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Metamaterial-based transmit and receive system for whole-body magnetic resonance imaging at ultra-high magnetic fields

机译:基于超材料的超高磁场全身磁共振成像收发系统

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摘要

Magnetic resonance imaging (MRI) at ultra-high fields (UHF), such as 7 T, provides an enhanced signal-to-noise ratio and has led to unprecedented high-resolution anatomic images and brain activation maps. Although a variety of radio frequency (RF) coil architectures have been developed for imaging at UHF conditions, they usually are specialized for small volumes of interests (VoI). So far, whole-body coil resonators are not available for commercial UHF human whole-body MRI systems. The goal of the present study was the development and validation of a transmit and receive system for large VoIs that operates at a 7 T human whole-body MRI system. A Metamaterial Ring Antenna System (MRAS) consisting of several ring antennas was developed, since it allows for the imaging of extended VoIs. Furthermore, the MRAS not only requires lower intensities of the irradiated RF energy, but also provides a more confined and focused injection of excitation energy on selected body parts. The MRAS consisted of several antennas with 50 cm inner diameter, 10 cm width and 0.5 cm depth. The position of the rings was freely adjustable. Conformal resonant right-/left-handed metamaterial was used for each ring antenna with two quadrature feeding ports for RF power. The system was successfully implemented and demonstrated with both a silicone oil and a water-NaCl-isopropanol phantom as well as in vivo by acquiring whole-body images of a crab-eating macaque. The potential for future neuroimaging applications was demonstrated by the acquired high-resolution anatomic images of the macaque’s head. Phantom and in vivo measurements of crab-eating macaques provided high-resolution images with large VoIs up to 40 cm in xy-direction and 45 cm in z-direction. The results of this work demonstrate the feasibility of the MRAS system for UHF MRI as proof of principle. The MRAS shows a substantial potential for MR imaging of larger volumes at 7 T UHF. This new technique may provide new diagnostic potential in spatially extended pathologies such as searching for spread-out tumor metastases or monitoring systemic inflammatory processes.
机译:超高磁场(UHF)(例如7 T)的磁共振成像(MRI)提供了增强的信噪比,并产生了前所未有的高分辨率解剖图像和大脑激活图。尽管已开发出多种射频(RF)线圈架构用于UHF条件下的成像,但它们通常专用于小批量的兴趣(VoI)。到目前为止,全身线圈谐振器还不适用于商用UHF人体全身MRI系统。本研究的目的是开发和验证用于在7 T人体全身MRI系统上运行的大型VoI的发送和接收系统。开发了由几个环形天线组成的超材料环形天线系统(MRAS),因为它可以对扩展的VoI进行成像。此外,MRAS不仅需要较低强度的辐射RF能量,而且还可以在选定的身体部位上更局限地集中激发能量的注入。 MRAS由几根内径为50厘米,宽为10厘米,深为0.5厘米的天线组成。环的位置可以自由调节。每个环形天线都使用共形谐振的右/左手超材料,每个环形天线带有两个正交馈电端口,用于射频功率。该系统已成功实施并通过硅油和水-NaCl-异丙醇幻象进行了演示,并在体内通过获取食蟹猕猴的全身图像进行了演示。猕猴头部获得的高分辨率解剖图像显示了未来神经成像应用的潜力。对蟹食猕猴的幻像和体内测量提供了高分辨率的图像,其大VoIs在xy方向上可达40 cm,在z方向上可达45 cm。这项工作的结果证明了用于超高频MRI的MRAS系统作为原理证明的可行性。 MRAS显示出在7 T UHF进行较大体积MR成像的巨大潜力。这项新技术可能在空间扩展的病理学中提供新的诊断潜力,例如寻找扩散的肿瘤转移或监测全身性炎症过程。

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