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Acousto-Optic Catheter Tracking Sensor for Interventional MRI Procedures

机译:介入式MRI程序的声光导管跟踪传感器

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Objective: The objective of this paper is to introduce an acousto-optic optical fiber sensor for tracking catheter position during interventional magnetic resonance imaging (MRI) to overcome RF induced heating of active markers. Methods: The sensor uses a miniature coil coupled to a piezoelectric transducer, which is in turn mechanically connected to an optical fiber. The piezoelectric transducer converts the RF signal to acoustic waves in the optical fiber over a region including a fiber Bragg grating (FBG). The elastic waves in the fiber modulates the FBG geometry and hence the reflected light in the optical fiber. Since the coil is much smaller than the RF wavelength and the signal is transmitted on the dielectric optical fiber, the sensor effectively reduces RF induced heating risk. Proof of concept prototypes of the sensor are implemented using commercially available piezoelectric transducers and optical fibers with FBGs. The prototypes are characterized in a 1.5 T MRI system in comparison with an active tracking marker. Results: Acousto-optical sensor shows linear response with flip angle and it can be used to detect signals from multiple coils for potential orientation detection. It has been successfully used to detect the position of a tacking coil in phantom in an imaging experiment. Conclusion: Acousto-optical sensing is demonstrated for tracking catheters during interventional MRI. Real-time operation of the sensor requires sensitivity improvements like using a narrow band FBG. Significance: Acousto-optics provides a compact solution to sense RF signals in MRI with dielectric transmission lines.
机译:目的:本文的目的是介绍一种声光光纤传感器,用于在介入磁共振成像(MRI)期间跟踪导管位置,以克服RF诱导的活动标记物的加热。方法:传感器使用耦合到压电换能器的微型线圈,压电换能器又机械地连接到光纤。压电换能器在包括光纤布拉格光栅(FBG)的区域上将RF信号转换为光纤中的声波。光纤中的弹性波调节FBG的几何形状,从而调节光纤中的反射光。由于线圈远小于RF波长,并且信号在介电光纤上传输,因此传感器有效地降低了RF引起的加热风险。传感器的概念原型是使用市售的压电传感器和带有FBG的光纤实现的。与主动跟踪标记相比,原型在1.5 T MRI系统中进行了表征。结果:声光传感器显示出具有翻转角的线性响应,可用于检测来自多个线圈的信号以进行电位方向检测。它已成功用于在成像实验中检测幻影中定位线圈的位置。结论:在介入性MRI期间,声光传感技术可用于跟踪导管。传感器的实时操作需要提高灵敏度,例如使用窄带FBG。启示:声光提供了一种紧凑的解决方案,可通过介电传输线在MRI中感应RF信号。

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