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An effective supersymmetric QCD light-front Hamiltonian for hadrons composed of light quarks, which includes a spin-spin interaction between the hadronic constituents, is constructed by embedding superconformal quantum mechanics into AdS space.
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Hadronic supersymmetry was introduced by Miyazawa. See, H. Miyazawa, Baryon number changing currents, Prog. Theor. Phys. 36
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For a review of light-front physics see: S. J. Brodsky, H. C. Pauli and S. S. Pinsky, Quantum chromodynamics and other field theories on the light cone, Phys. Rept. 301
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V. Gribov, QCD at large and short distances (annotated version), Eur. Phys. J. C 10
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V. N. Gribov, The theory of quark confinement, Eur. Phys. J. C 10
2009
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E. Klempt and J. M. Richard, Baryon spectroscopy, Rev. Mod. Phys. 82
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1999
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J. M. Maldacena, “The large-N limit of superconformal field theories and supergravity,” Int. J. Theor. Phys. 38
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Y. L. Dokshitzer and D. E. Kharzeev, The Gribov conception of quantum chromodynamics, Ann. Rev. Nucl. Part. Sci. 54
2004
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Historically light-front holographic methods were introduced by matching the electromagnetic form factor in AdS space with the corresponding light-front expression in physical space-time. See: S. J. Brodsky and G. F. de Teramond, Hadronic spectra and light-front wave functions in holographic QCD, Phys. Rev. Lett. 96
2006
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2007
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2008
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2009
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2014
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2014
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For a recent review see, M. Ammon and J. Erdmenger, Gauge/gravity duality: Foundations and applications, Cambridge University Press (Cambridge (2015))
2015
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2015
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2015
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2015
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2015
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