Wodnicki Robert, Foiret Josquin, Liu Baoqiang, Lu Ning, Sun Xin, Zhang Junhang, Kang Haochen, Fu Lei, Notard Christophe, Legros Mathieu, Chang Chi-Feng, Yen Jesse T, Zhou Qifa, Ferrara Katherine W
IEEE Trans Ultrason Ferroelectr Freq Control. 2025 Jul;72(7):962-978. doi: 10.1109/TUFFC.2025.3570732.
Large-aperture 2-D arrays benefit from improved lateral resolution at depth, due to the dependence of beamwidth on the inverse of the aperture width, and improved contrast resolution due to electronic focusing. We have been developing modular large-aperture multirow 1024 (64 azimuth $\times 16$ elevation) element, 2-D arrays based on custom-designed and locally integrated application-specific integrated circuit (ASIC) multiplexing devices. The implemented handheld large-array prototype probe for human imaging consists of multiple rows with multiplexed synthetic aperture in elevation and planewave transmits in azimuth. The pitch of the acoustic array is $650\mu $ m in azimuth by $1000\mu $ m in elevation, with a 2.4 MHz fractional bandwidth (FBW =88%) center frequency and total active aperture of $42\times 16$ mm. We interfaced the large aperture array and multiplexing ASICs, along with local preamplifier devices for improved sensitivity, and a local FPGA for digital ASIC control, to a configurable ultrasound imaging platform and demonstrate 2-D orthogonal and full 3D beamformed imaging. The implemented imaging prototype includes local buffering for improved sensitivity of the high-impedance 2-D array elements, and realizes penetration down to 140 mm, experimental lateral/axial resolution at 67 mm of 1.1/0.4 mm, and maximum experimental CNR of 2.1 for 8 mm cylindrical cysts and 1.7 for 10 mm spherical cysts. We demonstrate in vivo imaging of liver in human volunteers utilizing a hermetically sealed and safety-validated handheld prototype of the large 2-D array. Preliminary results are promising for clinical imaging in future studies.
大孔径二维阵列得益于深度方向上横向分辨率的提高,这是由于波束宽度与孔径宽度的倒数相关,同时也得益于电子聚焦而提高了对比度分辨率。我们一直在基于定制设计和本地集成的专用集成电路(ASIC)复用器件,开发模块化大孔径多行1024(64方位×16仰角)元件的二维阵列。已实现的用于人体成像的手持式大阵列原型探头由多行组成,在仰角方向上具有复用合成孔径,在方位方向上采用平面波发射。声学阵列在方位方向上的间距为650μm,在仰角方向上为1000μm,中心频率为2.4MHz,分数带宽(FBW = 88%),总有效孔径为42×16mm。我们将大孔径阵列和复用ASIC与用于提高灵敏度的本地前置放大器器件以及用于数字ASIC控制的本地FPGA连接到一个可配置的超声成像平台,并展示了二维正交和全三维波束形成成像。已实现的成像原型包括用于提高高阻抗二维阵列元件灵敏度的本地缓冲,并实现了140mm的穿透深度、在67mm处的实验横向/轴向分辨率为1.1/0.4mm,以及对于8mm圆柱形囊肿的最大实验对比度噪声比为2.1,对于10mm球形囊肿为1.7。我们利用大二维阵列的气密密封且经过安全验证的手持式原型,展示了在人体志愿者肝脏中的体内成像。初步结果对于未来研究中的临床成像很有前景。