Coherent Nonlinear Optical Propagation Processes in Hyperbolic Metamaterials

By Alexander K. Popov

University of Wisconsin-Stevens Point

Published on

Abstract

Coherence and interference play an important role in classic and quantum physics. Processes to be employed can be significantly enhanced and the unwanted ones suppressed through the deliberately tailored constructive and destructed interference at quantum transitions and at nonlinear optical (NLO) coupling of waves in bulk materials. Phase matching of the coupled waves at different frequencies is the requirement of a paramount importance for frequency conversion and energy harvesting of the electromagnetic waves by the means of NLO. Unusual beneficial NLO processes were predicted at the coherent coupling of ordinary and extraordinary backward electromagnetic waves (BWEMWs). Energy flux and phase velocity are counter-directed in BEMWs. Herewith, we show that deliberately engineered spatially dispersive metamaterial slab can enable the co-existence and phase matching of contra-propagating ordinary fundamental and extraordinary backward second harmonic surface electromagnetic modes. We show that frequencies, phase, and group velocities, as well as nanowaveguide losses inherent to the electromagnetic modes supported by such metamaterial, can be tailored to maximize frequency conversion and to reverse propagation direction of the generated wave. Such a possibility in THz is proved with a numerical model of the hyperbolic frequency-doubling metareflector made of carbon nanotubes standing on the metal surface. The possibility to extend this approach to other coherent NLO processes and materials will be discussed too.

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Researchers should cite this work as follows:

  • Alexander K. Popov (2017), "Coherent Nonlinear Optical Propagation Processes in Hyperbolic Metamaterials," https://nanohub.org/resources/26683.

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121 Burton Morgan, Purdue University, West Lafayette, IN

Tags

Coherent Nonlinear Optical Propagation Processes in Hyperbolic Metamaterials
  • Coherent Nonlinear Optical Propagation Processes in Hyperbolic Metamaterials 1. Coherent Nonlinear Optical Pro… 0
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  • Coherent Control 2. Coherent Control 58.9255922589256
    00:00/00:00
  • Interference of Quantum Pathways Coherent Quantum Control 3. Interference of Quantum Pathwa… 87.387387387387392
    00:00/00:00
  • Laser-induced Fano Resonance - Laser Induced Continuum Structures 4. Laser-induced Fano Resonance -… 163.93059726393059
    00:00/00:00
  • Propagation of Light: Phase Velocity, Refractive Index and Poynting Vector 5. Propagation of Light: Phase Ve… 241.54154154154156
    00:00/00:00
  • Nonlinear Optics (Nonlinear Photonics) 6. Nonlinear Optics (Nonlinear Ph… 375.90924257590927
    00:00/00:00
  • Medium Polarization – Linear and Nonlinear 7. Medium Polarization – Linear… 483.45011678345014
    00:00/00:00
  • Second Harmonic Generation Phase Matching 8. Second Harmonic Generation Pha… 625.925925925926
    00:00/00:00
  • Forward and Backward Waves 9. Forward and Backward Waves 661.49482816149487
    00:00/00:00
  • Backward EM waves: striking changes in linear and nonlinear optics 10. Backward EM waves: striking ch… 705.13847180513847
    00:00/00:00
  • SHG: CW REGIME 11. SHG: CW REGIME 808.30830830830837
    00:00/00:00
  • Contra-propagating SH Inside the Travelling Pulse of Fundamental Radiation 12. Contra-propagating SH Inside t… 933.63363363363362
    00:00/00:00
  • Extraordinary Three-wave Mixing 13. Extraordinary Three-wave Mixin… 972.57257257257265
    00:00/00:00
  • Remotely interrogated nonlinear-optical sensors 14. Remotely interrogated nonlinea… 1230.6306306306308
    00:00/00:00
  • NIMs 15. NIMs 1276.4764764764766
    00:00/00:00
  • Different Approach: Negative SPATIAL Dispersion 16. Different Approach: Negative S… 1305.6723390056725
    00:00/00:00
  • Negative Spatial Dispersion and Backward Waves 17. Negative Spatial Dispersion an… 1364.3643643643645
    00:00/00:00
  • Spatial Dispersion and Group Velocity 18. Spatial Dispersion and Group V… 1481.7817817817818
    00:00/00:00
  • Nanoforest for Extraordinary Backward-wave Nonlinear Optical Processes: SHG and TWM 19. Nanoforest for Extraordinary B… 1585.785785785786
    00:00/00:00
  • Electromagnetic Properties of Carbon Nanotubes and Dispersion Properties of the Carbon Nanoforest 20. Electromagnetic Properties of … 1709.0090090090091
    00:00/00:00
  • Guided TM Waves 21. Guided TM Waves 1895.4954954954956
    00:00/00:00
  • Carbon Nanoforest as a Double Domain Ordinary/BW Metamaterial: Phase Matching for SHG 22. Carbon Nanoforest as a Double … 2004.4044044044044
    00:00/00:00
  • Phase matching of two backward and one ordinary waves: ω1=ω3-ω2 23. Phase matching of two backward… 2148.1147814481151
    00:00/00:00
  • EM Properties of Guided Modes, Numerical Model: h = 3.5 μm, TWM 24. EM Properties of Guided Modes,… 2244.8782115448785
    00:00/00:00
  • BWSHG: Master Equations 25. BWSHG: Master Equations 2283.4834834834837
    00:00/00:00
  • BWSHG vs SHG: Pulse Energy Conversion 26. BWSHG vs SHG: Pulse Energy Con… 2323.9572906239573
    00:00/00:00
  • BWTWM: Master Equations and Multi-parameter Dependences 27. BWTWM: Master Equations and Mu… 2481.1811811811813
    00:00/00:00
  • BWOPA and NLO Reflectivity vs OPA 28. BWOPA and NLO Reflectivity vs … 2533.833833833834
    00:00/00:00
  • Extraordinary Transient Processes in TWM: Pulse Delay and Pulse Shape Changes 29. Extraordinary Transient Proces… 2589.2892892892892
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  • Conclusions 30. Conclusions 2723.7570904237573
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  • Proof-of-principle Model was developed, investigations and numerical simulations were carried out of the MM which supports the co-existance and the tailorable dispersion of guided backward and forward EM Modes with adjustable phase and group velocities. The investigations proved the possibilities of realization of extraordinary coherent NLO propagation processes and engineering of ultraminiature photonic devices with unparalleled operation properties. 31. Proof-of-principle Model was d… 2814.3476810143479
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  • Acknowledgements 32. Acknowledgements 2876.2429095762432
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  • Published in 33. Published in 2905.0717384050718
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  • THANK YOU FOR ATTENTION 34. THANK YOU FOR ATTENTION 2921.287954621288
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