English

Programmable Hybrid Exceptional Points in Passive Scattering Networks

Optics 2026-07-03 v1 Mathematical Physics

Abstract

Exceptional points (EPs) have long promised enhanced sensing of physical signals, but have practically been limited by simultaneous enhancement of noise. Aligning an EP's non-analytic response with target perturbations while suppressing noise has, however, remained challenging. Here we show that fully passive, phase-tuned multi-port scattering networks enable scattering EPs with tailored anisotropic response to perturbations. We leverage projection-induced non-unitarity to realize effective non-Hermitian behavior when measuring only a subset of system ports. By formulating EP design in terms of the discriminant of the projected scattering sub-block and its directional derivatives, we give control-counting rules relating the number of programmable link phases to achievable Riemann surface topologies. We demonstrate our framework in a four-port photonic network by designing both an anisotropic EP and a Dirac-type EP with linear splitting along two parametric directions. We further suppress the global thermal drift response of a network-based sensor to a 3/2 power-law scaling while retaining square-root sensitivity to localized signals. Since the effective non-Hermiticity arises purely from port projection, our approach transfers to integrated photonic and microwave meshes, acoustic circuits, and projected metasurfaces, offering a phase-only route to reconfigurable non-Hermitian response and noise-robust EP sensing.

Cite

@article{arxiv.2607.03040,
  title  = {Programmable Hybrid Exceptional Points in Passive Scattering Networks},
  author = {Kaiyuan Wang and Niall Byrnes and Matthew R. Foreman},
  journal= {arXiv preprint arXiv:2607.03040},
  year   = {2026}
}

Comments

7 pages, 4 figures