English

Gauge-Engineered Tunable Mode Selection in Non-Hermitian Directed-Graph Networks

Quantum Physics 2026-05-18 v1 Optics

Abstract

Non-Hermitian physics enables novel control over open quantum and wave systems, but selectively isolating individual modes without delicate balancing of gain and loss remains challenging. Here we introduce a gauge-engineering method in directed-graph networks that support geometry-protected pure decay modes-eigenstates exhibiting smooth exponential amplitude decay along directed paths. In fully connected configurations, a single dominant mode naturally emerges with a large, tunable energy gap from the rest. By adding synthetic gauge fields via phase-compensated non-reciprocal hopping, we can promote any desired pure decay mode to the dominant position, while preserving its amplitude profile. The approach extends to simultaneous selection of paired modes in half-connected graphs and customizable multi-mode distributions in higher dimensions via orthogonal folding. Our method enables robust, loss/gain-free control over mode profiles, advancing applications in single-mode lasers, sensors, and quantum processing.

Keywords

Cite

@article{arxiv.2605.15863,
  title  = {Gauge-Engineered Tunable Mode Selection in Non-Hermitian Directed-Graph Networks},
  author = {Wenwen Liu and Zhang Shuang},
  journal= {arXiv preprint arXiv:2605.15863},
  year   = {2026}
}
R2 v1 2026-07-22T07:14:16.679Z