A proposal for testing Quantum Gravity in the lab
Ahmed Farag Ali, Saurya Das, Elias C. Vagenas

TL;DR
This paper proposes a generalized uncertainty principle consistent with quantum gravity theories, predicts quantized measurable lengths, and explores observable quantum phenomena corrections that could be tested experimentally.
Contribution
It introduces a GUP compatible with string theory and black hole physics, and calculates quantum gravity corrections to various quantum phenomena.
Findings
Quantized measurable lengths in units of a fundamental length.
Upper bound on quantum gravity parameter from current observations.
Predicted observable quantum gravity effects in quantum phenomena.
Abstract
Attempts to formulate a quantum theory of gravitation are collectively known as {\it quantum gravity}. Various approaches to quantum gravity such as string theory and loop quantum gravity, as well as black hole physics and doubly special relativity theories predict a minimum measurable length, or a maximum observable momentum, and related modifications of the Heisenberg Uncertainty Principle to a so-called generalized uncertainty principle (GUP). We have proposed a GUP consistent with string theory, black hole physics and doubly special relativity theories and have showed that this modifies all quantum mechanical Hamiltonians. When applied to an elementary particle, it suggests that the space that confines it must be quantized, and in fact that all measurable lengths are quantized in units of a fundamental length (which can be the Planck length). On the one hand, this may signal the…
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