Some questions on quantum anomalies Roman Pasechnik Moscow State University, Moscow & Bogoliubov Lab of Theoretical Physics, JINR, Dubna 46-th Cracow School.

Slides:



Advertisements
Similar presentations
Feynman Diagrams Feynman diagrams are pictorial representations of
Advertisements

Vertex Function of Gluon-Photon Penguin Swee-Ping Chia High Impact Research, University of Malaya Kuala Lumpur, Malaysia
N =4 Supersymmetric Gauge Theory, Twistor Space, and Dualities David A. Kosower Saclay Lectures Fall Term 2004.
1 Top Production Processes at Hadron Colliders By Paul Mellor.
Chiral freedom and the scale of weak interactions.
The minimal B-L model naturally realized at TeV scale Yuta Orikasa(SOKENDAI) Satoshi Iso(KEK,SOKENDAI) Nobuchika Okada(University of Alabama) Phys.Lett.B676(2009)81.
QCD-2004 Lesson 1 : Field Theory and Perturbative QCD I 1)Preliminaries: Basic quantities in field theory 2)Preliminaries: COLOUR 3) The QCD Lagrangian.
Chiral freedom and the scale of weak interactions.
Polarized structure functions Piet Mulders ‘Lepton scattering and the structure of nucleons and nuclei’ September 16-24, 2004
Chiral freedom and the scale of weak interactions.
Muon Magnetic Moment Workshop Glasgow 25 th October 2007 Eduardo de Rafael CPT, CNRS-Luminy Standard Model Prediction of the Muon Anomaly Electroweak and.
Chiral freedom and the scale of weak interactions.
Xiangdong Ji University of Maryland/SJTU Physics of gluon polarization Jlab, May 9, 2013.
Constraints on renormalization group flows Based on published and unpublished work with A.Dymarsky,Z.Komargodski,S.Theisen.
9/19/20151 Semi-inclusive DIS: factorization Feng Yuan Lawrence Berkeley National Laboratory RBRC, Brookhaven National Laboratory.
P Spring 2003 L12Richard Kass The properties of the Z 0 For about ten years the Z 0 was studied in great detail at two accelerator complexes: LEP.
Three lectures: Symmetries exact approximate Asymptotic freedom

Chiral-even and odd faces of transverse Sum Rule Trieste(+Dubna), November Oleg Teryaev JINR, Dubna.
Maksimenko N.V., Vakulina E.V., Deryuzkova О.М. Kuchin S.М. GSU, GOMEL The Amplitude of the Сompton Scattering of the Low-Energy Photons at Quark-Antiquark.
Breakdown of NRQCD Factorization ?? J. P. Ma Institute of Theoretical Physics, Beijing 北京 May Taipei Summer Institute on Strings, Particles.
1 Noncommutative QCDCorrections to the Gluonic Decays of Heavy Quarkonia Stefano Di Chiara A. Devoto, S. Di Chiara, W. W. Repko, Phys. Lett. B 588, 85.
Computational Methods in Particle Physics: On-Shell Methods in Field Theory David A. Kosower University of Zurich, January 31–February 14, 2007 Lecture.
Finite Temperature Field Theory Joe Schindler 2015.
Eigo Shintani (KEK) (JLQCD Collaboration) KEKPH0712, Dec. 12, 2007.
On-Shell Methods in Gauge Theory David A. Kosower IPhT, CEA–Saclay Taiwan Summer Institute, Chi-Tou ( 溪頭 ) August 10–17, 2008 Lecture I.
Unintegrated parton distributions and final states in DIS Anna Stasto Penn State University Work in collaboration with John Collins and Ted Rogers `
Beta-function as Infrared ``Phenomenon” RG-2008 (Shirkovfest) JINR, Dubna, September Oleg Teryaev JINR.
Inelastic scattering When the scattering is not elastic (new particles are produced) the energy and direction of the scattered electron are independent.
Transverse Momentum Resummation for Higgs Production at Hadron Colliders Chong Sheng Li School of Physics, Peking University 2012 海峡两岸粒子物理与宇宙学研讨会 ,
HNP 2011, Pohang, Korea Weak Pion Production and Strangeness Contents on the Hadron Myung-Ki CHEOUN (Soongsil Univ., Korea) and (Soongsil Univ.,
Higher Order Electroweak Corrections for Parity Violating Analog of GDH Sum Rule Krzysztof Kurek Andrzej Sołtan Institute for Nuclear Studies, Wasaw In.
QCD-2004 Lesson 2 :Perturbative QCD II 1)Preliminaries: Basic quantities in field theory 2)Preliminaries: COLOUR 3) The QCD Lagrangian and Feynman rules.
Threshold Resummation for Top- Quark Pair Production at ILC J.P. Ma ITP, CAS, Beijing 2005 年直线对撞机国际研讨会, Tsinghua Univ.
Masayasu Harada (Nagoya Univ.) based on (mainly) M.H. and K.Yamawaki, Phys. Rev. Lett. 86, 757 (2001) M.H. and C.Sasaki, Phys. Lett. B 537, 280 (2002)
Nucleon Polarizabilities: Theory and Experiments
Measurements with Polarized Hadrons T.-A. Shibata Tokyo Institute of Technology Aug 15, 2003 Lepton-Photon 2003.
NPD-2009 Conference, ITEP, Moscow, November , Spin structure of the “forward” charge exchange reaction n + p  p + n and the deuteron.
IFIC. 1/23 Outline 2/23 I. Top-pair production near threshold Precise determination of the top mass, the width and the Yukawa coupling Seidel, Simon,

Exotic baryon resonances in the chiral dynamics Tetsuo Hyodo a a RCNP, Osaka b ECT* c IFIC, Valencia d Barcelona Univ. 2003, December 9th A.Hosaka a, D.
Monday, Apr. 7, 2003PHYS 5326, Spring 2003 Jae Yu 1 PHYS 5326 – Lecture #20 Monday, Apr. 7, 2003 Dr. Jae Yu Super Symmetry Breaking MSSM Higgs and Their.
The Importance of the TeV Scale Sally Dawson Lecture 3 FNAL LHC Workshop, 2006.
Single Transverse-Spin Asymmetries and Twist-3 Factorization J.P. Ma, ITP, Beijing Weihai,
Tensor and Flavor-singlet Axial Charges and Their Scale Dependencies Hanxin He China Institute of Atomic Energy.
Introduction to Flavor Physics in and beyond the Standard Model Enrico Lunghi References: The BaBar physics book,
Departamento de Física Teórica II. Universidad Complutense de Madrid José R. Peláez ON THE NATURE OF THE LIGHT SCALAR NONET FROM UNITARIZED CHIRAL PERTURBATION.
Excited QCD 2014 Bjelasnica Mountain, Sarajevo. Outline Sara Taheri Monfared (IPM) 2.
Non-Linear Effects in Strong EM Field Alexander Titov Bogoliubov Lab. of Theoretical Physics, JINR, Dubna International.
А.А.Солошенко JINR а также некоторые теоретические и феноменологические аспекты N=1 SUSY теорий (отчет за последние 5 лет)
2006 5/19QCD radiative corrections1 QCD radiative corrections to the leptonic decay of J/ψ Yu, Chaehyun (Korea University)
Perturbative QCD in Nuclear Environment Jianwei Qiu Iowa State University Student Lecture at Quark Matter 2004 Oakland – January 11, 2004 Table of Contents:
Adler-Bardeen Theorem for the Axial Anomaly and the First Moment of the Polarized Virtual Photon Structure Function Takahiro Ueda (Yokohama National Univ.)
Nature of f 0 (1370), f 0 (1500) and f 0 (1710) within the eLSM Stanislaus Janowski in collaboration with F. Giacosa, D. Parganlija and D. H. Rischke Stanislaus.
Lecture 4 – Quantum Electrodynamics (QED)
Song He Institute of Theoretical Physics, Chinese Academy of Sciences, Beijing.
Intro to SUSY II: SUSY QFT Archil Kobakhidze PRE-SUSY 2016 SCHOOL 27 JUNE -1 JULY 2016, MELBOURNE.
A T : novel variable to study low transverse momentum vector boson production at hadron colliders. Rosa María Durán Delgado The University of Manchester.
11/19/20161 Transverse Momentum Dependent Factorization Feng Yuan Lawrence Berkeley National Laboratory RBRC, Brookhaven National Laboratory.
On the pair correlations of neutral K, D, B and B s mesons with close momenta produced in inclusive multiparticle processes Valery V. Lyuboshitz.
WEAK DECAYS: ALL DRESSED UP
seminar at Academia Sinica
Derivation of Electro-Weak Unification and Final Form of Standard Model with QCD and Gluons  1W1+  2W2 +  3W3.
Direct Detection of Vector Dark Matter
Elastic Scattering in Electromagnetism
Announcements Exam Details: Today: Problems 6.6, 6.7
Handout 4 : Electron-Positron Annihilation
Theory of Scattering Lecture 4.
B. Mellado University of the Witwatersrand
The decays KS, L into four leptons
Presentation transcript:

Some questions on quantum anomalies Roman Pasechnik Moscow State University, Moscow & Bogoliubov Lab of Theoretical Physics, JINR, Dubna 46-th Cracow School of Theoretical Physics, May 27 – June 5, 2006

Outline Classical symmetriesQuantum symmetries ? Anomaly appears then there is the breaking of some classical symmetry in quantum theory There is no the general principle allowing us to transfer classical symmetries on quantum level See for review, for example: S. Adler, “Anomalies to all orders” hep-th/ and “Anomalies” hep-th/

One of the applications of axial anomaly: the muon anomalous magnetic moment Useful definitions concerning to the axial anomaly Brief description of the dispersive approach to the axial anomaly Vainshtein’s non-renormalization theorem: dispersive point of view One of the applications of trace anomaly: the Higgs boson production in a fusion of two gluons The calculation of off-shell effects on the amplitude and cross section My talk includes:

Motivation There is a class of electro-weak contributions to the muon g-2 containing a fermion triangle along with a virtual photon and Z boson For the determination of the muon anomalous magnetic moment (g-2) we are interested in the transition between virtual Z and in the presence of the external magnetic field to first order in this field. This is the motivation for studying anomalous AVV amplitude in detail.

The axial anomaly (AA): basic definitions AA occurs only at one-loop level The AVV amplitude Rosenberg’s representation Symmetric properties The anomalous axial-vector Ward identity (*)

Dispersion approach to the axial anomaly: a brief review where Imaginary parts satisfy non-anomalous Ward identity With (*) we get Therefore the occurrence of the axial anomaly is equivalent to a “sum rule” at one loop:

Dispersion approach to the axial anomaly: a brief review writing unsubtracted dispersion relations with respect to we obtain by analogous way

Vainshtein’s non-renormalization theorem Let is a source of a soft photon with polarization vector then It is well-known that in the chiral limit at one-loop level or There is the symmetry of the amplitude under permutation in the chiral limit (**) As a result the relations (**) get no the perturbative corrections from gluon exchanges The anomaly is expressed only through :

Vainshetein’s non-renormalization theorem: dispersion point of view is the same with the imaginary part of (**) for real external photons in the chiral limit at the one-loop level. In difference from Vainshtein’s approach within the dispersion approach we have two dispersion relations for axial anomaly including both structures If the relation (***) gets no the perturbative corrections in the higher orders then it can provide the non-renormalization theorem for transversal part of the triangle for arbitrary fermion's mass. (***) We have two dispersion relations for AA. The equaling of l.h.s. of this relations with and being interchanged gives

Calculation of two loop axial anomaly We have calculated the imaginary part of the third formfactor corresponding to the full two loop amplitude in both kinematics. The result is zero!

The dispersive approach to the axial anomaly is postulated to be valid in the higher orders of perturbation theory The Ward identity is proved up to two loop level in both cases of the external momenta corresponding to two real photons and one real and one virtual photons It is proposed to expand the Vainshtein’s non-renormalization theorem for arbitrary fermion's masses in the triangle loop for above cases. But this work is still in progress now… R.S.Pasechnik, O.V.Teryaev, PRD73, , ’06 ! But: Kirill Melnikov, hep-ph/ non-vanishing two loop QCD mass corrections to the AVV correlator exist that is opposite to our result

Standard Model Higgs boson production The dominant production mechanism at hadron colliders is via gluon-gluon fusion The amplitude for on-shell gluons is well-known (effective Lagrangian approach): We posed the following problems: 1)to take into account the non-zeroth gluon virtualities in the amplitude including finite (not infinite) masses of quarks in the loop 2)to calculate the matrix element and inclusive cross-section in the framework of kt-factorization approach

Fusion of two off-shell gluons Symmetry of the amplitude Tensor representation Formfactors

Effects of gluon virtualities Dimensionless parameters Expansions in the limit Matrix element Effects: on matrix element on angular distribution Cross section

Effects of gluon virtualities with full amplitude with interference term

R.S.Pasechnik, O.V.Teryaev, A.Szczurek, Eur. Phys. J. C, in press We have analyzed the effect of the non-zeroth virtualities of external gluons on the amplitude of a scalar Higgs boson production. We found a new term in the amplitude compared to the recent effective Lagrangian calculation. The relative drop of the averaged square of the matrix element is about 1% or less at relevant physical parameters, so this effect could be verified in the high precision experiments only. The effect of the non-zeroth virtualities on the angular distribution is much more significant due to a quick growth of the second formfactor.