Struyve Ward
Mathematisches Institut, Ludwig-Maximilians-Universität München, Theresienstr. 39, 80333, München, Germany.
Sci Rep. 2017 Aug 15;7(1):8161. doi: 10.1038/s41598-017-06616-y.
Loop quantum gravity is believed to eliminate singularities such as the big bang and big crunch singularity. This belief is based on studies of so-called loop quantum cosmology which concerns symmetry-reduced models of quantum gravity. In this paper, the problem of singularities is analysed in the context of the Bohmian formulation of loop quantum cosmology. In this formulation there is an actual metric in addition to the wave function, which evolves stochastically (rather than deterministically as the case of the particle evolution in non-relativistic Bohmian mechanics). Thus a singularity occurs whenever this actual metric is singular. It is shown that in the loop quantum cosmology for a homogeneous and isotropic Friedmann-Lemaître-Robertson-Walker space-time with arbitrary constant spatial curvature and cosmological constant, coupled to a massless homogeneous scalar field, a big bang or big crunch singularity is never obtained. This should be contrasted with the fact that in the Bohmian formulation of the Wheeler-DeWitt theory singularities may exist.
圈量子引力被认为可以消除诸如大爆炸和大挤压奇点之类的奇点。这种观点基于对所谓圈量子宇宙学的研究,该理论涉及量子引力的对称性约化模型。在本文中,奇点问题在圈量子宇宙学的玻姆表述框架下进行了分析。在这种表述中,除了波函数外还有一个实际度规,它随机演化(而非像非相对论玻姆力学中粒子演化那样确定性地演化)。因此,只要这个实际度规是奇异的,奇点就会出现。结果表明,在具有任意恒定空间曲率和宇宙学常数、与无质量均匀标量场耦合的均匀各向同性弗里德曼 - 勒梅特 - 罗伯逊 - 沃克时空的圈量子宇宙学中,永远不会出现大爆炸或大挤压奇点。这应与惠勒 - 德维特理论的玻姆表述中可能存在奇点这一事实形成对比。