Ultra High Vacuum

Ultra high vacuum (UHV) is an engineered environment with gas pressures typically below 10⁻⁷ mbar, low enough to minimize molecular collisions and enable precise control of surfaces, beams, and sensitive processes. UHV systems combine staged mechanical, turbomolecular, or ion pumping with low-outgassing materials, leak-tight chambers, and often elevated-temperature bakeout to remove adsorbed gases; vacuum gauges and residual-gas analysis monitor performance. In engineering, UHV supports semiconductor fabrication, surface science, electron and ion beam instruments, particle accelerators, and space-environment simulation. By reducing contamination and scattering, it improves measurement accuracy, enables reproducible thin-film growth and materials characterization, and supports reliable high-performance devices and experimental platforms.

Ultra High Vacuum - Related Videos

Research

JoVE Journal - Engineering

Angle-resolved Photoemission Spectroscopy At Ultra-low Temperatures

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Cited by 8 •

2012

The overall goal of this method is to determine the low-energy electronic structure of solids at ultra-low temperatures using Angle-Resolved Photoemission Spectroscopy with synchrotron radiation.

Education

JoVE Science Education - Basic Biology

Proper Operation of Vacuum Based Equipment

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2023

Source: Robert M. Rioux, Ajay Sathe & Zhifeng Chen, Pennsylvania State University, University Park, PA Vacuum is required for a number of laboratory procedures. This is most routinely achieved in the laboratory by the use of vacuum pumps. In addition to working at low pressures, vacuum pumps can also be used to enable rapid changing of the atmospheres in a reactor or flask by evacuation and backfilling.

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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