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超弹性启发的可调谐超材料磁共振成像。

Auxetics-Inspired Tunable Metamaterials for Magnetic Resonance Imaging.

机构信息

Department of Mechanical Engineering, Boston University, Boston, MA, 02215, USA.

Photonics Center, Boston University, Boston, MA, 02215, USA.

出版信息

Adv Mater. 2022 Feb;34(6):e2109032. doi: 10.1002/adma.202109032. Epub 2021 Dec 19.

Abstract

Auxetics refers to structures or materials with a negative Poisson's ratio, thereby capable of exhibiting counterintuitive behaviors. Herein, auxetic structures are exploited to design mechanically tunable metamaterials in both planar and hemispherical configurations operating at megahertz (MHz) frequencies, optimized for their application to magnetic resonance imaging (MRI). Specially, the reported tunable metamaterials are composed of arrays of interjointed unit cells featuring metallic helices, enabling auxetic patterns with a negative Poisson's ratio. The deployable deformation of the metamaterials yields an added degree of freedom with respect to frequency tunability through the resultant modification of the electromagnetic interactions between unit cells. The metamaterials are fabricated using 3D printing technology and an ≈20 MHz frequency shift of the resonance mode is enabled during deformation. Experimental validation is performed in a clinical (3.0 T) MRI system, demonstrating that the metamaterials enable a marked boost in radiofrequency field strength under resonance-matched conditions, ultimately yielding a dramatic increase in the signal-to-noise ratio (≈4.5×) of MRI. The tunable metamaterials presented herein offer a novel pathway toward the practical utilization of metamaterials in MRI, as well as a range of other emerging applications.

摘要

超弹性是指具有负泊松比的结构或材料,从而能够表现出反直觉的行为。在此,我们利用超弹性结构设计了在兆赫兹(MHz)频率下工作的平面和半球形配置的机械可调超材料,这些超材料经过优化,可应用于磁共振成像(MRI)。具体来说,所报道的可调节超材料由具有金属螺旋的互锁单元组成的阵列构成,实现了具有负泊松比的超弹性图案。超材料的可展开变形通过单元之间的电磁相互作用的改变,为频率可调性提供了额外的自由度。超材料是使用 3D 打印技术制造的,在变形过程中可以实现约 20 MHz 的共振模式的频率偏移。在临床(3.0 T)MRI 系统中进行了实验验证,结果表明,在共振匹配条件下,超材料能够显著提高射频场强度,最终使 MRI 的信噪比(约 4.5 倍)大幅提高。本文提出的可调超材料为在 MRI 中实际应用超材料以及一系列其他新兴应用提供了新途径。

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