (X, P) variables in global phase space, we promote the space-time coordinates to quantum noncommuting operators. The phase space instanton (X, P = iT) describes the hyperbolic quantum space-time structure and generates the quantum light cone. The classical Minkowski space-time null generators X = ±T disappear at the quantum level due to the relevant quantum [X, T] commutator which is always nonzero. A new quantum Planck scale vacuum region emerges. We describe the quantum Rindler and quantum Schwarzschild-Kruskal space-time structures. The horizons and the r = 0 space-time singularity are quantum mechanically erased. The four Kruskal regions merge inside a single quantum Planck scale “world.” The quantum space-time structure consists of hyper bolic discrete levels of odd numbers (X2 — T2)n = (2n + 1) (in Planck units ), n = 0,1, 2....(Xn, Tn) and the mass levels being v(2n + 1). A coherent picture emerges: large n levels are semiclassical tending towards a classical continuum space-time. Low n are quantum, the lowest mode (n = 0) being the Planck scale. Two dual (±) branches are present in the local variables (v2n + 1 ± v2n) reflecting the duality of the large and small n behaviors and covering the whole mass spectrum from the largest astrophysical objects in branch (+) to quantum elementary particles in branch (—) passing by the Planck mass. Black holes belong to both branches (+) and (—).
引用
下载
收藏
页码:91 / 102
页数:11
相关论文
共 50 条
  • [1] New Quantum Structure of Space-Time
    Sanchez, Norma G.
    GRAVITATION & COSMOLOGY, 2019, 25 (02): : 91 - 102
  • [2] Quantum Theory and the Structure of Space-Time
    Singh, Tejinder P.
    ZEITSCHRIFT FUR NATURFORSCHUNG SECTION A-A JOURNAL OF PHYSICAL SCIENCES, 2018, 73 (08): : 733 - 739
  • [3] On the quantum space-time structure of light
    Guerreiro, A.
    JOURNAL OF PLASMA PHYSICS, 2010, 76 : 833 - 843
  • [4] Quantum Vacuum and the Structure of Empty Space-Time
    Gevorkyan, Ashot
    PHYSICS OF ATOMIC NUCLEI, 2018, 81 (06) : 843 - 852
  • [5] Quantum gravity, space-time structure, and cosmology
    Bojowald, Martin
    INTERNATIONAL CONFERENCE ON MODERN PERSPECTIVES OF COSMOLOGY AND GRAVITATION (COSGRAV12), 2012, 405
  • [6] Proton decay and the quantum structure of space-time
    Al-Modlej, Abeer
    Alsaleh, Salwa
    Alshal, Hassan
    Ali, Ahmed Farag
    CANADIAN JOURNAL OF PHYSICS, 2019, 97 (12) : 1317 - 1322
  • [7] QUANTUM SPACE-TIME
    HASEBE, K
    PROGRESS OF THEORETICAL PHYSICS, 1972, 48 (05): : 1742 - &
  • [8] A quantum of space-time
    不详
    NEW SCIENTIST, 2014, 223 (2985) : 7 - 7
  • [9] Covariance and Quantum Principles–Censors of the Space-Time Structure
    H.-J. Treder
    H.-H. von Borzeszkowski
    Foundations of Physics, 2006, 36 : 757 - 763
  • [10] Noncommutative geometry, symmetries and quantum structure of space-time
    Govindarajan, T. R.
    Gupta, Kumar S.
    Harikumar, E.
    Meljanac, S.
    5TH INTERNATIONAL WORKSHOP DICE2010: SPACE-TIME-MATTER - CURRENT ISSUES IN QUANTUM MECHANICS AND BEYOND, 2011, 306