Gary Lander
West Virginia University
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Publication
Featured researches published by Gary Lander.
Physical Review Letters | 2017
Disheng Chen; Gary Lander; Glenn S. Solomon; Edward Flagg
Interference between coherent scattering from the two fine structure split exciton states in a neutral InGaAs quantum dot causes an unconventional excitation line shape. Analysis allows the extraction of steady-state coherence between the exciton states.
Journal of Visualized Experiments | 2017
Disheng Chen; Gary Lander; Edward Flagg
The ability to perform simultaneous resonant excitation and fluorescence detection is important for quantum optical measurements of quantum dots (QDs). Resonant excitation without fluorescence detection - for example, a differential transmission measurement - can determine some properties of the emitting system, but does not allow applications or measurements based on the emitted photons. For example, the measurement of photon correlations, observation of the Mollow triplet, and realization of single photon sources all require collection of the fluorescence. Incoherent excitation with fluorescence detection - for example, above band-gap excitation - can be used to create single photon sources, but the disturbance of the environment due to the excitation reduces the indistinguishability of the photons. Single photon sources based on QDs will have to be resonantly excited to have high photon indistinguishability, and simultaneous collection of the photons will be necessary to make use of them. We demonstrate a method to resonantly excite a single QD embedded in a planar cavity by coupling the excitation beam into this cavity from the cleaved face of the sample while collecting the fluorescence along the samples surface normal direction. By carefully matching the excitation beam to the waveguide mode of the cavity, the excitation light can couple into the cavity and interact with the QD. The scattered photons can couple to the Fabry-Perot mode of the cavity and escape in the surface normal direction. This method allows complete freedom in the detection polarization, but the excitation polarization is restricted by the propagation direction of the excitation beam. The fluorescence from the wetting layer provides a guide to align the collection path with respect to the excitation beam. The orthogonality of the excitation and detection modes enables resonant excitation of a single QD with negligible laser scattering background.
Physica Status Solidi B-basic Solid State Physics | 2014
Barry Haycock; Gary Lander; M. Kylee Rice; Kiran Prasai; Binay Prasai; David A. Drabold; James P. Lewis
conference on lasers and electro optics | 2017
Gary Lander; Disheng Chen; Samantha Isaac; Glenn S. Solomon; Edward Flagg
conference on lasers and electro optics | 2017
Disheng Chen; Gary Lander; Glenn S. Solomon; Edward Flagg
conference on lasers and electro optics | 2016
Disheng Chen; Gary Lander; Kyle S. Krowpman; Glenn S. Solomon; Edward Flagg
Bulletin of the American Physical Society | 2016
Disheng Chen; Gary Lander; Glenn S. Solomon; Edward Flagg
Bulletin of the American Physical Society | 2016
Disheng Chen; Gary Lander; Kyle S. Krowpman; Glenn S. Solomon; Edward Flagg
Bulletin of the American Physical Society | 2015
Disheng Chen; Gary Lander; Cabot Zabriskie; Edward Flagg
Bulletin of the American Physical Society | 2015
Edward Flagg; Gary Lander; Cabot Zabriskie