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A 35 MHz/105 MHz Dual-Element Focused Transducer for Intravascular Ultrasound Tissue Imaging Using the Third Harmonic

机译:35 MHz / 105 MHz双元素聚焦换能器用于使用第三谐波的血管内超声组织成像

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摘要

The superharmonic imaging of tissue has the potential for high spatial and contrast resolutions, compared to the fundamental and second harmonic imaging. For this technique, the spectral bandwidth of an ultrasound transducer is divided for transmission of ultrasound and reception of its superharmonics (i.e., higher than the second harmonic). Due to the spectral division for the transmission and reception, transmitted ultrasound energy is not sufficient to induce superharmonics in media without using contrast agents, and it is difficult that a transducer has a −6 dB fractional bandwidth of higher than 100%. For the superharmonic imaging of tissue, thus, multi-frequency array transducers are the best choice if available; transmit and receive elements are separate and have different center frequencies. However, the construction of a multi-frequency transducer for intravascular ultrasound (IVUS) imaging is particularly demanding because of its small size of less than 1 mm. Here, we report a recently developed dual-element focused IVUS transducer for the third harmonic imaging of tissue, which consists of a 35-MHz element for ultrasound transmission and a 105-MHz element for third harmonic reception. For high quality third harmonic imaging, both elements were fabricated to have the same focus at 2.5 mm. The results of tissue mimicking phantom tests demonstrated that the third harmonic images produced by the developed transducer had higher spatial resolution and deeper imaging depth than the fundamental images.
机译:与基本和二次谐波成像相比,组织的超谐波成像具有高空间分辨率和对比度分辨率的潜力。对于该技术,超声换能器的频谱带宽被划分用于超声的发送和其超谐波的接收(即,高于二次谐波)。由于用于发送和接收的频谱划分,在不使用造影剂的情况下,所发送的超声能量不足以在介质中引起超谐波,并且换能器的-6 dB分数带宽很难超过100%。因此,对于组织的超谐波成像,如果可以的话,多频阵列换能器是最佳选择。发送和接收元素是分开的,并且具有不同的中心频率。然而,由于其小于1mm的小尺寸,因此特别需要用于血管内超声(IVUS)成像的多频换能器的构造。在这里,我们报告了最近开发的用于双谐波成像的双元素聚焦IVUS换能器,该换能器由用于超声传输的35 MHz元件和用于三次谐波接收的105 MHz元件组成。对于高质量的三次谐波成像,两个元件都制造为在2.5 mm处具有相同的焦点。组织模拟体模测试的结果表明,与基本图像相比,由开发的换能器产生的三次谐波图像具有更高的空间分辨率和更深的成像深度。

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