physics776

Physics in Medicine: Physics of Magnetic Resonance Imaging (A) - physics776

CoursePhysics in Medicine: Physics of Magnetic Resonance Imaging (A)
Course No.physics776
CategoryTypeLanguageTeaching hoursCPSemester
ElectiveLecture with exercisesEnglish3+16WT
Requirements for Participation:

Preparation: Lectures Experimental Physics I-III (physik111-physik311) respectively

Form of Testing and Examination: Requirements for the examination (written or oral): successful work with the exercises

Length of Course: 1 semester

Aims of the Course: Understanding the principles of Magnetic Resonance Imaging Physics

Contents of the Course:
  • Theory and origin of nuclear magnetic resonance (QM and semiclassical approach)

  • Spin dynamics, T1 and T2 relaxation, Bloch Equations and the Signal Equation

  • Gradient echoes and spin echoes and the difference between T2 and T2*

  • On- and off-resonant excitation and the slice selection process

  • Spatial encoding by means of gradient fields and the k-space formalism

  • Basic imaging sequences and their basic contrasts, basic imaging artifacts

  • Hardware components of an MRI scanner, accelerated imaging with multiple receiver

  • Computation of signal amplitudes in steady state sequences

  • The ultra-fast imaging sequence EPI and its application in functional MRI

  • Basics theory of diffusion MRI and its application in neuroimaging

  • Advanced topics: quantitative MRI, spectroscopic imaging, X-nuclei MRI



Recommended Literature:
  • T. Stöcker: Scriptum zur Vorlesung

  • E.M. Haacke et al, Magnetic Resonance Imaging: Physical Principles and Sequence Design, John Wiley 1999

  • M.T. Vlaardingerbroek, J.A. den Boer, Magnetic Resonance Imaging: Theory and Practice, Springer, 20

  • Z.P. Liang, P.C. Lauterbur, Principles of Magnetic Resonance Imaging: A Signal Processing Perspective, SPIE 1999



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