4.6 Article

Variational determination of the two-particle reduced density matrix within the doubly occupied configuration interaction space: exploiting translational and reflection invariance

Journal

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1742-5468/abd940

Keywords

spin chains; ladders and planes; correlation functions

Funding

  1. Universidad de Buenos Aires [20020150100157BA, 20020190100214BA]
  2. Consejo Nacional de Investigaciones Cientificas y Tecnicas [PIP 11220130100377CO, PIP 11220130100311CO, 11220150100442CO]
  3. Agencia Nacional de Promocion Cientifica y Tecnologica, Argentina [PICT-201-0381]
  4. Spanish Ministerio de Ciencia e Innovacion
  5. European regional development fund (FEDER) [PGC2018-094180-B-I00]
  6. Consejo Nacional de Investigaciones Cientificas y Tecnicas

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This work improves the variational determination of the two-particle reduced density matrix (2-RDM) of N-particle systems by incorporating translational and reflection symmetry reductions, allowing for treatment of larger systems. The method calculates 2-RDM matrix elements by imposing specific constraints and evaluates the physical content by comparing with other simulation methods, demonstrating its effectiveness.
This work incorporates translational and reflection symmetry reductions to the variational determination of the two-particle reduced density matrix (2-RDM) corresponding to the ground state of N-particle systems, within the doubly occupied configuration interaction (DOCI) space. By exploiting these symmetries within this lower-bound variational methodology it is possible to treat larger systems than those previously studied. The 2-RDM matrix elements are calculated by imposing up to four-particle N-representability constraint conditions using standard semidefinite programing algorithms. The method is applied to the one- and two-dimensional XXZ spin 1/2 model of quantum magnetism. Several observables including the energy and the spin-spin correlation functions are obtained to assess the physical content of the variationally determined 2-RDM. Comparison with quantum-Monte Carlo and matrix product state simulations shows that in most cases only requiring up to three-particle positivity conditions is enough to correctly describe the ground-state properties of these one- and two-dimensional models.

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