失定域质量重组中的引力发射条件

Q2 Physics and Astronomy Quantum Reports Pub Date : 2022-09-21 DOI:10.3390/quantum5020028
A. Pesci
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引用次数: 2

摘要

在一个已知的格丹肯实验中,一个离域质量被重组,而由它产生的引力场被另一个(遥远的)粒子探测;在它中,这被用来探索在引力场与叠加位置纠缠的情况下,互补性和因果性之间可能存在的张力,提出的分辨率是四极矩的引力子发射。在这里,我们专注于离域粒子(忘记了探针和格丹肯实验),并探索了引力子发射的条件(根据质量、分离和复合时间)。通过这一点,我们发现,与由离域态的能量-动量期望值(在后一种情况下,m质量,d分离)产生的场相比,如果场被纠缠,则复合中四极矩的变化通常会大大增强。此外,我们获得了引力子发射增长为m的(上限)复合时间,而不是初始期望m。在这一点上,普朗克质量充当阈值质量(对于离域物体来说是巨大的):无论复合发生得多么快,在它以下都不可能有引力子辐射。如果将其与Diósi和Penrose(以其基本形式)的坍塌模型中预测的衰变时间进行比较,就会发现在它们中不可能产生重组产生的(四极)引力子发射。事实上,当m变得足够大以允许排放时,它也变得太大,叠加层无法在坍塌中存活足够长的时间来重组。
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Conditions for Graviton Emission in the Recombination of a Delocalized Mass
In a known gedanken experiment, a delocalized mass is recombined while the gravitational field sourced by it is probed by another (distant) particle; in it, this is used to explore a possible tension between complementarity and causality in case the gravitational field entangles with the superposed locations, a proposed resolution being graviton emission from quadrupole moments. Here, we focus on the delocalized particle (forgetting about the probe and the gedanken experiment) and explore the conditions (in terms of mass, separation, and recombination time) for graviton emission. Through this, we find that the variations of quadrupole moments in the recombination are generically greatly enhanced if the field is entangled compared to if it is sourced instead by the energy momentum expectation value on the delocalized state (moment variation ∼md2 in the latter case, with m mass, d separation). In addition, we obtain the (upper) limit recombination time for graviton emission growing as m in place of the naive expectation m. In this, the Planck mass acts as threshold mass (huge, for delocalized objects): no graviton emission is possible below it, however fast the recombination occurs. If this is compared with the decay times foreseen in the collapse models of Diósi and Penrose (in their basic form), one finds that no (quadrupole) graviton emission from recombination is possible in them. Indeed, right when m becomes large enough to allow for emission, it also becomes too large for the superposition to survive collapse long enough to recombine.
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来源期刊
Quantum Reports
Quantum Reports Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
3.30
自引率
0.00%
发文量
33
审稿时长
10 weeks
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