论文标题

非高斯作为重力理论的签名

Non-Gaussianity as a signature of a quantum theory of gravity

论文作者

Howl, Richard, Vedral, Vlatko, Naik, Devang, Christodoulou, Marios, Rovelli, Carlo, Iyer, Aditya

论文摘要

长期以来,人们认为量子重力(QG)的桌面测试实际上是不可能的。但是,值得注意的是,由于量子信息科学(QIS)的迅速进展,可能很快就可以实现此类测试。在这里,我们发现了QG和QI之间的令人兴奋的新理论联系,这也导致了一种通过QIS实验测试QG的根本新方法。具体而言,我们发现只有一个量子而不是经典的重力理论才能创建非高斯性,这是物质状态下的QIS资源,是通用量子计算所必需的QIS资源。这允许基于QI进行测试,在QI中,物质上的非高斯性被用作QG的签名。与先前对QI的测试QG进行的研究相比,在排除所有其他量子相互作用时,使用纠缠来见证QG,我们的非高斯证人无法通过直接的经典重力相互作用来创建我们的非高斯证人,这促进了不受此类过程的存在而限制的测试。我们的新QG签名还可以实现仅基于单个而不是多目标量子系统的测试,从而简化了先前考虑的实验设置。我们描述了QG的桌面测试,该测试使用我们的非高斯性特征,并且仅基于单个量子系统,即玻色 - 因斯坦冷凝水(BEC),它是一个位置。与基于光学机械设置的建议相反,BEC已经被操纵到大规模的非古典状态中,有助于在不久的将来测试QG的前景。

Table-top tests of quantum gravity (QG) have long been thought to be practically impossible. However, remarkably, due to rapid progress in quantum information science (QIS), such tests may soon be achievable. Here, we uncover an exciting new theoretical link between QG and QIS that also leads to a radical new way of testing QG with QIS experiments. Specifically, we find that only a quantum, not classical, theory of gravity can create non-Gaussianity, a QIS resource that is necessary for universal quantum computation, in the quantum field state of matter. This allows for tests based on QIS in which non-Gaussianity in matter is used as a signature of QG. In comparison to previous studies of testing QG with QIS where entanglement is used to witness QG when all other quantum interactions are excluded, our non-Gaussianity witness cannot be created by direct classical gravity interactions, facilitating tests that are not constrained by the existence of such processes. Our new signature of QG also enables tests that are based on just a single rather than multi-partite quantum system, simplifying previously considered experimental setups. We describe a table-top test of QG that uses our non-Gaussianity signature and which is based on just a single quantum system, a Bose-Einstein condensate (BEC), in a single location. In contrast to proposals based on opto-mechanical setups, BECs have already been manipulated into massive non-classical states, aiding the prospect of testing QG in the near future.

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