论文标题

使用电感耦合的RF谐振阵列改善7T的脑MRI

Improvement of Brain MRI at 7T Using an Inductively Coupled RF Resonator Array

论文作者

Alipour, Akbar, Seifert, Alan C, Delman, Bradley, Adriany, Gregor, Balchandani, Priti

论文摘要

众所周知,与较低的磁场强度相比,在7 Tesla(7t)处的磁共振成像(MRI)和较高的磁体可以提供更好的信号灵敏度。然而,由于与波长效应相关的技术挑战,例如翻转角度不均匀性和不对称的传输和接收RF场模式,因此,由于技术挑战的技术挑战,多种可商购的超高场MRI线圈仍然受到限制。我们的目的是使用电感耦合的RF谐振阵列开发一种被动的RF光滑技术,以改善7T的大脑MRI,重点是小脑。方法:电感耦合的RF谐振阵列设计用于放置在商业头圈内,以增强发射场均匀性并提高接收信号灵敏度。阵列的每个元素都是耦合的式环形谐振器(CSRR),它们使用关键重叠技术将它们彼此分离。进行幻像和前体MRI实验,以评估阵列存在的发射效率和信号灵敏度。结果:MRI实验表明,信噪比(SNR)提高了2至4倍,小脑中的对比度比(CNR)提高了2倍。结论:我们对无线RF谐振阵列进行了建模,该阵列可以提高标准头线线圈的发射效率并提高脑MRI的信号灵敏度,而不会损害RF安全性。

It is well known that magnetic resonance imaging (MRI) at 7 Tesla (7T) and higher magnets can provide much better signal sensitivity compared with lower field strengths. However, variety of commercially available ultra-high-field MRI coils are still limited, due to the technical challenges associated with wavelength effect, such as flip angle inhomogeneity and asymmetric transmit and receive RF field patterns. We aimed to develop a passive RF shimming technique using an inductively coupled RF resonator array to improve brain MRI at 7T, focusing of cerebellum. Method: an inductively coupled RF resonator array was designed for placing inside the commercial head coil to enhance the transmit field homogeneity and to improve the receive signal sensitivity. Each element of the array is a coupled-split-ring resonator (CSRR), which they are decoupled for each other using critical overlap technique. Phantom and ex-vivo MRI experiments were performed to evaluate the transmit efficiency and signal sensitivity in the presence of the array. Results: MRI experiments showed 2 to 4-fold improvement in Signal-to-noise ratio (SNR) and 2-fold improvement in contrast-to-noise ratio (CNR) in cerebellum. Conclusion: We modeled a wireless RF resonator array that can improve the transmit efficiency of the standard head coil and enhance the signal sensitivity at brain MRI without compromising RF safety.

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