4.7 Article

Loop, string, and hadron dynamics in SU(2) Hamiltonian lattice gauge theories

期刊

PHYSICAL REVIEW D
卷 101, 期 11, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.101.114502

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资金

  1. U.S. Department of Energy (DOE), Office of Science, Office of Advanced Scientific Computing Research (ASCR) Quantum Computing Application Teams program [ERKJ347]
  2. MCFP
  3. DOE [DE-FG02-00ER41132]
  4. National Science Foundation Graduate Research Fellowship [1256082]
  5. Thomas L. and Margo G. Wyckoff Endowed Faculty Fellowship
  6. Direct For Education and Human Resources
  7. Division Of Graduate Education [1256082] Funding Source: National Science Foundation

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The question of how to efficiently formulate Hamiltonian gauge theories is experiencing renewed interest due to advances in building quantum simulation platforms. We introduce a reformulation of an SU(2) Hamiltonian lattice gauge theory-a loop-string-hadron (LSH) formulation-that describes dynamics directly in terms of its loop, string, and hadron degrees of freedom, while alleviating several disadvantages of quantum simulating the Kogut-Susskind formulation. This LSH formulation transcends the local loop formulation of d + 1-dimensional lattice gauge theories by incorporating staggered quarks, furnishing the algebra of gauge-singlet operators, and being used to reconstruct dynamics between states that have Gauss's law built in to them. LSH operators are then factored into products of normalized ladder operators and diagonal matrices, priming them for classical or quantum information processing. Self-contained expressions of the Hamiltonian are given up to d = 3. The LSH formalism makes little use of structures specific to SU(2), and its conceptual clarity makes it an attractive approach to apply to other non-Abelian groups like SU(3).

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