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Light Scalars and the KOTO Anomaly
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abstract
The KOTO experiment recently presented a significant excess of events in their search for the rare SM process $K_L \to \pi^0\nu\bar{\nu}$, well above both Standard Model signal and background predictions. We show that this excess may be due to weakly-coupled scalars that are produced from Kaon decays and escape KOTO undetected. We study two concrete realizations, the minimal Higgs portal and a hadrophilic scalar model, and demonstrate that they can explain the observed events while satisfying bounds from other flavor and beam-dump experiments. Hadronic beam-dump experiments provide particularly interesting constraints on these types of models, and we discuss in detail the normally underestimated uncertainties associated with them. The simplicity of the models which can explain the excess, and their possible relations with interesting UV constructions, provides strong theoretical motivation for a new physics interpretation of the KOTO data.
Forward citations
Cited by 2 Pith papers
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Flavor at FASER: Discovering Light Scalars Beyond Minimal Flavor Violation
Flavored scalar models with a Froggatt-Nielsen symmetry make D-meson decays a major production source for long-lived scalars at FASER/FASER2, with reach presented model-independently in branching fraction and lifetime...
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Experimental Study of Rare Kaon Decays at J-PARC with KOTO and KOTO II
The paper argues that KOTO II can measure the branching ratio of KL to pi0 nu nu with sensitivity below 1e-12 by the 2030s, enabling a 5-sigma discovery at the Standard Model value.
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