60 research outputs found
All-optical conditional logic with a nonlinear photonic crystal nanocavity
We demonstrate tunable frequency-converted light mediated by a chi-(2)
nonlinear photonic crystal nanocavity. The wavelength-scale InP-based cavity
supports two closely-spaced localized modes near 1550 nm which are resonantly
excited by a 130 fs laser pulse. The cavity is simultaneously irradiated with a
non-resonant probe beam, giving rise to rich second-order scattering spectra
reflecting nonlinear mixing of the different resonant and non-resonant
components. In particular, we highlight the radiation at the sum frequencies of
the probe beam and the respective cavity modes. This would be a useful,
minimally-invasive monitor of the joint occupancy state of multiple cavities in
an integrated optical circuit.Comment: 4 pages, 4 figure
Ultra-high-Q TE/TM dual-polarized photonic crystal nanocavities
We demonstrate photonic crystal nanobeam cavities that support both TE- and
TM-polarized modes, each with a Quality factor greater than one million and a
mode volume on the order of the cubic wavelength. We show that these
orthogonally polarized modes have a tunable frequency separation and a high
nonlinear spatial overlap. We expect these cavities to have a variety of
applications in resonance-enhanced nonlinear optics.Comment: 4 pages, 4 figure
Second-Order Nonlinear Mixing of Two Modes in a Planar Photonic Crystal Microcavity
Polarization-resolved second-harmonic spectra are obtained from the resonant
modes of a two-dimensional planar photonic crystal microcavity patterned in a
free-standing InP slab. The photonic crystal microcavity is comprised of a
single missing-hole defect in a hexagonal photonic crystal host formed with
elliptically-shaped holes. The cavity supports two orthogonally-polarized
resonant modes split by 60 wavenumbers. Sum-frequency data are reported from
the nonlinear interaction of the two coherently excited modes, and the
polarization dependence is explained in terms of the nonlinear susceptibility
tensor of the host InP.Comment: 7 pages, 8 Postscript figures, to be presented at Photonics West Jan.
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