Crossing the desert: Towards predictions for SMEFT coefficients from quantum gravity
The SMEFT provides a general framework to search for new physics beyond the current reach of direct detection. One such form of new physics is quantum gravity. Based on dimensional analysis, one would expect the prediction that the quantum-gravity contribution to the SMEFT coefficients is unmeasurab...
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Zusammenfassung: | The SMEFT provides a general framework to search for new physics beyond the
current reach of direct detection. One such form of new physics is quantum
gravity. Based on dimensional analysis, one would expect the prediction that
the quantum-gravity contribution to the SMEFT coefficients is unmeasurably tiny
at LHC scales. In this paper, we test this expectation in a specific framework
for quantum gravity, namely the asymptotic safety framework. In this framework,
Wilson coefficients can be calculated in relatively straightforward manner,
making a connection between quantum gravity and LHC tests of the SMEFT
achievable. We work in a toy model of the Standard Model fermion sector to
investigate four-fermion couplings. We find three scenarios in this toy model,
based on three distinct fixed points of the Renormalization Group flow. In the
first scenario, the expectation from dimensional analysis is borne out and
Wilson coefficients are Planck-scale suppressed. In the second and third
scenarios, the Wilson coefficients are significantly larger than expected by
dimensional analysis, due to interacting fixed points which generate an
effective new-physics scale that lies between the LHC scale and the Planck
scale. We comment on the implications of these results for the testability of
asymptotically safe gravity within the SMEFT framework at the LHC. |
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DOI: | 10.48550/arxiv.2407.12086 |