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Title: Method for high resolution magnetic resonance analysis using magic angle technique

Abstract

A method of performing a magnetic resonance analysis of a biological object that includes placing the object in a main magnetic field (that has a static field direction) and in a radio frequency field; rotating the object at a frequency of less than about 100 Hz around an axis positioned at an angle of about 54.degree.44' relative to the main magnetic static field direction; pulsing the radio frequency to provide a sequence that includes a phase-corrected magic angle turning pulse segment; and collecting data generated by the pulsed radio frequency. The object may be reoriented about the magic angle axis between three predetermined positions that are related to each other by 120.degree.. The main magnetic field may be rotated mechanically or electronically. Methods for magnetic resonance imaging of the object are also described.

Inventors:
;
Issue Date:
Research Org.:
Pacific Northwest National Laboratory (PNNL), Richland, WA (United States)
Sponsoring Org.:
USDOE
OSTI Identifier:
1175186
Patent Number(s):
6836115
Application Number:
10/456,272
Assignee:
Battelle Memorial Institute (Richland, WA)
Patent Classifications (CPCs):
G - PHYSICS G01 - MEASURING G01R - MEASURING ELECTRIC VARIABLES
DOE Contract Number:  
AC06-76RL01830
Resource Type:
Patent
Country of Publication:
United States
Language:
English
Subject:
46 INSTRUMENTATION RELATED TO NUCLEAR SCIENCE AND TECHNOLOGY

Citation Formats

Wind, Robert A., and Hu, Jian Zhi. Method for high resolution magnetic resonance analysis using magic angle technique. United States: N. p., 2004. Web.
Wind, Robert A., & Hu, Jian Zhi. Method for high resolution magnetic resonance analysis using magic angle technique. United States.
Wind, Robert A., and Hu, Jian Zhi. Tue . "Method for high resolution magnetic resonance analysis using magic angle technique". United States. https://www.osti.gov/servlets/purl/1175186.
@article{osti_1175186,
title = {Method for high resolution magnetic resonance analysis using magic angle technique},
author = {Wind, Robert A. and Hu, Jian Zhi},
abstractNote = {A method of performing a magnetic resonance analysis of a biological object that includes placing the object in a main magnetic field (that has a static field direction) and in a radio frequency field; rotating the object at a frequency of less than about 100 Hz around an axis positioned at an angle of about 54.degree.44' relative to the main magnetic static field direction; pulsing the radio frequency to provide a sequence that includes a phase-corrected magic angle turning pulse segment; and collecting data generated by the pulsed radio frequency. The object may be reoriented about the magic angle axis between three predetermined positions that are related to each other by 120.degree.. The main magnetic field may be rotated mechanically or electronically. Methods for magnetic resonance imaging of the object are also described.},
doi = {},
journal = {},
number = ,
volume = ,
place = {United States},
year = {Tue Dec 28 00:00:00 EST 2004},
month = {Tue Dec 28 00:00:00 EST 2004}
}

Works referenced in this record:

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Magic-Angle-Turning Experiments for Measuring Chemical-Shift-Tensor Principal Values in Powdered Solids
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High-resolution1H NMR spectroscopy in organs and tissues using slow magic angle spinning
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Low-speed magic-angle-spinning carbon-13 NMR of fruit tissue
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Selective excitation in Fourier transform nuclear magnetic resonance
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journal, October 1993


High-resolution1H NMR spectroscopy in rat liver using magic angle turning at a 1 Hz spinning rate
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An Isotropic Chemical Shift-Chemical Shift Anisotropy Magic-Angle Slow-Spinning 2D NMR Experiment
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Biochemical Analysis Using High-Resolution Magic Angle Spinning NMR Spectroscopy Distinguishes Lipoma-Like Well-Differentiated Liposarcoma from Normal Fat
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Amplitude modulation and relaxation due to diffusion in NMR experiments with a rotating sample
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Correlation of isotropic shifts and chemical shift anisotropies by two-dimensional fourier-transform magic-angle hopping nmr spectroscopy
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