Plasmonic metamaterial time crystal.

Guo, Tingwen; Sueiro, Jules; Andolina, Gian Marcello; Levchuk, Artem; Ponzoni, Stefano; Grasset, Romain; Monthe, Donald; Aupiais, Ian et al. · Nature · 2026

basic_science · Level V

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Abstract

Spatial photonic crystals (SPCs) are unique structures for light-matter interactions because they achieve a large and spatially periodic dielectric contrast on wavelength scales1-4. Their temporal analogues, photonic time crystals (PTCs), promise similar advances by periodically modulating optical properties in time5-11, but require strong, ultrafast modulation, which is challenging to obtain experimentally5,12-15. Driven metamaterials have been considered as a route to realize PTCs, yet all-optical implementations have remained unknown because of the challenge of achieving modulation on such short timescales. Here we demonstrate the all-optical realization of a photonic time crystal, achieved with a surface plasmon cavity metamaterial operating at terahertz frequencies. We demonstrate strong (near-unity) and coherent (sub-optical cycle) periodic driving of the plasmonic metamaterial enabled by field-induced dynamical modulation of the kinetic energy of the carriers and effective mass reaching up to 80% of their rest mass. Our spectroscopic measurements show a transition into the PTC regime mediated by an exceptional point, at which two Floquet-driven optical eigenmodes coalesce. In the PTC regime, emergent gain is shown to reduce plasmonic losses by more than 50% (refs. 16,17), and we predict plasmonic lasing to be within experimental reach. These results establish a robust platform for time-domain photonics in plasmonic systems.