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Comprehensive 4D Parallel Transmission Spatial-Spectral Pulse Design for Slab-Selective Uniform Water-Selective
Xin Shao1, Zhe Zhang2, Wen Zhong1
1Center for Biomedical Imaging Research, School of Biomedical Engineering, Tsinghua University, Beijing, China.
Purpose:
To propose a new parallel transmission (pTx) spatial-spectral (SPSP) pulse design for achieving slab-selective uniform water-selective excitation without unwanted out-of-slab fat excitation when using bipolar slab-selective gradients to maintain a sharp slab profile.
Methods:
Our new pTx SPSP pulses were designed by formulating the design problem comprehensively in the 4D space (1D spectral and 3D spatial domains) and by incorporating a SPINS-like 2D excitation k-space trajectory for within-slab flip-angle homogenization. Our new design was validated at 7 T using simulation, phantom and human experiments with the commercial Nova eight-channel transmit RF head coil. Its utility was demonstrated by comparing to traditional multi-spoke pTx SPSP pulses.
Results:
In both simulation and experiments, our design outperformed traditional approaches, producing slab-selective uniform water-selective excitation with no out-of-slab fat excitation. Quantitatively, coefficient of variation measuring excitation non-uniformity reduced by up to ∼23%.
Conclusion:
Our proposed new design provides an effective solution for slab-selective uniform water-selective excitation, holding a promise to many applications including mesoscale BOLD fMRI and fat-free body imaging at ultrahigh field.
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