Non-metricity approach to Jackiw-Teitelboim gravity

IF 4.5 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS Physics Letters B Pub Date : 2025-03-03 DOI:10.1016/j.physletb.2025.139372
Shin'ichi Nojiri , S.D. Odintsov
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Abstract

We construct 2d Jackiw-Teitelboim (JT) gravity in the framework of symmetric teleparallel gravity based on a non-metricity tensor. In symmetric teleparallel gravity, we often use the scalar quantity Q composed of the bilinear terms of the non-metricity tensor but Q is not a unique scalar quantity from the viewpoint of covariance. However, other scalar quantities composed of the non-metricity tensor generate ghosts in general. In two dimensions, because a propagating gravitational mode does not exist, if we consider general scalar quantities, there might appear any propagating modes although these modes are often ghosts. We consider a general combination of the terms given by the bi-linear of the non-metricity tensors. After finding the condition that the conformal form of the metric is compatible with the coincident gauge, where connections vanish, we determine the combination so that a solution with constant curvature exists. The obtained model corresponds to 2d JT gravity in the framework of the symmetric teleparallel gravity. The conformal mode propagates as a scalar in this theory and we also consider the condition that the scalar mode is not a ghost.
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Jackiw-Teitelboim引力的非度规方法
基于非度量张量,在对称遥平行引力框架下构造二维Jackiw-Teitelboim (JT)引力。在对称遥平行引力中,我们经常使用由非度量张量的双线性项组成的标量Q,但从协方差的角度来看,Q并不是唯一的标量。然而,其他由非度量张量组成的标量通常会产生鬼影。在二维空间中,由于传播的引力模式不存在,如果我们考虑一般的标量量,可能会出现任何传播模式,尽管这些模式通常是幽灵。我们考虑由非度量张量的双线性给出的项的一般组合。在发现了度规的保形与合规相容的条件后,当连接点消失时,我们确定了二者的组合,使得存在一个常曲率解。所得模型对应于对称遥平行重力框架下的二维JT重力。在该理论中,共形模以标量形式传播,并考虑了标量模不是鬼影的条件。
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来源期刊
Physics Letters B
Physics Letters B 物理-物理:综合
CiteScore
9.10
自引率
6.80%
发文量
647
审稿时长
3 months
期刊介绍: Physics Letters B ensures the rapid publication of important new results in particle physics, nuclear physics and cosmology. Specialized editors are responsible for contributions in experimental nuclear physics, theoretical nuclear physics, experimental high-energy physics, theoretical high-energy physics, and astrophysics.
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