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Basudha Misra

Publications and source records attributed to Basudha Misra.

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A complete determination of New Physics parameters in leptonic decays of $\mathbf{B_{s}^0}$

Recently LHCb has measured the branching ratio of the rare decay of $B_s^0\rightarrow μ^+ μ^- $ as $2.9^{+1.1}_{-1.0} \times10^{-9}$ which is at par with the predicted standard model (SM) value. This result does not predict the absence of new physics (NP), rather it confines the NP parameter-space in a more stringent fashion. In this paper we have used the general loop level Hamiltonian to constrain the parameter space for the NP couplings for $B_s^0\rightarrow μ^+ μ^- $ from the experimental branching ratio. Using the available parameter space for these couplings, we have explored the angular analysis of the cascade decay of $B^0_{s}\to τ^+τ^- \to (ρ^+\barν_τ)_{τ^+}(π^{-}ν_τ)_{τ^-} \to ((π^+ π^0)_{ρ^+}\barν_τ)_{τ^+}(π^{-}ν_τ)_{τ^-}$. This analysis shows presence of NP can be identified by the angular analysis and also shows how to isolate the NP contribution from the SM. We believe that in future with the reduced error in the branching ratio measurement and better $τ$ cone reconstruction technique we will be able to probe NP signal using this angular analysis.

hep-ph

Constraining Scalar Leptoquarks from the K and B Sectors

Upper bounds at the weak scale are obtained for all $λ_{ij}λ_{im}$ type product couplings of the scalar leptoquark model which may affect K-K(bar), B_d-B_d(bar), and B_s-B_s(bar)$ mixing, as well as leptonic and semileptonic K and B decays. Constraints are obtained for both real and imaginary parts of the couplings. We also discuss the role of leptoquarks in explaining the anomalously large CP-violating phase in B_s-B_s(bar) mixing.

hep-ph

An extended model for nonet pseudo-scalar meson fragmentation

An SU(3) symmetric model with high predictivity for octet meson (π, K) quark fragmentation functions with a simple approach to SU(3) symmetry breaking (due to the relatively heavy strange quarks) is extended to the singlet sector, with some reasonable assumptions, in order to study ηand η' fragmentation. Due to the presence of SU(3) symmetry, fits to the πand K data help to constrain the fragmentation functions for ηand η' mesons. The use of 2-jet and 3-jet (especially the gluon jet) inclusive meson production in e^+e^- collisions and π, ηinclusive production in p p collisions enable the extraction of the gluon fragmentation functions as well. While sea quarks in strange mesons (K^{+-},K^0,Kbar^0) and the heavier η, η' mesons are suppressed by a factor of lambda_H = m_π^2/m_H^2 < 0.1 for H=K,η,η', the gluons are not as severely suppressed: f_g^H=0.3--0.35. A detailed parametrisation of the three independent fragmentation functions V(x, Q2), γ(x, Q2), and D_g(x, Q2) are given in LO QCD; all nonet meson gluon fragmentation functions and quark fragmentation functions of all flavours can be expressed in terms of these functions with a few model parameters including λ_H and f_g. The data prefer a nonet mixing angle -24deg<=θ_P<=-16deg and rule out no-mixing.

hep-ph

${\bar B_s} \to μ^+ μ^-$ decay in the Randall-Sundrum model

We investigate the ${\bar B_s} \to μ^+ μ^-$ decay in the presence of a light stabilized radion in Randall-Sundrum model. The branching ratio $BR({\bar B_s} \to μ^+ μ^-)$ in the standard model is found to be $3.17 \times 10^{-9}$ (two order smaller than the experimental upper bound) and raises the question whether some new physics can play a crucial role or not. We found that for a reasonable range of parameters (i.e. radion mass $m_ϕ$ and radion vev $\vphi$), the above deficit between the experimental bound and the standard model result can well be accomodated. Using this upper bound on $BR({\bar B_s} \to μ^+ μ^-)$, we obtain the lower bound on $\vphi$.

hep-ph

Has New Physics already been seen in B_d meson decays?

We show using a model independent approach that the deviation in measured B_d^0-\bar{B}_d^0 mixing phase caused by pollution from another amplitude, within the Standard Model, is always less in magnitude, and has the same sign as the weak phase of the polluting amplitude. The exception is to have large destructive interference between the two amplitudes. We demonstrate that any deviation larger than a few degrees is only possible if the observed decay rate results from fine tuned cancellations between significantly larger quark level amplitudes. These simple observations have very significant consequences for signals of New Physics.

hep-ph