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Indirect Probe of Quantum Gravity using Molecular Wave-packets

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arxiv 1901.09696 v3 pith:IM66IJ2D submitted 2019-01-24 gr-qc hep-thquant-ph

classification gr-qchep-thquant-ph
keywords wave-packetsgravityindirectlargemolecularquantumscaletest
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abstract

The most obvious obstacle behind a direct test of Quantum Gravity (QG) is its energy scale ($10^{19}$ GeV), which remains well outside of any human made machine. The next best possible approach is to provide indirect tests on effective theories of QG which can be performed in a lower energy scale. This paper is aimed in this direction, and shows a promising path to test the existence of the fundamental minimal length scale of Nature by measuring the dispersion of free, large molecular wave-packets. The existence of the minimal length is believed to be the reason for a modified commutation relationship between the position and momentum operators and, in this paper, we show that such a modification of the commutator has a profound effect on the dispersion rate of free wave-packets, and precise measurement on the broadening times of large molecular wave-packets (such as $C_{60}$, $C_{176}$ and large organic molecules) provide a promising path for an indirect test of quantum gravity, in a laboratory setting.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. On Quantum Gravity Tests with Composite Particles

    quant-ph 2019-08 conditional novelty 6.0 of 10

    Reanalysis of a 1964 pendulum experiment gives the first positive bound alpha > 0.07 on the particle-number suppression exponent of quantum-gravity commutator deformations, assuming beta0 = 1.

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