Ultra-high Field

Ultra-high field refers to the use of exceptionally strong magnetic fields to investigate matter, energy, and biological systems with greater sensitivity and resolution than conventional field strengths. In nuclear magnetic resonance and magnetic resonance imaging, a stronger static field increases Zeeman energy separation and nuclear spin polarization, producing larger signals while also introducing challenges such as radiofrequency inhomogeneity, susceptibility effects, and tissue heating. Ultra-high-field systems support high-resolution brain imaging, spectroscopy, materials research, and studies of molecular structure and dynamics. Their development advances precision measurement and can reveal biological or physical features that remain difficult to observe at lower fields.

Ultra-high Field - Related Videos

Research

JoVE Journal - Medicine

Use of Ultra-high Field MRI in Small Rodent Models of Polycystic Kidney Disease for In Vivo Phenotyping and Drug Monitoring

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Cited by 14 •

2015

The use of ultra-high field MRI as a non-invasive way to obtain phenotypic information of rodent models for polycystic kidney disease and to monitor interventions is described. Compared with the traditional histological approach, MRI images can be acquired in vivo, allowing for longitudinal follow-up.

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.

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.

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.

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).

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