English

Spectral Causality and the Scattering of Waves

Optics 2021-08-05 v3

Abstract

Causality - the principle stating that the output of a system cannot temporally precede the input - is a universal property of nature. Here, we show that analogous input-output relations can also be realized in the spectral domain by leveraging the peculiar properties of time-modulated non-Hermitian photonic systems. Specifically, we uncover the existence of a broad class of complex time-modulated metamaterials which obey the time-domain equivalent of the well-established frequency-domain Kramers-Kronig relations (a direct consequence of causality). We find that, in the scattering response of such time-modulated systems, the output frequencies are inherently prohibited from spectrally preceding the input frequencies, hence we refer to these systems as 'spectrally causal'. We explore the consequences of this newly introduced concept for several relevant applications, including broadband perfect absorption, temporal cloaking of an 'event', and truly unidirectional propagation along a synthetic dimension. By emulating the concept of causality in the spectral domain and providing new tools to extend the field of temporally modulated metamaterials ("chrono-metamaterials") into the complex realm, our findings may open unexplored opportunities and enable relevant technological advances in various areas of photonics and, more broadly, of wave physics and engineering.

Keywords

Cite

@article{arxiv.2012.15796,
  title  = {Spectral Causality and the Scattering of Waves},
  author = {Zeki Hayran and Aobo Chen and Francesco Monticone},
  journal= {arXiv preprint arXiv:2012.15796},
  year   = {2021}
}

Comments

21 pages, 4 figures and 1 supplementary figure

R2 v1 2026-06-23T21:39:33.745Z