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Symmetry restoration in mean-field approaches

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arxiv 1901.06992 v2 pith:2M2WGGSB submitted 2019-01-21 nucl-th cond-mat.othernucl-ex

classification nucl-thcond-mat.othernucl-ex
keywords methodsrestorationsystemsapproximationdensitymean-fieldsymmetriesapproach
verification ladder T0 review T1 audit T2 compute T3 formal
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The mean-field approximation based on effective interactions or density functionals plays a pivotal role in the description of finite quantum many-body systems that are too large to be treated by ab initio methods. Some examples are strongly interacting medium and heavy mass atomic nuclei and mesoscopic condensed matter systems. In this approach, the linear Schrodinger equation for the exact many-body wave function is mapped onto a non-linear density-dependent one-body potential problem. This approximation, not only provides computationally very simple solutions even for systems with many particles, but due to the non-linearity, it also allows for obtaining solutions that break essential symmetries of the system, often connected with phase transitions. In this way, additional correlations are subsumed in the system. However, the mean-field approach suffers from the drawback that the corresponding wave functions do not have sharp quantum numbers and, therefore, many results cannot be compared directly with experimental data. In this article, we discuss general group-theory techniques to restore the broken symmetries, and provide detailed expressions on the restoration of translational, rotational, spin, isospin, parity and gauge symmetries, where the latter corresponds to the restoration of the particle number. In order to avoid the numerical complexity of exact projection techniques, various approximation methods available in the literature are examined. Applications of the projection methods are presented for simple nuclear models, realistic calculations in relatively small configuration spaces, nuclear energy density functional theory, as well as in other mesoscopic systems. Further, unresolved problems in the application of the symmetry restoration methods to the energy density functional theories are highlighted in the present work.

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Cited by 2 Pith papers

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  1. Quantum Symmetry Restoration and Emergent Effective Deformation in Relativistic Heavy-Ion Collisions

    nucl-th 2026-06 unverdicted novelty 7.0 of 10

    Rotational symmetry restoration in even-even nuclei generates an effective collision geometry that acts as a low-pass filter exponentially suppressing deformation modes, recovering the classical rigid-rotor limit only...

  2. Multiple shape coexistence near Sn118: First 03+ lifetime measurement

    nucl-ex 2026-05 unverdicted novelty 7.0 of 10

    First lifetime measurement of the 0_3+ state in 118Sn yields an enhanced E0 transition of 150(30) milliunits, indicating multiple shape coexistence, with supporting calculations showing three shapes in 116-120Sn.

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