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由四种一维幺正规范对称性和标准模型产生的引力。

Gravity generated by four one-dimensional unitary gauge symmetries and the Standard Model.

作者信息

Partanen Mikko, Tulkki Jukka

机构信息

Photonics Group, Department of Electronics and Nanoengineering, Aalto University, PO Box 13500, 00076 Aalto, Finland.

Engineered Nanosystems Group, School of Science, Aalto University, PO Box 12200, 00076 Aalto, Finland.

出版信息

Rep Prog Phys. 2025 May 2;88(5). doi: 10.1088/1361-6633/adc82e.

Abstract

The Standard Model of particle physics describes electromagnetic, weak, and strong interactions, which are three of the four known fundamental forces of nature. The unification of the fourth interaction, gravity, with the Standard Model has been challenging due to incompatibilities of the underlying theories-general relativity and quantum field theory. While quantum field theory utilizes compact, finite-dimensional symmetries associated with the internal degrees of freedom of quantum fields, general relativity is based on noncompact, infinite-dimensional external space-time symmetries. The present work aims at deriving the gauge theory of gravity using compact, finite-dimensional symmetries in a way that resembles the formulation of the fundamental interactions of the Standard Model. For our eight-spinor representation of the Lagrangian, we define a quantity, called the space-time dimension field, which enables extracting four-dimensional space-time quantities from the eight-dimensional spinors. Four U(1) symmetries of the components of the space-time dimension field are used to derive a gauge theory, called unified gravity. The stress-energy-momentum tensor source term of gravity follows directly from these symmetries. The metric tensor enters in unified gravity through geometric conditions. We show how the teleparallel equivalent of general relativity in the Weitzenböck gauge is obtained from unified gravity by a gravity-gauge-field-dependent geometric condition. Unified gravity also enables a gravity-gauge-field-independent geometric condition that leads to an exact description of gravity in the Minkowski metric. This differs from the use of metric in general relativity, where the metric depends on the gravitational field by definition. Based on the Minkowski metric, unified gravity allows us to describe gravity within a single coherent mathematical framework together with the quantum fields of all fundamental interactions of the Standard Model. We present the Feynman rules for unified gravity and study the renormalizability and radiative corrections of the theory at one-loop order. The equivalence principle is formulated by requiring that the renormalized values of the inertial and gravitational masses are equal. In contrast to previous gauge theories of gravity, all infinities that are encountered in the calculations of loop diagrams can be absorbed by the redefinition of the small number of parameters of the theory in the same way as in the gauge theories of the Standard Model. This result and our observation that unified gravity fulfills the Becchi-Rouet-Stora-Tyutin (BRST) symmetry and its coupling constant is dimensionless suggest that unified gravity can provide the basis for a complete, renormalizable theory of quantum gravity.

摘要

粒子物理学的标准模型描述了电磁相互作用、弱相互作用和强相互作用,这三种相互作用是自然界已知的四种基本力中的三种。由于基础理论——广义相对论和量子场论不相容,将第四种相互作用,即引力,与标准模型统一起来一直具有挑战性。虽然量子场论利用与量子场内部自由度相关的紧致、有限维对称性,但广义相对论基于非紧致、无限维的外部时空对称性。目前的工作旨在通过类似于标准模型基本相互作用的表述方式,利用紧致、有限维对称性来推导引力规范理论。对于我们拉格朗日量的八旋量表示,我们定义了一个称为时空维度场的量,它能够从八维旋量中提取四维时空量。利用时空维度场分量的四个U(1)对称性来推导一种称为统一引力的规范理论。引力的应力 - 能量 - 动量张量源项直接源于这些对称性。度规张量通过几何条件进入统一引力。我们展示了在魏茨滕博克规范下广义相对论的遥平行等效是如何通过一个依赖于引力规范场的几何条件从统一引力中得到的。统一引力还允许一个与引力规范场无关的几何条件,该条件导致在闵可夫斯基度规下对引力的精确描述。这与广义相对论中使用度规的情况不同,在广义相对论中,度规根据定义依赖于引力场。基于闵可夫斯基度规,统一引力使我们能够在一个单一的连贯数学框架内描述引力以及标准模型所有基本相互作用的量子场。我们给出了统一引力的费曼规则,并研究了该理论在一圈阶的可重整性和辐射修正。通过要求惯性质量和引力质量的重整化值相等来表述等效原理。与先前的引力规范理论不同,在圈图计算中遇到的所有无穷大可以通过与标准模型规范理论相同的方式重新定义该理论的少量参数来吸收。这一结果以及我们观察到统一引力满足贝奇 - 鲁埃 - 斯托拉 - 秋京(BRST)对称性且其耦合常数是无量纲的,表明统一引力可以为一个完整的、可重整化的量子引力理论提供基础。

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