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Biomedical subjects

S R J Brueck

Publications and source records attributed to S R J Brueck.

8 recordsLinked to original sources

Using bicellar mixtures to form supported and suspended lipid bilayers on silicon chips.

Bicellar mixtures, planar lipid bilayer assemblies comprising long- and short-chain phosphatidylcholine lipids in suspension, were used to form supported lipid bilayers on flat silicon substrate and on nanotextured silicon substrates containing arrays of parallel troughs (170 nm wide, 380 nm deep, and 300 nm apart). Confocal fluorescence and atomic force microscopies were used to characterize the resulting lipid bilayer. Formation of a continuous biphasic undulating lipid bilayer membrane, where the crests and troughs corresponded to supported and suspended lipid bilayer regions, is demonstrated. The use of interferometric lithography to fabricate nanotexured substrates provides an advantage over other nanotextured substrates such as nanoporous alumina by offering flexibility in designing different geometries for suspending lipid bilayers.

Lipid Bilayers↗

Experimental demonstration of near-infrared negative-index metamaterials.

Metal-based negative refractive-index materials have been extensively studied in the microwave region. However, negative-index metamaterials have not been realized at near-IR or visible frequencies due to difficulties of fabrication and to the generally poor optical properties of metals at these wavelengths. In this Letter, we report the first fabrication and experimental verification of a transversely structured metal-dielectric-metal multilayer exhibiting a negative refractive index around 2 microm. Both the amplitude and the phase of the transmission and reflection were measured experimentally, and are in good agreement with a rigorous coupled wave analysis.

Journal Article↗

Midinfrared resonant magnetic nanostructures exhibiting a negative permeability.

We experimentally demonstrate the first midinfrared (mid-IR) resonant magnetic nanostructures exhibiting a strong magnetic response corresponding to a negative permeability. This result is an important step toward the achievement of a negative refractive index in the IR. The possibility of extending negative permeability to higher frequencies is discussed; a structure with a negative effective permeability at a near-IR resonance frequency of 230 THz (1.3 microm) is proposed.

Journal Article↗

Enhanced infrared transmission through subwavelength coaxial metallic arrays.

We report the observation of enhanced near-infrared transmission through arrays of subwavelength coaxial metallic structures compared with that through comparable diameter hole arrays as a result of localized electromagnetic modes supported by the complex coaxial unit cell. Polarization and angle-dependent transmission measurements clearly demonstrate the coupling between this localized mode and delocalized surface plasmon modes. A generalized, multiple discrete states Fano line shape provides a good fit to the experimental results.

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Radiation from a dipole embedded in a multilayer slab.

An analytical solution for the radiation emitted from a dipole embedded in an arbitrary, planar dielectric film stack is presented. The calculation uses a rigorous Hertz-vector formalism to treat the electromagnetic boundary conditions. The radiation fields are then evaluated in a far-field approximation to get the radiated fields far from the dipole. Both two-dimensional (2D) emission into bound modes of the dielectric stack and three-dimensional (3D) emission into radiation fields above and below the stack are evaluated. These solutions are explored for two simple cases: a InGaAs slab symmetrically clad with up to four high-contrast (Al(2)O(3)/GaAs) Bragg mirror pairs and semi-infinite air spaces, and a similar asymmetric structure with a GaAs substrate on one side. The symmetric structure supports both 2D bound and 3D radiation fields. The asymmetric structure only supports 3D radiation fields since there are no strictly bound modes, but "leaky" modes appear that are very similar to the bound modes in the symmetric structure except that the radiated power ultimately is transmitted into the substrate in a very highly directional beam. This calculation is applicable to a wide range of solid-state photonic devices, including vertical-cavity and edge-emitting lasers, spontaneous light-emitting diodes, and photodetectors.

Journal Article↗

Imaging interferometric microscopy.

We introduce and demonstrate a new microscopy concept: imaging interferometric microscopy (IIM), which is related to holography, synthetic-aperture imaging, and off-axis-dark-field illumination techniques. IIM is a wavelength-division multiplex approach to image formation that combines multiple images covering different spatial-frequency regions to form a composite image with a resolution much greater than that permitted by the same optical system using conventional techniques. This new type of microscopy involves both off-axis coherent illumination and reinjection of appropriate zero-order reference beams. Images demonstrate high resolution, comparable with that of a high-numerical-aperture (NA) objective, while they retain the long working distance, the large depth of field, and the large field of view of a low-NA objective. A Fourier-optics model of IIM is in good agreement with the experiment.

Journal Article↗

Vortex configurations, matching, and domain structure in large arrays of artificial pinning centers.

High-resolution scanning Hall probe microscopy has been used to image vortex configurations in very large periodic arrays of artificial pinning sites. Strong matching effects are seen at fields where either one or two vortices can sit at a site; with three vortices per site, however, no clear matching is observed. Matching effects have also been observed at several fractional multiples of the matching field, including 1/5, 1/4, 1/3, 1/2, and 3/4. These fractional values are characterized by striking domain structure and grain boundaries.

Journal Article↗

Metallic inductive and capacitive grids: theory and experiment.

We present theoretical modeling and experimental validation of both capacitive (dot) and inductive (hole) metallic crossed gratings in the mid-infrared (2-5 microm). The gratings are fabricated by use of interferometric lithography and modeled by use of rigorous coupled-wave analysis. Our experimental and numerical investigations of the transmittance spectra of these gratings suggest that, as in inductive grids, the behavior of capacitive grids is described by the coupling of the incident light into surface plasma waves.

Journal Article↗