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Saturable Absorption in 2D Ti C MXene Thin Films for Passive Photonic Diodes. | LitMetric

AI Article Synopsis

  • MXenes are a new category of 2D materials that show unique interactions with light, specifically focusing on Ti CNT MXenes, which exhibit nonlinear saturable absorption (SA) useful for femtosecond lasers.
  • Research investigates how the thickness of these MXenes affects their SA behavior and utilizes an interfacial film formation technique to fabricate various thicknesses of Ti CT thin films.
  • Findings reveal that Ti CT's SA is linked to plasmon effects and shows improved damage resistance and higher nonlinear transmittance compared to other 2D materials, leading to the creation of a Ti CT MXene-based photonic diode for nonreciprocal transmission of laser pulses.

Article Abstract

MXenes comprise a new class of 2D transition metal carbides, nitrides, and carbonitrides that exhibit unique light-matter interactions. Recently, 2D Ti CNT (T represents functional groups such as OH and F) was found to exhibit nonlinear saturable absorption (SA) or increased transmittance at higher light fluences, which is useful for mode locking in fiber-based femtosecond lasers. However, the fundamental origin and thickness dependence of SA behavior in MXenes remain to be understood. 2D Ti C T thin films of different thicknesses are fabricated using an interfacial film formation technique to systematically study their nonlinear optical properties. Using the open aperture Z-scan method, it is found that the SA behavior in Ti C T MXene arises from plasmon-induced increase in the ground state absorption at photon energies above the threshold for free carrier oscillations. The saturation fluence and modulation depth of Ti C T MXene is observed to be dependent on the film thickness. Unlike other 2D materials, Ti C T is found to show higher threshold for light-induced damage with up to 50% increase in nonlinear transmittance. Lastly, building on the SA behavior of Ti C T MXenes, a Ti C T MXene-based photonic diode that breaks time-reversal symmetry to achieve nonreciprocal transmission of nanosecond laser pulses is demonstrated.

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Source
http://dx.doi.org/10.1002/adma.201705714DOI Listing

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