Spatial photonic crystals (SPCs) are unique structures for light–matter interactions because they achieve a large and spatially periodic dielectric contrast on wavelength scales1,2,3,4. Their temporal analogues, photonic time crystals (PTCs), promise similar advances by periodically modulating optical properties in time5,6,7,8,9,10,11, but require strong, ultrafast modulation, which is challenging to obtain experimentally5,12,13,14,15. 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.
Plasmonic metamaterial time crystal
Why This Matters
This breakthrough in creating all-optical photonic time crystals using plasmonic metamaterials at terahertz frequencies marks a significant advancement in time-domain photonics. It opens new possibilities for dynamic light control, loss reduction, and potentially plasmonic lasing, impacting the development of ultrafast optical devices. The research demonstrates how manipulating light-matter interactions on ultrafast timescales can lead to innovative applications in the tech industry and consumer electronics.
Key Takeaways
- Achieved all-optical realization of photonic time crystals at terahertz frequencies.
- Demonstrated reduction of plasmonic losses by over 50%, enabling more efficient devices.
- Predicted the potential for plasmonic lasing, paving the way for new ultrafast light sources.
Explore topics:
plasmonic metamaterial
photonic time crystal
surface plasmon
terahertz frequencies
floquet-driven
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