Photonic Bandgap Measurement

Photonic bandgap measurement is the experimental determination of wavelength or frequency ranges that a photonic structure blocks from propagating, a key step in evaluating how it controls light. Typically, researchers direct broadband or tunable light onto a photonic crystal, grating, or periodic optical material and record transmission or reflection as a function of wavelength, angle, and polarization; a pronounced transmission minimum identifies the bandgap. These measurements validate optical designs and reveal how geometry, refractive-index contrast, and fabrication quality influence performance. In engineering, the results guide the development of optical filters, waveguides, sensors, resonators, and other devices that manipulate light with high spectral precision.

Photonic Bandgap Measurement - Related Videos

Research

JoVE Journal - Engineering

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.

Measurement of Quantum Interference in a Silicon Ring Resonator Photon Source

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Cited by 2 •

2017

Silicon photonic chips have the potential to realize complex integrated quantum systems. Presented here is a method for preparing and testing a silicon photonic chip for quantum measurements.

Fabrication and Testing of Photonic Thermometers

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Cited by 1 •

2018

We describe the process of fabrication and testing of photonic thermometers.

Measuring Diffusion Coefficients via Two-photon Fluorescence Recovery After Photobleaching

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Cited by 4 •

2010

In this article we will describe the procedure for measuring diffusion coefficients using multi-photon fluorescence recovery after photobleaching. We will begin by aligning the laser along the optical path to the sample and determining the proper experimental parameters, then continue generating and finally fitting fluorescence recovery curves.

Fabrication of 1-D Photonic Crystal Cavity on a Nanofiber Using Femtosecond Laser-induced Ablation

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Cited by 3 •

2017

We present a protocol for fabricating 1-D photonic crystal cavities on subwavelength diameter silica fibers (optical nanofibers) using femtosecond laser-induced ablation.

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