1,052 research outputs found

    Perturbative corrections to B→DB \to D form factors in QCD

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    We compute perturbative QCD corrections to B→DB \to D form factors at leading power in Λ/mb\Lambda/m_b, at large hadronic recoil, from the light-cone sum rules (LCSR) with BB-meson distribution amplitudes in HQET. QCD factorization for the vacuum-to-BB-meson correlation function with an interpolating current for the DD-meson is demonstrated explicitly at one loop with the power counting scheme mc∼O(Λ mb)m_c \sim {\cal O} \left (\sqrt{\Lambda \, m_b} \right ) . The jet functions encoding information of the hard-collinear dynamics in the above-mentioned correlation function are complicated by the appearance of an additional hard-collinear scale mcm_c, compared to the counterparts entering the factorization formula of the vacuum-to-BB-meson correction function for the construction of B→πB \to \pi from factors. Inspecting the next-to-leading-logarithmic sum rules for the form factors of B→DℓνB \to D \ell \nu indicates that perturbative corrections to the hard-collinear functions are more profound than that for the hard functions, with the default theory inputs, in the physical kinematic region. We further compute the subleading power correction induced by the three-particle quark-gluon distribution amplitudes of the BB-meson at tree level employing the background gluon field approach. The LCSR predictions for the semileptonic B→DℓνB \to D \ell \nu form factors are then extrapolated to the entire kinematic region with the zz-series parametrization. Phenomenological implications of our determinations for the form factors fBD+,0(q2)f_{BD}^{+, 0}(q^2) are explored by investigating the (differential) branching fractions and the R(D)R(D) ratio of B→DℓνB \to D \ell \nu and by determining the CKM matrix element ∣Vcb∣|V_{cb}| from the total decay rate of B→DμνμB \to D \mu \nu_{\mu}.Comment: 49 pages, 8 figures, version accepted for publication in JHE

    QCD calculations of B→π,KB \to \pi, K form factors with higher-twist corrections

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    We update QCD calculations of B→π,KB \to \pi, K form factors at large hadronic recoil by including the subleading-power corrections from the higher-twist BB-meson light-cone distribution amplitudes (LCDAs) up to the twist-six accuracy and the strange-quark mass effects at leading-power in Λ/mb\Lambda/m_b from the twist-two BB-meson LCDA ϕB+(ω,μ)\phi_B^{+}(\omega, \mu). The higher-twist corrections from both the two-particle and three-particle BB-meson LCDAs are computed from the light-cone QCD sum rules (LCSR) at tree level. In particular, we construct the local duality model for the twist-five and -six BB-meson LCDAs, in agreement with the corresponding asymptotic behaviours at small quark and gluon momenta, employing the QCD sum rules in heavy quark effective theory at leading order in αs\alpha_s. The strange quark mass effects in semileptonic B→KB \to K form factors yield the leading-power contribution in the heavy quark expansion, consistent with the power-counting analysis in soft-collinear effective theory, and they are also computed from the LCSR approach due to the appearance of the rapidity singularities. We further explore the phenomenological aspects of the semileptonic B→πℓνB \to \pi \ell \nu decays and the rare exclusive processes B→KννB \to K \nu \nu, including the determination of the CKM matrix element ∣Vub∣|V_{ub}|, the normalized differential q2q^2 distributions and precision observables defined by the ratios of branching fractions for the above-mentioned two channels in the same intervals of q2q^2.Comment: 36 pages, 9 figure

    Chiral selection and frequency response of spiral waves in reaction-diffusion systems under a chiral electric field

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    Chirality is one of the most fundamental properties of many physical, chemical and biological systems. However, the mechanisms underlying the onset and control of chiral symmetry are largely understudied. We investigate possibility of chirality control in a chemical excitable system (the BZ reaction) by application of a chiral (rotating) electric field using the Oregonator model. We find that unlike previous findings, we can achieve the chirality control not only in the field rotation direction, but also opposite to it, depending on the field rotation frequency. To unravel the mechanism, we further develop a comprehensive theory of frequency synchronization based on the response function approach. We find that this problem can be described by the Adler equation and show phase-locking phenomena, known as the Arnold tongue. Our theoretical predictions are in good quantitative agreement with the numerical simulations and provide a solid basis for chirality control in excitable media.Comment: 21 pages with 9 figures; update references; to appear in J. Chem. Phy

    Invariant information and complementarity in high-dimensional states

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    Using a generalization of the invariant information introduced by Brukner and Zeilinger [Phys. Rev. Lett. \textbf{83}, 3354 (1999)] to high-dimensional systems, we introduce a complementarity relation between the local and nonlocal information for d×dd\times d systems under the isolated environment, where dd is prime or the power of prime. We also analyze the dynamics of the local information in the decoherence process.Comment: 4 pages, 2 figure

    Phase-locked scroll waves defy turbulence induced by negative filament tension

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    Scroll waves in a three-dimensional media may develop into turbulence due to negative tension of the filament. Such negative tension-induced instability of scrollwaves has been observed in the Belousov-Zhabotinsky reaction systems. Here we propose a method to restabilize scroll wave turbulence caused by negative tension in three-dimensional chemical excitable media using a circularly polarized (rotating) external field. The stabilization mechanism is analyzed in terms of phase-locking caused by the external field, which makes the effective filament tension positive. The phase-locked scrollwaves that have positive tension and higher frequency defy the turbulence and finally restore order. A linear theory for the change of filament tension caused by a generic rotating external field is presented and its predictions closely agree with numerical simulations
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