Scattering processes and resonances from lattice QCD

被引:231
作者
Briceno, Raul A. [1 ,2 ]
Dudek, Jozef J. [1 ,3 ]
Young, Ross D. [4 ]
机构
[1] Thomas Jefferson Natl Accelerator Facil, 12000 Jefferson Ave, Newport News, VA 23606 USA
[2] Old Dominion Univ, Dept Phys, Norfolk, VA 23529 USA
[3] Coll William & Mary, Dept Phys, Williamsburg, VA 23187 USA
[4] Univ Adelaide, Dept Phys, Special Res Ctr Subat Struct Matter CSSM, Adelaide, SA 5005, Australia
基金
澳大利亚研究理事会;
关键词
QUANTUM-FIELD THEORIES; PHASE-SHIFTS; HADRON INTERACTIONS; VOLUME DEPENDENCE; ENERGY-SPECTRUM; MATRIX-ELEMENTS; DELTA-RESONANCE; FORM-FACTORS; MESON; TRANSITION;
D O I
10.1103/RevModPhys.90.025001
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The vast majority of hadrons observed in nature are not stable under the strong interaction; rather they are resonances whose existence is deduced from enhancements in the energy dependence of scattering amplitudes. The study of hadron resonances offers a window into the workings of quantum chromodynamics (QCD) in the low-energy nonperturbative region, and in addition many probes of the limits of the electroweak sector of the standard model consider processes which feature hadron resonances. From a theoretical standpoint, this is a challenging field: the same dynamics that binds quarks and gluons into hadron resonances also controls their decay into lighter hadrons, so a complete approach to QCD is required. Presently, lattice QCD is the only available tool that provides the required nonperturbative evaluation of hadron observables. This article reviews progress in the study of few-hadron reactions in which resonances and bound states appear using lattice QCD techniques. The leading approach is described that takes advantage of the periodic finite spatial volume used in lattice QCD calculations to extract scattering amplitudes from the discrete spectrum of QCD eigenstates in a box. An explanation is given of how from explicit lattice QCD calculations one can rigorously garner information about a variety of resonance properties, including their masses, widths, decay couplings, and form factors. The challenges which currently limit the field are discussed along with the steps being taken to resolve them.
引用
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页数:38
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共 267 条
[1]   The B → K* form factors on the lattice [J].
Agadjanov, Andria ;
Bernard, Veronique ;
Meissner, Ulf-G. ;
Rusetsky, Akaki .
NUCLEAR PHYSICS B, 2016, 910 :387-409
[2]   A framework for the calculation of the ΔNγ* transition form factors on the lattice [J].
Agadjanov, Andria ;
Bernard, Veronique ;
Meissner, Ulf-G. ;
Rusetsky, Akaki .
NUCLEAR PHYSICS B, 2014, 886 :1199-1222
[3]   Bound states on the lattice with partially twisted boundary conditions [J].
Agadjanov, D. ;
Guo, F. -K. ;
Rios, G. ;
Rusetsky, A. .
JOURNAL OF HIGH ENERGY PHYSICS, 2015, (01)
[4]   The optical potential on the lattice [J].
Agadjanov, Dimitri ;
Doering, Michael ;
Mai, Maxim ;
Meissner, Ulf-G. ;
Rusetsky, Akaki .
JOURNAL OF HIGH ENERGY PHYSICS, 2016, (06)
[5]   Partial twisting for scalar mesons [J].
Agadjanov, Dimitri ;
Meissner, Ulf-G ;
Rusetsky, Akaki .
JOURNAL OF HIGH ENERGY PHYSICS, 2014, (01)
[6]   Study of decuplet baryon resonances from lattice QCD [J].
Alexandrou, C. ;
Negele, J. W. ;
Petschlies, M. ;
Pochinsky, A. V. ;
Syritsyn, S. N. .
PHYSICAL REVIEW D, 2016, 93 (11)
[7]   Determination of Δ-resonance parameters from lattice QCD [J].
Alexandrou, C. ;
Negele, J. W. ;
Petschlies, M. ;
Strelchenko, A. ;
Tsapalis, A. .
PHYSICAL REVIEW D, 2013, 88 (03)
[8]   Nucleon electromagnetic form factors in twisted mass lattice QCD [J].
Alexandrou, C. ;
Brinet, M. ;
Carbonell, J. ;
Constantinou, M. ;
Harraud, P. A. ;
Guichon, P. ;
Jansen, K. ;
Korzec, T. ;
Papinutto, M. .
PHYSICAL REVIEW D, 2011, 83 (09)
[9]   P-wave ππ scattering and the. resonance from lattice QCD [J].
Alexandrou, Constantia ;
Leskovec, Luka ;
Meinel, Stefan ;
Negele, John ;
Paul, Srijit ;
Petschlies, Marcus ;
Pochinsky, Andrew ;
Rendon, Gumaro ;
Syritsyn, Sergey .
PHYSICAL REVIEW D, 2017, 96 (03)
[10]   Insight into the scaler mesons from a lattice calculation [J].
Alford, M ;
Jaffe, RL .
NUCLEAR PHYSICS B, 2000, 578 (1-2) :367-382