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Theory of low-power ultra-broadband terahertz sideband generation in bi-layer graphene. | LitMetric

Theory of low-power ultra-broadband terahertz sideband generation in bi-layer graphene.

Nat Commun

Department of Physics and Centre for Quantum Coherence, Chinese University of Hong Kong, Shatin, Hong Kong, China.

Published: September 2014

AI Article Synopsis

  • In a semiconductor with a strong terahertz (THz) field, electron-hole pairs can emit light in a unique frequency pattern, called high-order sidebands.
  • Current technology requires very strong fields (~10 kV/cm) to observe this effect, but researchers predict that bi-layer graphene can achieve this at much lower field strengths (1 kV/cm).
  • This discovery means that sidebands generated from graphene have a broader spectrum (around 30 THz), allowing for easier and more efficient ultrafast optical communications using electro-optical modulation.

Article Abstract

In a semiconductor illuminated by a strong terahertz (THz) field, optically excited electron-hole pairs can recombine to emit light in a broad frequency comb evenly spaced by twice the THz frequency. Such high-order THz sideband generation is of interest both as an example of extreme nonlinear optics and also as a method for ultrafast electro-optical modulation. So far, this phenomenon has only been observed with large field strengths (~10 kV cm(-1)), an obstacle for technological applications. Here we predict that bi-layer graphene generates high-order sidebands at much weaker THz fields. We find that a THz field of strength 1 kV cm(-1) can produce a high-sideband spectrum of about 30 THz, 100 times broader than in GaAs. The sidebands are generated despite the absence of classical collisions, with the quantum coherence of the electron-hole pairs enabling recombination. These remarkable features lower the barrier to desktop electro-optical modulation at THz frequencies, facilitating ultrafast optical communications.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4200518PMC
http://dx.doi.org/10.1038/ncomms5854DOI Listing

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