首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Spatially 2D-selective RF excitations using the PROPELLER trajectory: Basic principles and application to MR spectroscopy of irregularly shaped single voxel
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Spatially 2D-selective RF excitations using the PROPELLER trajectory: Basic principles and application to MR spectroscopy of irregularly shaped single voxel

机译:使用PROPELLER轨迹的二维二维选择性RF激发:不规则形状的单个体素的MR光谱学的基本原理和应用

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Spatially two-dimensional selective radio frequency (2DRF) excitations are able to excite arbitrarily-shaped profiles in their excitation plane and, hence, can be used to minimize partial volume effects in single-voxel magnetic resonance spectroscopy. In this study, 2DRF excitations based on the PROPELLER trajectory which consists of blades of parallel lines that are rotated against each other, are presented. Because the k-space center is covered with each segment, the trajectory yields a high signal efficiency which, e.g., is considerably improved compared to a segmented blipped-planar approach. It is shown that a sampling density correction based on the PROPELLER trajectory's Voronoi diagram suppresses unwanted side excitations. Off-resonance effects like chemical-shift displacement artifacts, can be minimized by applying nonselective refocusing radio frequency pulses between the lines of a blade. With half-Fourier segments, the 2DRF's echo time contribution can be shortened considerably. Thus, robust 2DRF excitations capable of exciting high-resolution profiles at short echo times with high signal efficiency are obtained. Their applicability to MR spectroscopy of an arbitrarily-shaped single voxel is demonstrated in a two-bottle phantom and in the human brain in vivo on a 3 T whole-body MR system.
机译:空间二维选择性射频(2DRF)激发能够在其激发平面中激发任意形状的轮廓,因此可用于最小化单体素磁共振波谱中的部分体积效应。在这项研究中,提出了基于PROPELLER轨迹的2DRF激励,该轨迹由相互平行旋转的平行线的叶片组成。因为k空间中心被每个段覆盖,所以该轨迹产生了高信号效率,例如,与分段的blipped-平面方法相比,该效率大大提高了。结果表明,基于PROPELLER轨迹的Voronoi图进行的采样密度校正可以抑制不必要的侧面激励。可以通过在叶片的线之间施加非选择性的重新聚焦射频脉冲来最小化诸如化学位移位移伪像之类的非共振效应。使用半傅里叶分段,可以大大缩短2DRF的回波时间贡献。因此,获得了能够在短回波时间内以高信号效率激发高分辨率轮廓的鲁棒2DRF激发。在两瓶体模中以及在3 T全身MR系统上的人脑中,证明了它们适用于任意形状的单个体素的MR光谱。

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