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MetamaterialCombining Electric- and Magnetic-Dipole-Based Configurations for UniqueDual-Band Signal Enhancement in Ultrahigh-Field Magnetic ResonanceImaging

机译:超材料结合基于电偶极子和磁偶极子的配置以获得独特的超高磁场磁共振中的双频信号增强影像学

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摘要

Magnetic resonance imaging and spectroscopy (MRI and MRS) are both widely used techniques in medical diagnostics and research. One of the major thrusts in recent years has been the introduction of ultrahigh-field magnets in order to boost the sensitivity. Several MRI studies have examined further potential improvements in sensitivity using metamaterials, focusing on single frequency applications. However, metamaterials have yet to reach a level that is practical for routine MRI use. In this work, we explore a new metamaterial implementation for MRI, a dual-nuclei resonant structure, which can be used for both proton and heteronuclear magnetic resonance. Our approach combines two configurations, one based on a set of electric dipoles for the low frequency band, and the second based on a set of magnetic dipoles for the high frequency band. We focus on the implementation of a dual-nuclei metamaterial for phosphorus and proton imaging and spectroscopy at an ultrahigh-field strength of 7 T. In vivo scans using this flexible and compact structure show that it locally enhances both the phosphorus and proton transmitand receive sensitivities.
机译:磁共振成像和光谱学(MRI和MRS)都是医学诊断和研究中广泛使用的技术。近年来的主要推动力之一是引入超高磁场磁体,以提高灵敏度。几项MRI研究已经研究了使用超材料的潜在的潜在改善,重点是单频应用。但是,超材料尚未达到常规MRI使用的实用水平。在这项工作中,我们探索了一种适用于MRI的超材料新实现,即双核共振结构,该结构可用于质子和异核磁共振。我们的方法结合了两种配置,一种基于低频频带的电偶极子,另一种基于高频频带的磁偶极子。我们专注于在7 T的超高场强度下实现磷和质子成像和光谱学的双核超材料的实现。使用这种灵活而紧凑的结构进行的体内扫描显示,它可以局部增强磷和质子的传输并获得敏感性。

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