English

Spectra of Eigenstates in Fermionic Tensor Quantum Mechanics

High Energy Physics - Theory 2018-08-01 v4 Strongly Correlated Electrons

Abstract

We study the O(N1)×O(N2)×O(N3)O(N_1)\times O(N_2)\times O(N_3) symmetric quantum mechanics of 3-index Majorana fermions. When the ranks NiN_i are all equal, this model has a large NN limit which is dominated by the melonic Feynman diagrams. We derive an integral formula which computes the number of SO(N1)×SO(N2)×SO(N3)SO(N_1)\times SO(N_2)\times SO(N_3) invariant states for any set of NiN_i. For equal ranks the number of singlets is non-vanishing only when NN is even, and it exhibits rapid growth: it jumps from 3636 in the O(4)3O(4)^3 model to 595354780595354780 in the O(6)3O(6)^3 model. We derive bounds on the values of energy, which show that they scale at most as N3N^3 in the large NN limit, in agreement with expectations. We also show that the splitting between the lowest singlet and non-singlet states is of order 1/N1/N. For N3=1N_3=1 the tensor model reduces to O(N1)×O(N2)O(N_1)\times O(N_2) fermionic matrix quantum mechanics, and we find a simple expression for the Hamiltonian in terms of the quadratic Casimir operators of the symmetry group. A similar expression is derived for the complex matrix model with SU(N1)×SU(N2)×U(1)SU(N_1)\times SU(N_2)\times U(1) symmetry. Finally, we study the N3=2N_3=2 case of the tensor model, which gives a more intricate complex matrix model whose symmetry is only O(N1)×O(N2)×U(1)O(N_1)\times O(N_2)\times U(1). All energies are again integers in appropriate units, and we derive a concise formula for the spectrum. The fermionic matrix models we studied possess standard 't Hooft large NN limits where the ground state energies are of order N2N^2, while the energy gaps are of order 11.

Keywords

Cite

@article{arxiv.1802.10263,
  title  = {Spectra of Eigenstates in Fermionic Tensor Quantum Mechanics},
  author = {Igor R. Klebanov and Alexey Milekhin and Fedor Popov and Grigory Tarnopolsky},
  journal= {arXiv preprint arXiv:1802.10263},
  year   = {2018}
}

Comments

42 pages, 1 figure. v2: minor improvements, references added. v3: minor corrections. v4: minor improvements

R2 v1 2026-06-23T00:36:13.306Z