We formulate and demonstrate experimentally the highresolution spectral method based on Bloch-wave symmetry properties for extracting mode dispersion in periodic waveguides from measurements of near-field profiles. We characterize both the propagating and evanescent modes, and also determine the amplitudes of forward and backward waves in different waveguide configurations, with the estimated accuracy of several percent or less. Whereas the commonly employed spatial Fourier-transform (SFT) analysis provides the wavenumber resolution which is limited by the inverse length of the waveguide, we achieve precise dispersion extraction even for compact photonic structures
A method for analysis of dispersion characteristics of guided optical modes propagating in the optic...
The eigenfield distribution and the band structure of a photonic crystal waveguide have been measure...
We investigate the dispersion properties of ridge Bragg-reflection waveguides to deduce their phasem...
We formulate and demonstrate experimentally the highresolution spectral method based on Bloch-wave ...
We demonstrate that the spatial profiles of both propagating and evanescent Bloch modes in a periodi...
We demonstrate that the spatial profiles of both propagating and evanescent Bloch modes in a periodi...
The local dispersion relation of a photonic crystal waveguide is directly determined by phase-sensit...
The local dispersion relation of a photonic crystal waveguide is directly determined by phase-sensit...
We develop a systematic approach for simultaneous extraction of the dispersion relations and profile...
We retrieve the dispersion properties of photonic crystal waveguides near the band edge with high ex...
We retrieve the dispersion properties of photonic crystal waveguides near the band edge with high ex...
We perform phase-sensitive near-field scanning optical microscopy on photonic-crystal waveguides. Th...
© 2004 IEEE. Personal use of this material is permitted. Permission from IEEE must be obtained for a...
Photonic crystals (PhCs) act on light in two different ways: confinement and modification of propaga...
© 2003 American Physical Society. The electronic version of this article is the complete one and can...
A method for analysis of dispersion characteristics of guided optical modes propagating in the optic...
The eigenfield distribution and the band structure of a photonic crystal waveguide have been measure...
We investigate the dispersion properties of ridge Bragg-reflection waveguides to deduce their phasem...
We formulate and demonstrate experimentally the highresolution spectral method based on Bloch-wave ...
We demonstrate that the spatial profiles of both propagating and evanescent Bloch modes in a periodi...
We demonstrate that the spatial profiles of both propagating and evanescent Bloch modes in a periodi...
The local dispersion relation of a photonic crystal waveguide is directly determined by phase-sensit...
The local dispersion relation of a photonic crystal waveguide is directly determined by phase-sensit...
We develop a systematic approach for simultaneous extraction of the dispersion relations and profile...
We retrieve the dispersion properties of photonic crystal waveguides near the band edge with high ex...
We retrieve the dispersion properties of photonic crystal waveguides near the band edge with high ex...
We perform phase-sensitive near-field scanning optical microscopy on photonic-crystal waveguides. Th...
© 2004 IEEE. Personal use of this material is permitted. Permission from IEEE must be obtained for a...
Photonic crystals (PhCs) act on light in two different ways: confinement and modification of propaga...
© 2003 American Physical Society. The electronic version of this article is the complete one and can...
A method for analysis of dispersion characteristics of guided optical modes propagating in the optic...
The eigenfield distribution and the band structure of a photonic crystal waveguide have been measure...
We investigate the dispersion properties of ridge Bragg-reflection waveguides to deduce their phasem...