AI Article Synopsis

  • The study investigates optical time-refraction caused by extremely short time-interfaces within a sample that experiences rapid changes in refractive index due to an intense modulator pulse.
  • Observations show that an abrupt increase in refractive index leads to red-shifting of the wave spectrum, followed by blue-shifting as the index returns to normal, and these effects were detected in a single-cycle time frame.
  • The researchers utilized transparent conducting oxides and found that shortening the modulator pulse width to about 5-6 femtoseconds resulted in quicker red-shift responses, raising questions about the underlying physics and paving the way for potential advancements in photonic time-crystals.

Article Abstract

We present an experimental study of optical time-refraction caused by time-interfaces as short as a single optical cycle. Specifically, we study the propagation of a probe pulse through a sample undergoing a large refractive index change induced by an intense modulator pulse. In these systems, increasing the refractive index abruptly leads to time-refraction where the spectrum of all the waves propagating in the medium is red-shifted, and subsequently blue-shifted when the refractive index relaxes back to its original value. We observe these phenomena in the single-cycle regime. Moreover, by shortening the temporal width of the modulator to ∼5-6 fs, we observe that the rise time of the red-shift associated with time-refraction is proportionally shorter. The experiments are carried out in transparent conducting oxides acting as epsilon-near-zero materials. These observations raise multiple questions on the fundamental physics occurring within such ultrashort time frames, and open the way for experimenting with photonic time-crystals, generated by periodic ultrafast changes to the refractive index, in the near future.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11501756PMC
http://dx.doi.org/10.1515/nanoph-2023-0126DOI Listing

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