Non-abelian symmetries in tensor networks: A quantum symmetry space approach

被引:186
|
作者
Weichselbaum, Andreas [1 ,2 ]
机构
[1] Univ Munich, Dept Phys, Arnold Sommerfeld Ctr Theoret Phys, D-80333 Munich, Germany
[2] Univ Munich, Ctr NanoSci, D-80333 Munich, Germany
关键词
Non-abelian symmetries; Clebsch-Gordan coefficients; Lie algebra; Numerical renormalization group; Density matrix renormalization group; Tensor networks; NUMERICAL RENORMALIZATION-GROUP; ANDERSON; SYSTEMS; STATES;
D O I
10.1016/j.aop.2012.07.009
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
A general framework for non-abelian symmetries is presented for matrix-product and tensor-network states in the presence of well-defined orthonormal local as well as effective basis sets. The two crucial ingredients, the Clebsch-Gordan algebra for multiplet spaces as well as the Wigner-Eckart theorem for operators, are accounted for in a natural, well-organized, and computationally straightforward way. The unifying tensorrepresentation for quantum symmetry spaces, dubbed QSpace, is particularly suitable to deal with standard renormalization group algorithms such as the numerical renormalization group (NRG), the density matrix renormalization group (DMRG), or also more general tensor networks such as the multi-scale entanglement renormalization ansatz (MERA). In this paper, the focus is on the application of the non-abelian framework within the NRG. A detailed analysis is presented for a fully screened spin-3/2 three-channel Anderson impurity model in the presence of conservation of total spin, particle-hole symmetry, and SU(3) channel symmetry. The same system is analyzed using several alternative symmetry scenarios based on combinations Of U(1)(charge), SU(2)(spin), SU(2)(charge), SU(3)(channel), as well as the enveloping symplectic Sp(6) symmetry. These are compared in detail, including their respective dramatic gain in numerical efficiency. In the Appendix, finally, an extensive introduction to non-abelian symmetries is given for practical applications, together with simple self-contained numerical procedures to obtain Clebsch-Gordan coefficients and irreducible operators sets. The resulting QSpace tensors can deal with any set of abelian symmetries together with arbitrary non-abelian symmetries with compact, i.e. finite-dimensional, semi-simple Lie algebras. (C) 2012 Elsevier Inc. All rights reserved.
引用
收藏
页码:2972 / 3047
页数:76
相关论文
共 50 条
  • [31] Non-Abelian tensor gauge fields
    Savvidy, George
    PROCEEDINGS OF THE STEKLOV INSTITUTE OF MATHEMATICS, 2011, 272 (01) : 201 - 215
  • [32] FLAVOR UNIFICATION AND DISCRETE NON-ABELIAN SYMMETRIES
    KAPLAN, DB
    SCHMALTZ, M
    PHYSICAL REVIEW D, 1994, 49 (07): : 3741 - 3750
  • [33] Neutrino masses and non-abelian horizontal symmetries
    Antonelli, V
    Caravaglios, F
    Ferrari, R
    Picariello, M
    PHYSICS LETTERS B, 2002, 549 (3-4) : 325 - 336
  • [34] Space-time supercrystals from non-Abelian electric translation symmetries
    Wang, Jian
    He, James Jun
    Niu, Qian
    PHYSICAL REVIEW RESEARCH, 2025, 7 (01):
  • [35] Non-Abelian Discrete Symmetries in Particle Physics
    Ishimori, Hajime
    Kobayashi, Tatsuo
    Ohki, Hiroshi
    Shimizu, Yusuke
    Okada, Hiroshi
    Tanimoto, Morimitsu
    PROGRESS OF THEORETICAL PHYSICS SUPPLEMENT, 2010, (183): : 1 - 163
  • [36] Non-Abelian bosonization and higher spin symmetries
    Zaikov, RP
    INTERNATIONAL JOURNAL OF MODERN PHYSICS A, 1996, 11 (22): : 4065 - 4088
  • [37] SYMMETRIES AND PSEUDOPARTICLE TRANSFORMATIONS IN 1D NON-ABELIAN QUANTUM LIQUIDS
    CARMELO, JMP
    PERES, NMR
    JOURNAL OF LOW TEMPERATURE PHYSICS, 1995, 99 (3-4) : 571 - 576
  • [38] SPACE-TIME SYMMETRY IN NON-ABELIAN GAUGE-THEORY
    SCHWAB, P
    PHYSICS LETTERS B, 1982, 109 (1-2) : 47 - 50
  • [39] Non-abelian discrete gauge symmetries and inflation
    Cohn, JD
    Stewart, ED
    PHYSICS LETTERS B, 2000, 475 (3-4) : 231 - 235
  • [40] SPONTANEOUS BREAKDOWN OF A NON-ABELIAN SYMMETRY
    MATSUMOTO, H
    UMEZAWA, H
    VITIELLO, G
    WYLY, JK
    PHYSICAL REVIEW D, 1974, 9 (10) : 2806 - 2813