The pion: an enigma within the Standard Model

被引:150
作者
Horn, Tanja [1 ,2 ]
Roberts, Craig D. [3 ]
机构
[1] Catholic Univ Amer, Dept Phys, Washington, DC 20064 USA
[2] Thomas Jefferson Natl Accelerator Facil, Newport News, VA 23606 USA
[3] Argonne Natl Lab, Div Phys, Argonne, IL 60439 USA
基金
美国国家科学基金会;
关键词
Abelian anomaly; confinement; dynamical chiral symmetry breaking; elastic and transition form factors; pi-and K-mesons; non-perturbative QCD; parton distribution amplitudes and functions; CHIRAL-SYMMETRY-BREAKING; HARD EXCLUSIVE ELECTROPRODUCTION; DYSON-SCHWINGER EQUATIONS; DEEP INELASTIC-SCATTERING; ELECTROMAGNETIC FORM-FACTOR; AXIAL-VECTOR CURRENT; QUANTUM CHROMODYNAMICS; ASYMPTOTIC FREEDOM; MOMENTUM-TRANSFER; HIGH-ENERGIES;
D O I
10.1088/0954-3899/43/7/073001
中图分类号
O57 [原子核物理学、高能物理学];
学科分类号
070202 ;
摘要
Quantum chromodynamics (QCDs) is the strongly interacting part of the Standard Model. It is supposed to describe all of nuclear physics; and yet, almost 50 years after the discovery of gluons and quarks, we are only just beginning to understand how QCD builds the basic bricks for nuclei: neutrons and protons, and the pions that bind them together. QCD is characterised by two emergent phenomena: confinement and dynamical chiral symmetry breaking (DCSB). They have far-reaching consequences, expressed with great force in the character of the pion; and pion properties, in turn, suggest that confinement and DCSB are intimately connected. Indeed, since the pion is both a Nambu-Goldstone boson and a quark-antiquark bound-state, it holds a unique position in nature and, consequently, developing an understanding of its properties is critical to revealing some very basic features of the Standard Model. We describe experimental progress toward meeting this challenge that has been made using electromagnetic probes, highlighting both dramatic improvements in the precision of charged-pion form factor data that have been achieved in the past decade and new results on the neutral-pion transition form factor, both of which challenge existing notions of pion structure. We also provide a theoretical context for these empirical advances, which begins with an explanation of how DCSB works to guarantee that the pion is un-naturally light; but also, nevertheless, ensures that the pion is the best object to study in order to reveal the mechanisms that generate nearly all the mass of hadrons. In canvassing advances in these areas, our discussion unifies many aspects of pion structure and interactions, connecting the charged-pion elastic form factor, the neutral-pion transition form factor and the pion's leading-twist parton distribution amplitude. It also sketches novel ways in which experimental and theoretical studies of the charged-kaon electromagnetic form factor can provide significant contributions. Importantly, it appears that recent predictions for the large-Q(2) behaviour of the charged-pion form factor can be tested by experiments planned at the upgraded 12 GeV Jefferson Laboratory. Those experiments will extend precise charged-pion form factor data up to momentum transfers that it now appears may be large enough to serve in validating factorisation theorems in QCD. If so, they may expose the transition between the non-perturbative and perturbative domains and thereby reach a goal that has driven hadro-particle physics for around 35 years.
引用
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页数:45
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共 267 条
  • [31] Dynamical chiral symmetry breaking and the fermion-gauge-boson vertex
    Bashir, A.
    Bermudez, R.
    Chang, L.
    Roberts, C. D.
    [J]. PHYSICAL REVIEW C, 2012, 85 (04):
  • [32] Collective Perspective on Advances in Dyson-Schwinger Equation QCD
    Bashir, Adnan
    Chang Lei
    Cloet, Ian C.
    El-Bennich, Bruno
    Liu Yu-Xin
    Roberts, Craig D.
    Tandy, Peter C.
    [J]. COMMUNICATIONS IN THEORETICAL PHYSICS, 2012, 58 (01) : 79 - 134
  • [33] Batley JR, 2010, EUR PHYS J C, V70, P635, DOI 10.1140/epjc/s10052-010-1480-6
  • [34] ELECTROPRODUCTION OF SINGLE PIONS AT LOW EPSILON AND A MEASUREMENT OF PION FORM-FACTOR UP TO Q2 = 10 GEV2
    BEBEK, CJ
    BROWN, CN
    HOLMES, SD
    KLINE, RV
    PIPKIN, FM
    RAITHER, S
    SISTERSON, LK
    BROWMAN, A
    HANSON, KM
    LARSON, D
    SILVERMAN, A
    [J]. PHYSICAL REVIEW D, 1978, 17 (07): : 1693 - 1705
  • [35] BEBEK CJ, 1976, PHYS REV LETT, V37, P1326, DOI 10.1103/PhysRevLett.37.1326
  • [36] DETERMINATION OF PION FORM-FACTOR UP TO Q2 = 4 GEV2 FROM SINGLE-CHARGED-PION ELECTROPRODUCTION
    BEBEK, CJ
    BROWN, CN
    HERZLINGER, M
    HOLMES, SD
    LICHTENSTEIN, CA
    PIPKIN, FM
    RAITHER, S
    SISTERSON, LK
    [J]. PHYSICAL REVIEW D, 1976, 13 (01): : 25 - 42
  • [37] Exclusive π0 electroproduction at W > 2 GeV with CLAS
    Bedlinskiy, I.
    Kubarovsky, V.
    Niccolai, S.
    Stoler, P.
    Adhikari, K. P.
    Anderson, M. D.
    Pereira, S. Anefalos
    Avakian, H.
    Ball, J.
    Baltzell, N. A.
    Battaglieri, M.
    Batourine, V.
    Biselli, A. S.
    Boiarinov, S.
    Bono, J.
    Briscoe, W. J.
    Brooks, W. K.
    Burkert, V. D.
    Carman, D. S.
    Celentano, A.
    Chandavar, S.
    Colaneri, L.
    Cole, P. L.
    Contalbrigo, M.
    Cortes, O.
    Crede, V.
    D'Angelo, A.
    Dashyan, N.
    De Vita, R.
    De Sanctis, E.
    Deur, A.
    Djalali, C.
    Doughty, D.
    Dupre, R.
    Egiyan, H.
    El Alaoui, A.
    El Fassi, L.
    Elouadrhiri, L.
    Eugenio, P.
    Fedotov, G.
    Fegan, S.
    Fleming, J. A.
    Forest, T. A.
    Garillon, B.
    Garcon, M.
    Gavalian, G.
    Gevorgyan, N.
    Ghandilyan, Y.
    Gilfoyle, G. P.
    Giovanetti, K. L.
    [J]. PHYSICAL REVIEW C, 2014, 90 (02):
  • [38] Measurement of Exclusive π0 Electroproduction Structure Functions and their Relationship to Transverse Generalized Parton Distributions
    Bedlinskiy, I.
    Kubarovsky, V.
    Niccolai, S.
    Stoler, P.
    Adhikari, K. P.
    Aghasyan, M.
    Amaryan, M. J.
    Anghinolfi, M.
    Avakian, H.
    Baghdasaryan, H.
    Ball, J.
    Baltzell, N. A.
    Battaglieri, M.
    Bennett, R. P.
    Biselli, A. S.
    Bookwalter, C.
    Boiarinov, S.
    Briscoe, W. J.
    Brooks, W. K.
    Burkert, V. D.
    Carman, D. S.
    Celentano, A.
    Chandavar, S.
    Charles, G.
    Contalbrigo, M.
    Crede, V.
    D'Angelo, A.
    Daniel, A.
    Dashyan, N.
    De Vita, R.
    De Sanctis, E.
    Deur, A.
    Djalali, C.
    Doughty, D.
    Dupre, R.
    Egiyan, H.
    El Alaoui, A.
    El Fassi, L.
    Elouadrhiri, L.
    Eugenio, P.
    Fedotov, G.
    Fegan, S.
    Fleming, J. A.
    Forest, T. A.
    Fradi, A.
    Garcon, M.
    Gevorgyan, N.
    Giovanetti, K. L.
    Girod, F. X.
    Gohn, W.
    [J]. PHYSICAL REVIEW LETTERS, 2012, 109 (11)
  • [39] Bedlinskiy I, 2013, PHYS REV C, V90
  • [40] BEHREND HJ, 1991, Z PHYS C PART FIELDS, V49, P401, DOI 10.1007/BF01549692