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MR Measurement of Alloy Magnetic Susceptibility: Towards DevelopingTissue-Susceptibility Matched Metals

机译:合金磁化率的MR测量:朝着发展组织敏感性匹配金属

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摘要

Magnetic resonance imaging (MRI) can be used to relate structure to function mapped with high-temporal resolution electrophysiological recordings using metal electrodes. Additionally, MRI may be used to guide the placement of electrodes or conductive cannula in the brain. However, the magnetic susceptibility mismatch between implanted metals and surrounding brain tissue can severely distort MR images and spectra, particularly in high magnetic fields. In this study, we present a modified MR method of characterizing the magnetic susceptibility of materials that can be used to develop biocompatible, metal alloys that match the susceptibility of host tissue in order to eliminate MR distortions proximal to the implant. This method was applied at 4.7 T and 11.1 T to measure the susceptibility of a model solid-solution alloy of Cu and Sn, which is inexpensive but not biocompatible. MR-derived relative susceptibility values of four different compositions of Cu-Sn alloy deviated by less than 3.1% from SQUID magnetometry absolute susceptibility measurements performed up to 7 T. These results demonstrate that the magnetic susceptibility varies linearly with atomic percentage in these solid-solution alloys, but are not simply the weighted average of Cu and Sn magnetic susceptibilities. Therefore susceptibility measurements are necessary when developing susceptibility-matched, solid-solution alloys for the elimination of susceptibility artifacts in MR. This MR method does not require any specialized equipment and is free of geometrical constraints, such as sample shape requirements associated with SQUID magnetometry, so the method can be used at all stages of fabrication to guide the development of a susceptibilitymatched, biocompatible device.
机译:磁共振成像(MRI)可以用于将结构与功能映射到使用金属电极的高温分辨率电生理记录中。此外,MRI可用于指导电极或导电套管在大脑中的放置。但是,植入的金属与周围的大脑组织之间的磁化率不匹配会严重扭曲MR图像和光谱,特别是在高磁场中。在这项研究中,我们提出了一种改进的MR方法,用于表征材料的磁化率,该材料可用于开发与宿主组织的磁化率匹配的生物相容性金属合金,以消除植入物附近的MR变形。该方法在4.7 T和11.1 T下应用,以测量铜和锡模型固溶合金的磁化率,这种合金价格便宜但不具有生物相容性。 MR衍生的四种不同成分的Cu-Sn合金的相对磁化率值与SQUID磁力测定法进行的最高达7 T的绝对磁化率测量相差小于3.1%。这些结果表明,在这些固溶体中,磁化率随原子百分比线性变化合金,而不仅仅是Cu和Sn磁化率的加权平均值。因此,在开发与磁化率匹配的固溶合金以消除MR中的磁化伪影时,必须进行磁化率测量。这种MR方法不需要任何专用设备,并且没有几何约束,例如与SQUID磁力计相关的样品形状要求,因此该方法可用于制造的所有阶段,以指导磁化率的发展。匹配的生物兼容设备。

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