Godley Richard F, McDougall Mary P, Wright Steven M, Han Arum
IEEE Trans Biomed Eng. 2014 Jan;61(1):76-84. doi: 10.1109/TBME.2013.2276770. Epub 2013 Aug 8.
Magnetic resonance (MR) microscopy typically employs microcoils for enhanced local signal-to-noise ratio (SNR). Planar (surface) microcoils, in particular, offer the potential to be configured into array elements as well as to enable the imaging of extremely small samples because of the uniformity and precision provided by microfabrication techniques. Microcoils, in general, however, are copper-loss dominant, and cryocooling methods have been successfully used to improve the SNR. Cryocooling of the matching network elements, in addition to the coil itself, has shown to provide the most improvement, but can be challenging with respect to cryostat requirements, cabling, and tuning. Here we present the development of a microfluidically cryocooled spiral microcoil with integrated microfabricated parallel plate capacitors, allowing for localized cryocooling of both the microcoil and the on-chip resonating capacitor to increase the SNR while keeping the sample-to-coil distance within the most sensitive imaging range of the microcoil. Inductive coupling was used instead of a direct transmission line connection to eliminate the physical connection between the microcoil and the tuning network so that a single cryocooling microfluidic channel could enclose both the microcoil and the on-chip capacitor with minimum loss in cooling capacity. Comparisons between the cooled and uncooled cases were made via Q-factor measurements and agreed well with the theoretically achievable improvement: the cooled integrated capacitor coil with inductive coupling achieved a factor of 2.6 improvement in Q-factor over a reference coil conventionally matched and tuned with high- Q varactors and capacitively connected to the transmission line.
磁共振(MR)显微镜通常采用微线圈来提高局部信噪比(SNR)。特别是平面(表面)微线圈,由于微加工技术提供的均匀性和精度,具有配置成阵列元件以及对极小样本进行成像的潜力。然而,一般来说,微线圈以铜损为主,低温冷却方法已成功用于提高信噪比。除了线圈本身,对匹配网络元件进行低温冷却已显示出最大的改善效果,但在低温恒温器要求、布线和调谐方面可能具有挑战性。在此,我们展示了一种微流体低温冷却螺旋微线圈的开发,该微线圈集成了微加工的平行板电容器,能够对微线圈和片上谐振电容器进行局部低温冷却,以提高信噪比,同时将样本与线圈的距离保持在微线圈最敏感的成像范围内。使用电感耦合而非直接传输线连接来消除微线圈与调谐网络之间的物理连接,以便单个低温冷却微流体通道能够以最小的冷却能力损失包围微线圈和片上电容器。通过品质因数测量对冷却和未冷却情况进行了比较,结果与理论上可实现的改善效果吻合良好:与传统上用高Q变容二极管匹配和调谐并电容性连接到传输线的参考线圈相比,具有电感耦合的冷却集成电容器线圈的品质因数提高了2.6倍。