H2020Индивидуална стипендия2017–2019

NIOBE · Non-Leptonic Three-Body B Decays: Theory and Phenomenology

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2017-07-01 → 2019-12-31
Финансиране от ЕС
214 828 €
Участници
2
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Нелептонните разпади на B-мезони, при които се образуват повече от две частици (например системи от пиони и каони), са обект на теоретичен анализ. Това помага за по-доброто разбиране на Стандартния модел в физиката и правилното тълкуване на данни от ускорителите LHC и Belle-II.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Non-Leptonic Three-Body B Decays: Theory and Phenomenology

"Non-leptonic decays of B mesons have been studied extensively since the 90s, when experimental progress made it possible to produce B mesons in large numbers and controlled conditions. These studies have been essential in testing and understanding the flavor and CP sector of the Standard Model. However, theory predictions are difficult to produce. The experimental program at LHC and Belle-II opens now the door to a more systematic study of exclusive non-leptonic B decays with more than 2 particles in the final state. The theoretical study of such decay modes is the subject of this project. The objective has been to put in place a framework and a set of calculations that will contribute to the theoretical understanding of these decay modes and to the interpretation of the wealth of experimental data. This framework relies on the property of ""factorization"" of short and long-distance physics, and allows to write decay amplitudes in terms of simpler non-perturbative matrix elements. One of the main outputs of the research performed here has been the calculation of the non-perturbative matrix elements genuine of three-body non-leptonic decays in the borders of the kinematic phase space (B--> 2-meson form factors). One of the conclusions is that the method of light-cone sum rules with B-meson distribution amplitudes is the ideal approach so far. These calculations have been performed for the pi-pi and the K-pi systems, and it has been identified that the correction due to the width of the K* in B decays with K* mesons in the final states is as large as 20% at the level of the decay rate. This conclusion seems very relevant in applications to semileptonic rare decays, and will also be the case in non-leptonic decays as soon as experimental precision is improved. In addition, contributions from resonances at higher K-pi invariant masses are also found to be relevant for the determination of the B-->K* form factors. Another new element that we have introduced in this project is the possibility to use LHCb measurements at high K-pi invariant masses to gain knowledge on the K*. Non-leptonic B decays are also used systematically to determine CKM parameters, which are fundamental constants related to flavor. As another output of this project, it has been realized that in the situation of generic physics beyond the Standard Model (SM), when new degrees of freedom are above the electroweak scale, the way we use non-leptonic B decays to gain access to these fundamental parameters has to be revised. We have presented a proposal for CKM determinations beyond the SM, and the avenue of revisiting the role of non-leptonic decays has been opened. Regarding the predictions for CP violation, the challenge remains in gaining control over different partial waves, and on the structure of CP-violating asymmetries far from the edges of the kinematic phase space. Thus, more work is needed in this direction, where hopefully future experimental studies will shed some light. Finally, a symbiotic relationship between non-leptonic and rare B decays has been explored, in the quest towards a theoretical approach to ""non-local"" form factors. The conclusion is that a detailed experimental study of non-leptonic B decays such as B-->K* X(1--), where X(1--) is a generic hadronic final state with spin 1, and negative parity and charge conjugation, will be a strong handle for predictions of semileptonic FCNC decays."

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Tests of the Standard Model (SM) of Particle Physics and the search for New Physics (NP) is a central issue in the European program in High-Energy Physics. Weak decays of heavy hadrons have a unique potential for the extraction of SM parameters, the study of CP violation, and the search for NP. Among these, decays of B mesons into three final hadrons are of huge phenomenological interest. They have been studied experimentally at B factories and at the LHC, and will be a cornerstone in the physics program at Belle-II. However, the theoretical basis for such processes has yet not been developed. Through this project, we will establish the theoretical grounds for the description of non-leptonic three-body B decays, from basic principles to phenomenological applications.The theoretical description of three-body decays requires a generalization of the theory of non-leptonic two-body B decays, which is by now well established. It involves factorization of perturbative and non-perturbative physics --most conveniently achieved in the framework of Soft-Collinear Effective Theory (SCET)--, the calculation of perturbative kernels, and the study of non-perturbative matrix elements. However, this generalization is non-trivial and requires addressing new issues and facing new challenges, making this a highly innovative project.We are three the participants in this action:- Javier Virto (Main Researcher), with a wide experience in the theory and phenomenology of B decays, will be the driving force in this project, while receiving an intensive training from two of the developers of the theory of hadronic B decays.- Iain Stewart (US partner), developer of Soft-Collinear Effective Theory. - Martin Beneke (EU Host), developer of the QCD Factorization approach and SCET in position space.

Оригинален текст от CORDIS (на английски).

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Връзки

Данни: CORDIS, © Европейски съюз