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用于磁共振成像的具有主动可调谐性和自适应性的共形超材料。

Conformal Metamaterials with Active Tunability and Self-Adaptivity for Magnetic Resonance Imaging.

作者信息

Wu Ke, Zhu Xia, Zhao Xiaoguang, Anderson Stephan W, Zhang Xin

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

Research (Wash D C). 2024 Dec 23;7:0560. doi: 10.34133/research.0560. eCollection 2024.

Abstract

Metamaterials hold great potential to enhance the imaging performance of magnetic resonance imaging (MRI) as auxiliary devices, due to their unique ability to confine and enhance electromagnetic fields. Despite their promise, the current implementation of metamaterials faces obstacles for practical clinical adoption due to several notable limitations, including their bulky and rigid structures, deviations from optimal resonance frequency, and inevitable interference with the radiofrequency (RF) transmission field in MRI. Herein, we address these restrictions by introducing a flexible and smart metamaterial that enhances sensitivity by conforming to patient anatomies while ensuring comfort during MRI procedures. The proposed metamaterial selectively amplifies the magnetic field during the RF reception phase by passively sensing the excitation signal strength, remaining "off" during the RF transmission phase. Additionally, the metamaterial can be readily tuned to achieve a precise frequency match with the MRI system through a controlling circuit. The metamaterial presented here paves the way for the widespread utilization of metamaterials in clinical MRI, thereby translating this promising technology to the MRI bedside.

摘要

超材料作为辅助设备,因其具有限制和增强电磁场的独特能力,在提高磁共振成像(MRI)的成像性能方面具有巨大潜力。尽管超材料前景广阔,但由于一些显著的局限性,目前超材料在实际临床应用中面临障碍,包括其笨重且刚性的结构、偏离最佳共振频率以及在MRI中不可避免地干扰射频(RF)传输场。在此,我们通过引入一种灵活且智能的超材料来解决这些限制,该超材料通过贴合患者解剖结构来提高灵敏度,同时在MRI检查过程中确保舒适度。所提出的超材料通过被动感知激励信号强度,在RF接收阶段选择性地放大磁场,在RF传输阶段保持“关闭”状态。此外,通过控制电路可以轻松调节超材料,以实现与MRI系统的精确频率匹配。这里展示的超材料为超材料在临床MRI中的广泛应用铺平了道路,从而将这项有前景的技术应用于MRI床边。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/213c/11665932/c16f693f9d19/research.0560.fig.001.jpg

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