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Optimal control design of excitation pulses that accommodate relaxation
Naum I Gershenzon1, Kyryl Kobzar, Burkhard Luy
1Physics Department, Wright State University, Dayton, OH 45435, USA.
Abstract:
An optimal control algorithm for mitigating the effects of T(1) and T(2) relaxation during the application of long pulses is derived. The methodology is applied to obtain broadband excitation that is not only tolerant to RF inhomogeneity typical of high resolution probes, but is relatively insensitive to relaxation effects for T(1) and T(2) equal to the pulse length. The utility of designing pulses to produce specific phase in the final magnetization is also presented. The results regarding relaxation and optimized phase are quite general, with many potential applications beyond the specific examples presented here.
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