English

Nonlocality-induced critical-length hierarchy from non-Hermitian competition

Mesoscale and Nanoscale Physics 2026-08-03 v1 Disordered Systems and Neural Networks Other Condensed Matter Mathematical Physics Quantum Physics

Abstract

Spectral transitions in non-Hermitian lattices often arise from the competition between non-reciprocal skin accumulation and inter-component hybridization. In short-range systems formed by two coupled chains, this competition conventionally leads to the logarithmic critical-length law NclnDN_c\sim\ln D, where DD is the transverse separation between the chains. Here we show that long-range hoppings fundamentally reorganizes this critical behavior, producing a hierarchy of distinct scaling laws. When only the hybridization couplings are power-law decaying with exponent α\alpha, the onset becomes algebraic, NcDα/3N_c\sim D^{\alpha/3}. When the hoppings within each chain are themselves also power-law decaying, in addition to the hybridization couplings, the system enters a scale-covariant regime for α<2\alpha<2, in which the criticality threshold equation depends only on the system aspect ratio Nc/DN_c/D. At α=2\alpha=2 and beyond, this regime is followed by a marginal logarithmically corrected and algebraically corrected regimes, respectively. We identify two new non-local mechanisms that enable this unconventional critical hierarchy: a nonanalytic band-edge dispersion from long-range intra-chain hoppings, and parity-mixing hybridization induced by non-reciprocity. Our results show that nonlocality systematically removes the physical length scales i.e. skin depth underlying conventional critical non-Hermitian skin behavior, offering a platform-independent framework testable in programmable topoelectrical circuits, photonic lattices and digital quantum simulators.

Keywords

Cite

@article{arxiv.2608.02746,
  title  = {Nonlocality-induced critical-length hierarchy from non-Hermitian competition},
  author = {Mengjie Yang and Alexander N. Poddubny and Ching Hua Lee},
  journal= {arXiv preprint arXiv:2608.02746},
  year   = {2026}
}

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