Ultra High Q Factor

An ultra high Q factor describes a resonant system that stores energy efficiently while losing very little energy during each oscillation, making it an important measure of performance in engineering. The quality factor increases as damping and energy dissipation decrease, producing a sharp resonance with a narrow bandwidth and strong response near the natural frequency. Engineers use ultra high Q resonators in frequency-selective filters, oscillators, timing devices, and precision sensors, where stability and sensitivity are critical. However, these systems can respond slowly and may become more sensitive to environmental disturbances, so designers must balance low loss, bandwidth, stability, and practical operating conditions.

Ultra High Q Factor - Related Videos

Research

JoVE Journal - Engineering

Fabrication of Silica Ultra High Quality Factor Microresonators

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Cited by 22 •

2012

We describe the use of a carbon dioxide laser reflow technique to fabricate silica resonant cavities, including free-standing microspheres and on-chip microtoroids. The reflow method removes surface imperfections, allowing long photon lifetimes within both devices. The resulting devices have ultra high quality factors, enabling applications ranging from telecommunications to biodetection.

Single-Cell Factor Localization on Chromatin using Ultra-Low Input Cleavage Under Targets and Release using Nuclease

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Cited by 6 •

2022

CUT&RUN and its variants can be used to determine protein occupancy on chromatin. This protocol describes how to determine protein localization on chromatin using single-cell uliCUT&RUN.

MALDI Sample Preparation: the Ultra Thin Layer Method

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Cited by 32 •

2007

This video demonstrates the preparation of an ultra-thin matrix/analyte layer for analyzing peptides and proteins by Matrix-Assisted Laser Desorption Ionization Mass Spectrometry (MALDI-MS).

Generating an Ultra-Low-Density Neuronal Culture Using a High-Density Neuronal Feeder Layer

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2025

This video demonstrates the method for culturing ultra-low-density neurons in the presence of a high-density neuronal feeder layer. It establishes a co-culture of varying-density neurons, ensuring close physical proximity. The growth factors secreted by high-density neurons help neuronal survival and growth, maintaining ultra-low-density neurons for a longer time period.

Determining the Mechanical Strength of Ultra-Fine-Grained Metals

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2021

The protocol presented here describes the high-pressure radial diamond-anvil-cell experiments and analyzing the related data, which are essential for obtaining the mechanical strength of the nanomaterials with a significant breakthrough to the traditional approach.

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