One-loop corrections to ALP couplings

被引:0
作者
J. Bonilla
I. Brivio
M. B. Gavela
V. Sanz
机构
[1] Departamento de Física Teórica,Institut für Theoretische Physik
[2] Universidad Autónoma de Madrid,Department of Physics and Astronomy
[3] and Instituto de Física Teórica IFT-UAM/CSIC,undefined
[4] Universität Heidelberg,undefined
[5] Instituto de Física Corpuscular (IFIC),undefined
[6] Universidad de Valencia-CSIC,undefined
[7] University of Sussex,undefined
来源
Journal of High Energy Physics | / 2021卷
关键词
Beyond Standard Model; Effective Field Theories; Renormalization Group;
D O I
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摘要
The plethora of increasingly precise experiments which hunt for axion-like particles (ALPs), as well as their widely different energy reach, call for the theoretical understanding of ALP couplings at loop-level. We derive the one-loop contributions to ALP-SM effective couplings, including finite corrections. The complete leading-order — dimension five — effective linear Lagrangian is considered. The ALP is left off-shell, which is of particular impact on LHC and accelerator searches of ALP couplings to γγ, ZZ, Zγ, WW, gluons and fermions. All results are obtained in the covariant Rξ gauge. A few phenomenological consequences are also explored as illustration, with flavour diagonal channels in the case of fermions: in particular, we explore constraints on the coupling of the ALP to top quarks, that can be extracted from LHC data, from astrophysical sources and from Dark Matter direct detection experiments such as PandaX, LUX and XENON1T. Furthermore, we clarify the relation between alternative ALP bases, the role of gauge anomalous couplings and their interface with chirality-conserving and chirality-flip fermion interactions, and we briefly discuss renormalization group aspects.
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