arXiv:2409.05350physics.opticseess.IV2024-09

用超材料散射设计提升7特斯拉脑部MRI的磁场均匀性

Volumetric B1+ field homogenization in 7 Tesla brain MRI using metasurface scattering

  • 基于散射理论设计超材料,系统优化场分布模式
  • 7特斯拉下场均匀性提升两倍以上,局部加热显著降低
  • 适合高场MRI研究者,为未来更高场强设备提供方案

超高场磁共振成像(UHF MRI)已成为人脑成像的重要工具,具备优异诊断精度且无创。当射频磁场在具有波长尺度、耗散性和随机异质性的脑组织中传播时,会引发B1+场不均和局部过热等介观问题。本文提出受散射理论启发的超材料设计方法,系统寻找最优散射构型,并引入剪枝技术减少参与模态数量,确保实际应用稳定性。基于真实人体脑模型的全波分析显示,在7特斯拉MRI条件下,场均匀性提升超过两倍,局部加热被有效抑制,性能优于商用3特斯拉MRI。结果实现了光学中恒定强度波的非侵入式推广,为更高场强MRI提供了通用解决方案。

原文摘要 · Abstract (English)

Ultrahigh field magnetic resonance imaging (UHF MRI) has become an indispensable tool for human brain imaging, offering excellent diagnostic accuracy while avoiding the risks associated with invasive modalities. When the radiofrequency magnetic field of the UHF MRI encounters the multifaceted complexity of the brain, characterized by wavelength-scale, dissipative, and random heterogeneous materials, detrimental mesoscopic challenges such as B1+ field inhomogeneity and local heating arise. Here we develop the metasurface design inspired by scattering theory to achieve the volumetric field homogeneity in the UHF MRI. The method focuses on finding the scattering ansatz systematically and incorporates a pruning technique to achieve the minimum number of participating modes, which guarantees stable practical implementation. Using full-wave analysis of realistic human brain models under a 7 Tesla MRI, we demonstrate more than a twofold improvement in field homogeneity and suppressed local heating, achieving better performance than even the commercial 3 Tesla MRI. The result shows a noninvasive generalization of constant intensity waves in optics, offering a universal methodology applicable to higher Tesla MRI.

MRI超材料场均匀化7特斯拉

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