FLRW几何中的变形量化

IF 4.8 2区 物理与天体物理 Q2 PHYSICS, PARTICLES & FIELDS
Alfonso F. Bobadilla, Jose A. R. Cembranos
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引用次数: 0

摘要

我们研究了变形量子化在由friedman - lema - robertson - walker (FLRW)几何描述的宇宙中自由粒子演化系统中的应用。这种方法使我们能够分析弯曲时空中经典和量子相空间分布的动力学。我们证明了当空间截面的曲率非零时,经典Liouville方程和由Moyal方程表示的量子对应方程表现出不同的行为。具体来说,我们推导了一个包含曲率效应的半经典动力学方程,并分析了Wigner准分布函数在这种宇宙学背景下的演化。通过采用微扰方法,我们详细阐述了由球对称维格纳分布描述的粒子的情况,并探讨了膨胀宇宙中相空间动力学的含义。我们的发现为量子力学、相空间公式和宇宙膨胀之间的相互作用提供了新的见解,强调了变形量子化技术对理解弯曲时空中的量子系统的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deformation quantization in FLRW geometries

We investigate the application of deformation quantization to the system of a free particle evolving within a universe described by a Friedmann–Lemaître–Robertson–Walker (FLRW) geometry. This approach allows us to analyze the dynamics of classical and quantum phase-space distributions in curved spacetime. We demonstrate that when the curvature of the spatial sections is non-zero, the classical Liouville equation and its quantum counterpart, represented by the Moyal equation, exhibit distinct behaviors. Specifically, we derive a semi-classical dynamical equation that incorporates curvature effects and analyze the evolution of the Wigner quasi-distribution function in this cosmological context. By employing a perturbative approach, we elaborate on the case of a particle described by a spherically symmetric Wigner distribution and explore the implications for phase-space dynamics in expanding universes. Our findings provide new insights into the interplay between quantum mechanics, phase-space formulations, and cosmological expansion, highlighting the importance of deformation quantization techniques for understanding quantum systems in curved spacetime.

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来源期刊
The European Physical Journal C
The European Physical Journal C 物理-物理:粒子与场物理
CiteScore
8.10
自引率
15.90%
发文量
1008
审稿时长
2-4 weeks
期刊介绍: Experimental Physics I: Accelerator Based High-Energy Physics Hadron and lepton collider physics Lepton-nucleon scattering High-energy nuclear reactions Standard model precision tests Search for new physics beyond the standard model Heavy flavour physics Neutrino properties Particle detector developments Computational methods and analysis tools Experimental Physics II: Astroparticle Physics Dark matter searches High-energy cosmic rays Double beta decay Long baseline neutrino experiments Neutrino astronomy Axions and other weakly interacting light particles Gravitational waves and observational cosmology Particle detector developments Computational methods and analysis tools Theoretical Physics I: Phenomenology of the Standard Model and Beyond Electroweak interactions Quantum chromo dynamics Heavy quark physics and quark flavour mixing Neutrino physics Phenomenology of astro- and cosmoparticle physics Meson spectroscopy and non-perturbative QCD Low-energy effective field theories Lattice field theory High temperature QCD and heavy ion physics Phenomenology of supersymmetric extensions of the SM Phenomenology of non-supersymmetric extensions of the SM Model building and alternative models of electroweak symmetry breaking Flavour physics beyond the SM Computational algorithms and tools...etc.
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