Freeform Waveguides

Freeform waveguides are optical structures with deliberately shaped, nonuniform paths that guide light between locations without being restricted to conventional straight or planar geometries. They confine electromagnetic waves through refractive-index contrast, typically using total internal reflection or guided modes, while the waveguide’s curvature, cross-section, and material properties influence propagation losses and optical performance. In engineering, freeform waveguides support compact optical interconnects, integrated photonic devices, sensors, and display systems by enabling three-dimensional routing and flexible component placement. Their design expands the possibilities for miniaturized optical systems while requiring careful control of geometry, fabrication, and signal integrity.

Freeform Waveguides - Related Videos

Research

JoVE Journal - Engineering

Terahertz Microfluidic Sensing Using a Parallel-plate Waveguide Sensor

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Cited by 3 •

2012

The procedure for implementing a refractive index sensor for terahertz frequencies based on a grooved parallel-plate waveguide geometry is described here. The method yields a measurement of the refractive index of a small volume of liquid through monitoring of the shift in the resonant frequency of the waveguide...

Fabrication And Characterization Of Photonic Crystal Slow Light Waveguides And Cavities

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Cited by 14 •

2012

Use of photonic crystal slow light waveguides and cavities has been widely adopted by the photonics community in many differing applications. Therefore fabrication and characterization of these devices are of great interest. This paper outlines our fabrication technique and two optical characterization methods, namely: interferometric (waveguides) and resonant scattering (cavities).

Fabrication of Zero Mode Waveguides for High Concentration Single Molecule Microscopy

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Cited by 3 •

2020

Described here is a nanosphere lithography method for parallel fabrication of zero mode waveguides, which are arrays of nanoapertures in a metal-clad glass microscopy coverslip for single molecule imaging at nano- to micromolar concentrations of fluorophores. The method takes advantage of colloidal crystal self-assembly to create a waveguide template.

Using Microwave and Macroscopic Samples of Dielectric Solids to Study the Photonic Properties of Disordered Photonic Bandgap Materials

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2014

Disordered structures offer new mechanisms for forming photonic bandgaps and unprecedented freedom in functional-defect designs. To circumvent the computational challenges of disordered systems, we construct modular macroscopic samples of the new class of PBG materials and use microwaves to characterize their scale-invariant photonic properties, in an easy and inexpensive manner.

Research

JoVE Journal - Behavior
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How to Detect Amygdala Activity with Magnetoencephalography using Source Imaging

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Cited by 27 •

2013

This article describes how to record amygdala activity with magnetoencephalography (MEG). In addition this article will describe how to conduct trace fear conditioning without awareness, a task that activates the amygdala. It will cover 3 topics: 1) Designing a trace conditioning paradigm using backward masking to manipulate awareness. 2) Recording brain activity during the task using magnetoencephalography. 3) Using source imaging to recover signal from subcortical structures.

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