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用于超声相位畸变校正的声电时间反转

Acoustoelectric Time-Reversal for Ultrasound Phase-Aberration Correction.

作者信息

Preston Chet, Alvarez Alexander M, Allard Margaret, Barragan Andres, Witte Russell S

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2023 Aug;70(8):854-864. doi: 10.1109/TUFFC.2023.3292595. Epub 2023 Aug 2.

Abstract

Acoustoelectric imaging (AEI) is a technique that combines ultrasound (US) with radio frequency recording to detect and map local current source densities. This study demonstrates a new method called acoustoelectric time reversal (AETR), which uses AEI of a small current source to correct for phase aberrations through a skull or other US-aberrating layers with applications to brain imaging and therapy. Simulations conducted at three different US frequencies (0.5, 1.5, and 2.5 MHz) were performed through media layered with different sound speeds and geometries to induce aberrations of the US beam. Time delays of the acoustoelectric (AE) signal from a monopole within the medium were calculated for each element to enable corrections using AETR. Uncorrected aberrated beam profiles were compared with those after applying AETR corrections, which demonstrated a strong recovery (29%-100%) of lateral resolution and increases in focal pressure up to 283%. To further demonstrate the practical feasibility of AETR, we further conducted bench-top experiments using a 2.5 MHz linear US array to perform AETR through 3-D-printed aberrating objects. These experiments restored lost lateral restoration up to 100% for the different aberrators and increased focal pressure up to 230% after applying AETR corrections. Cumulatively, these results highlight AETR as a powerful tool for correcting focal aberrations in the presence of a local current source with applications to AEI, US imaging, neuromodulation, and therapy.

摘要

声电成像(AEI)是一种将超声(US)与射频记录相结合以检测和绘制局部电流源密度的技术。本研究展示了一种名为声电时间反转(AETR)的新方法,该方法利用小电流源的声电成像来校正穿过颅骨或其他超声畸变层的相位像差,并应用于脑成像和治疗。通过具有不同声速和几何形状的分层介质,在三种不同的超声频率(0.5、1.5和2.5兆赫)下进行模拟,以诱导超声束的像差。计算介质中来自单极子的声电(AE)信号对每个元件的时间延迟,以便使用AETR进行校正。将未校正的像差波束轮廓与应用AETR校正后的轮廓进行比较,结果表明横向分辨率有显著恢复(29%-100%),焦压增加高达283%。为了进一步证明AETR的实际可行性,我们进一步进行了台式实验,使用2.5兆赫线性超声阵列通过3D打印的畸变物体执行AETR。这些实验在应用AETR校正后,不同畸变器的横向分辨率恢复高达100%,焦压增加高达230%。总体而言,这些结果突出了AETR作为一种强大工具,可用于在存在局部电流源的情况下校正焦像差,并应用于AEI、超声成像、神经调节和治疗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c66f/10493188/aedbc030bc33/nihms-1922120-f0001.jpg

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