IEEE Trans Biomed Eng. 2020 Dec;67(12):3380-3391. doi: 10.1109/TBME.2020.2986284. Epub 2020 Nov 19.
Intravascular ultrasound (IVUS) tissue harmonic imaging (THI) is a useful vessel imaging technique that can provide deep penetration depth as well as high spatial and contrast resolution. Typically, a high-frequency IVUS transducer for THI requires a broad bandwidth or dual-frequency bandwidth. However, it is very difficult to make an IVUS transducer with a frequency bandwidth covering from the fundamental frequency to the second harmonic or a dual-peak at the desired frequency. To solve this problem, in this study, we applied the polarization inversion technique (PIT) to the IVUS transducer for THI. The PIT makes it relatively easy to design IVUS transducers with suitable frequency characteristics for THI depending on the inversion ratio of the piezoelectric layer and specifications of the passive materials. In this study, two types of IVUS transducers based on the PIT were developed for THI. One is a front-side inversion layer (FSIL) transducer with a broad bandwidth, and the other is a back-side inversion layer (BSIL) transducer with a dual-frequency bandwidth. These transducers were designed using finite element analysis (FEA)-based simulation, and the prototype transducers were fabricated. Subsequently, the performance was evaluated by not only electrical impedance and pulse-echo response tests but also B-mode imaging tests with a 25 μm tungsten wire and tissue-mimicking gelatin phantoms. The FEA simulation and experimental results show that the proposed scheme can successfully implement the tissue harmonic IVUS image, and thus it can be one of the promising techniques for developing IVUS transducers for THI.
血管内超声(IVUS)组织谐波成像(THI)是一种有用的血管成像技术,它可以提供深穿透深度以及高空间和对比分辨率。通常,用于 THI 的高频 IVUS 换能器需要宽频带或双频带宽。然而,很难制造出具有从基频到二次谐波或在所需频率处的双峰值的频率带宽的 IVUS 换能器。为了解决这个问题,在本研究中,我们将极化反转技术(PIT)应用于用于 THI 的 IVUS 换能器。PIT 使得根据压电层的反转比和无源材料的规格设计具有适合 THI 的频率特性的 IVUS 换能器相对容易。在本研究中,开发了两种基于 PIT 的用于 THI 的 IVUS 换能器。一种是具有宽频带的前侧反转层(FSIL)换能器,另一种是具有双频带宽的背侧反转层(BSIL)换能器。这些换能器使用基于有限元分析(FEA)的模拟进行设计,并制造了原型换能器。随后,通过电阻抗和脉冲回波响应测试以及使用 25 μm 钨丝和组织模拟明胶体模的 B 模式成像测试评估了性能。FEA 模拟和实验结果表明,所提出的方案可以成功地实现组织谐波 IVUS 图像,因此它可以成为开发用于 THI 的 IVUS 换能器的有前途的技术之一。