Abstract
The little Randall-Sundrum (little RS) model receives significantly stronger constraints from the flavor observables in comparison to the Randall-Sundrum (RS) model. In this paper, we analyze the effect of the electroweak sector in little RS on flavor-changing decays of charged leptons. We compare the predictions of the model with the current limits on the flavor-violating branching ratios of $\ensuremath{\mu}\ensuremath{\rightarrow}eee$, $\ensuremath{\tau}\ensuremath{\rightarrow}eee$, $\ensuremath{\tau}\ensuremath{\rightarrow}\ensuremath{\mu}\ensuremath{\mu}\ensuremath{\mu}$, $\ensuremath{\tau}\ensuremath{\rightarrow}\ensuremath{\mu}ee$, $\ensuremath{\tau}\ensuremath{\rightarrow}e\ensuremath{\mu}\ensuremath{\mu}$, $\ensuremath{\mu}\ensuremath{\rightarrow}e\ensuremath{\gamma}$, and $\ensuremath{\mu}Ti\ensuremath{\rightarrow}eTi$, and we show that the dominant constraint arises from the $\ensuremath{\mu}Ti\ensuremath{\rightarrow}eTi$ process which strongly limits the KK-1 gauge boson mass (${M}_{KK}$) to be $\ensuremath{\gtrsim}30.7\text{ }\text{ }\mathrm{TeV}$. We then derive and show that generalizing the electroweak gauge sector to include the brane localized kinetic term relaxes this constraint to $\ensuremath{\gtrsim}12\text{ }\text{ }\mathrm{TeV}$. Toward the conclusion, we comment on the possibility that the large flavor-violating currents can be mitigated by relaxing the assumption regarding the unnatural thinness and rigidity of the UV brane and discuss the possibility of suppression of these currents in the presence of fat fluctuating branes.
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