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arXiv · hep-ph/9506260

Uncertainties on the CP Phase $\bfalpha$ due to Penguin Diagrams

Abstract

A major problem in the determination of the the CP angle $α$, that should be measured through modes of the type $B_d, \bar{B}_d \to ππ, \cdots ,$ is the uncertainty coming from Penguin diagrams. We consider the different ground state modes $ππ$, $πρ$, $ρρ$, and, assuming the FSI phases to be negligible, we investigate the amount of uncertainty coming from Penguins that can be parametrized by a dilution factor $D$ and an angle shift $Δα$. The parameter $D$ is either 1 or very close to 1 in all these modes, and it can be measured independently, up to a sign ambiguity, by the $t$ dependence. Assuming factorization, we show that $Δα$ is much smaller for the modes $ρπ$ and $ρρ$ than for $ππ$, and we plot their allowed region as a function of $α$ itself. Moreover, we show that most of the modes contribute to the asymmetry with the same sign, and define for their sum an effective $D_{eff}$ and an effective $Δα_{eff}$, an average of $Δα$ for the different modes. It turns out that $D_{eff}$ is of the order of 0.9, $Δα_{eff}$ is between 5 $\%$ and 10 $\%$ and, relative to $ππ$, the statistical gain for the sum is of about a factor 10. Finally, we compute the ratios $Kπ/ππ, \cdots$ that test the strength of the Penguins and depend on the CP angles, as emphasized by Silva and Wolfenstein and by Deandrea et al.

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BibTeXRIS

R. Aleksan, F. Buccella, A. Le Yaouanc, L. Oliver, O. Pène, J. -C. Raynal. 1995-06-07. Uncertainties on the CP Phase $\bfalpha$ due to Penguin Diagrams. https://doi.org/10.1016/0370-2693(95)00786-k

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