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Dive into the research topics where J. D. Olitzky is active.

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Featured researches published by J. D. Olitzky.


Optics Express | 2009

One dimensional resonant Fibonacci quasicrystals: noncanonical linear and canonical nonlinear effects

M. Werchner; Martin K.-H. Schäfer; M. Kira; S. W. Koch; J. Sweet; J. D. Olitzky; Joshua Hendrickson; B. C. Richards; G. Khitrova; H. M. Gibbs; A. N. Poddubny; E. L. Ivchenko; M. Voronov; Martin Wegener

A detailed experimental and theoretical study of the linear and nonlinear optical properties of different Fibonacci-spaced multiple-quantum-well structures is presented. Systematic numerical studies are performed for different average spacing and geometrical arrangement of the quantum wells. Measurements of the linear and nonlinear (carrier density dependent) reflectivity are shown to be in good agreement with the computational results. As the pump pulse energy increases, the excitation-induced dephasing broadens the exciton resonances resulting in a disappearance of sharp features and reduction in peak reflectivity.


Nanotechnology | 2010

Modelling and fabrication of GaAs photonic-crystal cavities for cavity quantum electrodynamics

Uday K. Khankhoje; Se-Heon Kim; B. C. Richards; Joshua Hendrickson; J. Sweet; J. D. Olitzky; G. Khitrova; H. M. Gibbs; Axel Scherer

In this paper, we present recent progress in the growth, modelling, fabrication and characterization of gallium arsenide (GaAs) two-dimensional (2D) photonic-crystal slab cavities with embedded indium arsenide (InAs) quantum dots (QDs) that are designed for cavity quantum electrodynamics (cQED) experiments. Photonic-crystal modelling and device fabrication are discussed, followed by a detailed discussion of different failure modes that lead to photon loss. It is found that, along with errors introduced during fabrication, other significant factors such as the presence of a bottom substrate and cavity axis orientation with respect to the crystal axis, can influence the cavity quality factor (Q). A useful diagnostic tool in the form of contour finite-difference time domain (FDTD) is employed to analyse device performance.


Journal of The Optical Society of America B-optical Physics | 2012

Effect of atomic layer deposition on the quality factor of silicon nanobeam cavities

Michael Gehl; Ricky Gibson; Joshua Hendrickson; Andrew P. Homyk; Antti Säynätjoki; Tapani Alasaarela; Lasse Karvonen; Ari Tervonen; Seppo Honkanen; Sander Zandbergen; B. C. Richards; J. D. Olitzky; Axel Scherer; G. Khitrova; H. M. Gibbs; Ju-Young Kim; Yong-Hee Lee

In this work we study the effect of thin-film deposition on the quality factor (Q) of silicon nanobeam cavities. We observe an average increase in the Q of 38±31% in one sample and investigate the dependence of this increase on the initial nanobeam hole sizes. We note that this process can be used to modify cavities that have larger than optimal hole sizes following fabrication. Additionally, the technique allows the tuning of the cavity mode wavelength and the incorporation of new materials, without significantly degrading Q.


Optics Express | 2010

Characterization of 1D Photonic Crystal Nanobeam Cavities Using Curved Microfiber

B. C. Richards; Joshua Hendrickson; J. D. Olitzky; Ricky Gibson; Michael Gehl; Khanh Kieu; Uday K. Khankhoje; Andrew P. Homyk; Axel Scherer; Junoh Kim; Yong-Hee Lee; G. Khitrova; H. M. Gibbs

We investigate high-Q, small mode volume photonic crystal nanobeam cavities using a curved, tapered optical microfiber loop. The strength of the coupling between the cavity and the microfiber loop is shown to depend on the contact position on the nanobeam, angle between the nanobeam and the microfiber, and polarization of the light in the fiber. The results are compared to a resonant scattering measurement.


conference on lasers and electro-optics | 2011

Plasmonic metamaterials coupled to single InGaAs-Quantum-well gain

Nina Meinzer; Matthias Ruther; Stefan Linden; Costas M. Soukoulis; G. Khitrova; Joshua Hendrickson; J. D. Olitzky; H. M. Gibbs; Martin Wegener

We present low-temperature femtosecond-pump-probe measurements on arrays of split ring resonators above a single InGaAs-quantum well in which we study the coupling mechanism between the metamaterial and gain medium upon variation of their separation.


Physica Status Solidi B-basic Solid State Physics | 2011

Progress in growth, fabrication, and characterization of semiconductor photonic crystal nanocavities

B. C. Richards; Joshua Hendrickson; J. D. Olitzky; Ricky Gibson; Michael Gehl; Khanh Kieu; P. Polynkin; G. Khitrova; H. M. Gibbs; Uday K. Khankhoje; Andrew P. Homyk; Axel Scherer; Junoh Kim; Yong-Hee Lee


Quantum Optics with Semiconductor Nanostructures | 2012

One-dimensional photonic crystal nanobeam cavities

Joshua Hendrickson; Andrew P. Homyk; Axel Scherer; Tapani Alasaarela; Antti Säynätjoki; Seppo Honkanen; B. C. Richards; Junoh Kim; Yong-Hee Lee; Ricky Gibson; Michael Gehl; J. D. Olitzky; Sander Zandbergen; H. M. Gibbs; G. Khitrova


Physica Status Solidi B-basic Solid State Physics | 2012

Progress in growth, fabrication, and characterization of semiconductor photonic crystal nanocavities [Phys. Status Solidi B 248, No. 4, 892-896 (2011)]

B. C. Richards; Joshua Hendrickson; J. D. Olitzky; Ricky Gibson; Michael Gehl; Khanh Kieu; P. Polynkin; G. Khitrova; H. M. Gibbs; Uday K. Khankhoje; Andrew P. Homyk; Axel Scherer; Junoh Kim; Young-Gi Lee


Optics Express | 2012

Characterization of 1D photonic crystal nanobeam cavities using curved microfiber (vol 18, pg 20558, 2010)

B. C. Richards; Joshua Hendrickson; J. D. Olitzky; Ricky Gibson; Michael Gehl; Khanh Kieu; Uday K. Khankhoje; Andrew P. Homyk; Axel Scherer; Junoh Kim; Young-Gi Lee; G. Khitrova; H. M. Gibbs


Optics Express | 2012

Erratum: Characterization of 1D photonic crystal nanobeam cavities using curved microfiber (Optics Express (2010) 18:20 (20558-20564))

B. C. Richards; Joshua Hendrickson; J. D. Olitzky; Ricky Gibson; Michael Gehl; Khanh Kieu; Uday K. Khankhoje; Andrew P. Homyk; Axel Scherer; Junoh Kim; Young-Gi Lee; G. Khitrova; H. M. Gibbs

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Joshua Hendrickson

Air Force Research Laboratory

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Axel Scherer

California Institute of Technology

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Andrew P. Homyk

California Institute of Technology

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Uday K. Khankhoje

California Institute of Technology

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