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Symmetry from Entanglement Suppression

High Energy Physics - Theory 2021-10-27 v2 High Energy Physics - Lattice High Energy Physics - Phenomenology Nuclear Theory Quantum Physics

Abstract

Symmetry is among the most fundamental and powerful concepts in nature, whose existence is usually taken as given, without explanation. We explore whether symmetry can be derived from more fundamental principles from the perspective of quantum information. Starting with a two-qubit system, we show there are only two minimally entangling logic gates: the Identity and the SWAP, where SWAP interchanges the two states of the qubits. We further demonstrate that, when viewed as an entanglement operator in the spin-space, the SS-matrix in the two-body scattering of fermions in the ss-wave channel is uniquely determined by unitarity and rotational invariance to be a linear combination of the Identity and the SWAP. Realizing a minimally entangling SS-matrix would give rise to global symmetries, as exemplified in Wigner's spin-flavor symmetry and Schr\"odinger's conformal invariance in low energy Quantum Chromodynamics. For NqN_q species of qubit, the Identity gate is associated with an [SU(2)]Nq[SU(2)]^{N_q} symmetry, which is enlarged to SU(2Nq)SU(2N_q) when there is a species-universal coupling constant.

Keywords

Cite

@article{arxiv.2104.10835,
  title  = {Symmetry from Entanglement Suppression},
  author = {Ian Low and Thomas Mehen},
  journal= {arXiv preprint arXiv:2104.10835},
  year   = {2021}
}

Comments

4 pages + Supplementary Material; v2: minor revision to match the published version

R2 v1 2026-06-24T01:25:05.512Z