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Dual-frequency transducer for nonlinear contrast agent imaging

机译:用于非线性造影剂成像的双频传感器

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Detection of high-order nonlinear components issued from microbubbles has emerged as a sensitive method for contrast agent imaging. Nevertheless, the detection of these high-frequency components, including the third, fourth, and fifth harmonics, remains challenging because of the lack of transducer sensitivity and bandwidth. In this context, we propose a new design of imaging transducer based on a simple fabrication process for high-frequency nonlinear imaging. The transducer is composed of two elements: the outer low-frequency (LF) element was centered at 4 MHz and used in transmit mode, whereas the inner high-frequency (HF) element centered at 14 MHz was used in receive mode. The center element was pad-printed using a lead zirconate titanate (PZT) paste. The outer element was molded using a commercial PZT, and curved porous unpoled PZT was used as backing. Each piezoelectric element was characterized to determine the electromechanical performance with thickness coupling factor around 45%. After the assembly of the two transducer elements, hydrophone measurements (electroacoustic responses and radiation patterns) were carried out and demonstrated a large bandwidth (70% at -3 dB) of the HF transducer. Finally, the transducer was evaluated for contrast agent imaging using contrast agent microbubbles. The results showed that harmonic components (up to the sixth harmonic) of the microbubbles were successfully detected. Moreover, images from a flow phantom were acquired and demonstrated the potential of the transducer for high-frequency nonlinear contrast imaging.
机译:从微气泡发出的高阶非线性成分的检测已成为一种造影剂成像的灵敏方法。然而,由于缺少换能器灵敏度和带宽,因此检测包括三,四,五次谐波在内的这些高频分量仍然具有挑战性。在这种情况下,我们提出了一种基于高频非线性成像简单制造过程的成像换能器新设计。换能器由两个元件组成:外部低频(LF)元件以4 MHz为中心并用于发射模式,而内部14 MHz高频(HF)元件用于接收模式。中心元素使用锆钛酸铅(PZT)浆料进行移印。使用商用PZT模制外部元件,并使用弯曲的多孔未极化PZT作为背衬。每个压电元件的特征在于确定机电性能,厚度耦合系数约为45%。在组装两个换能器元件之后,进行了水听器测量(电声响应和辐射图),并证明了HF换能器的大带宽(在-3 dB时为70%)。最后,使用造影剂微泡评估换能器的造影剂成像。结果表明,成功地检测到了微泡的谐波分量(直到第六次谐波)。此外,从流幻影获取图像,并证明了换能器用于高频非线性对比成像的潜力。

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