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用于10.5特斯拉脑成像的具有增强信噪比性能的128通道接收阵列。

A 128-channel receive array with enhanced SNR performance for 10.5 tesla brain imaging.

作者信息

Lagore Russell L, Sadeghi-Tarakameh Alireza, Grant Andrea, Waks Matt, Auerbach Edward, Jungst Steve, DelaBarre Lance, Moeller Steen, Eryaman Yigitcan, Lattanzi Riccardo, Giannakopoulos Ilias, Vizioli Luca, Yacoub Essa, Schmidt Simon, Metzger Gregory J, Wu Xiaoping, Adriany Gregor, Ugurbil Kamil

出版信息

bioRxiv. 2024 Oct 22:2024.10.20.619294. doi: 10.1101/2024.10.20.619294.

Abstract

PURPOSE

To develop and characterize the performance of a 128-channel head array for brain imaging at 10.5 tesla and evaluate the potential of brain imaging at this unique, >10 tesla magnetic field.

METHODS

The coil is composed of a 16-channel self-decoupled loop transmit/receive array with a 112-loop receive-only (Rx) insert. Interactions between the outer transmitter and the inner 112Rx insert were mitigated using coaxial cable traps placed every 1/16 of a wavelength on each feed cable, locating most preamplifier boards outside the transmitter field and miniaturizing those placed directly on individual coils.

RESULTS

The 128-channel array described herein achieved 77% of ultimate intrinsic SNR in the center of the brain. Transmit field maps obtained experimentally on a phantom with and without the receive array were similar and matched EM simulations, leading to FDA approval for human imaging. Anatomical and functional data, including with power demanding sequences, were acquired successfully on human volunteers.

CONCLUSIONS

Counterintuitive to expectations based on magnetic fields ≤7T, the higher channel counts provided SNR gains centrally, capturing ∼80% uiSNR. Fraction of uiSNR achieved centrally in 64Rx, 80Rx, and 128Rx arrays suggested that a plateau was being reached at 80%. At this plateau, linear to approximately quadratic B dependent SNR gains for the periphery and the center, respectively, were observed for 10.5T relative 7T.

摘要

目的

开发并表征用于10.5特斯拉脑成像的128通道头部阵列的性能,并评估在这一独特的、大于10特斯拉磁场下进行脑成像的潜力。

方法

该线圈由一个16通道自解耦环发射/接收阵列和一个112环仅接收(Rx)插入件组成。通过在每根馈电电缆上每隔1/16波长放置同轴电缆陷波器,将外部发射器与内部112Rx插入件之间的相互作用降至最低,将大多数前置放大器板放置在发射器场之外,并将直接放置在单个线圈上的前置放大器板小型化。

结果

本文所述的128通道阵列在脑中心实现了最终固有信噪比的77%。在有和没有接收阵列的体模上实验获得的发射场图相似且与电磁模拟结果匹配,从而获得了美国食品药品监督管理局(FDA)对人体成像的批准。在人类志愿者身上成功采集了包括高功率需求序列在内的解剖学和功能数据。

结论

与基于≤7T磁场的预期相反,更多的通道数在中心区域提供了信噪比增益,捕获了约80%的固有信噪比(uiSNR)。在64Rx、80Rx和128Rx阵列中,中心区域实现的uiSNR比例表明在80%时达到了一个平稳期。在这个平稳期,相对于7T,10.5T时分别观察到外围和中心的信噪比增益与磁场呈线性至近似二次方关系。

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