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      Approximate fourier domain expression for bloch-siegert shift

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      Author(s)
      Turk, E. A.
      Ider, Y. Z.
      Ergun, A. S.
      Atalar, Ergin
      Date
      2015
      Source Title
      Magnetic Resonance in Medicine
      Print ISSN
      0740-3194
      Publisher
      John Wiley and Sons Inc.
      Volume
      73
      Issue
      1
      Pages
      117 - 125
      Language
      English
      Type
      Article
      Item Usage Stats
      215
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      211
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      Abstract
      Purpose: In this study, a newsimple Fourier domain-based analytical expression for the Bloch-Siegert (BS) shift-based B1 mapping method is proposed to obtain |B1+| more accurately while using short BS pulse durations and small off-resonance frequencies.Theory and Methods: A new simple analytical expression for the BS shift is derived by simplifying the Bloch equations. In this expression, the phase is calculated in terms of the Fourier transform of the radiofrequency pulse envelope, and thus making the off- and on-resonance effects more easily understandable. To verify the accuracy of the proposed expression, Bloch simulations and MR experiments are performed for the hard, Fermi, and Shinner-Le Roux pulse shapes.Results: Analyses of the BS phase shift-based B1 mapping method in terms of radiofrequency pulse shape, pulse duration, and off-resonance frequency show that |B1+| can be obtained more accurately with the aid of this new expression.Conclusions: In this study, a new simple frequency domain analytical expression is proposed for the BS shift. Using this expression, |B1+| values can be predicted from the phase data using the frequency spectrum of the radiofrequency pulse. This method works well even for short pulse durations and small offset frequencies.
      Keywords
      B1 mapping
      Magnetic resonance imaging
      Article
      Bloch siegert shift
      Fourier analysis
      Fourier transformation
      Gene expression
      Image analysis
      Nuclear magnetic resonance imaging
      Radiofrequency
      Simulation
      Theory
      Permalink
      http://hdl.handle.net/11693/24103
      Published Version (Please cite this version)
      http://dx.doi.org/10.1002/mrm.25104
      Collections
      • Department of Electrical and Electronics Engineering 4011
      • National Magnetic Resonance Research Center (UMRAM) 301
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