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用于治疗超声应用的电容式微机械超声换能器。

Capacitive micromachined ultrasonic transducers for therapeutic ultrasound applications.

机构信息

Department of Electrical Engineering, Stanford University, Stanford, CA 94309, USA.

出版信息

IEEE Trans Biomed Eng. 2010 Jan;57(1):114-23. doi: 10.1109/TBME.2009.2026909. Epub 2009 Jul 21.

Abstract

Therapeutic ultrasound guided by MRI is a noninvasive treatment that potentially reduces mortality, lowers medical costs, and widens accessibility of treatments for patients. Recent developments in the design and fabrication of capacitive micromachined ultrasonic transducers (CMUTs) have made them competitive with piezoelectric transducers for use in therapeutic ultrasound applications. In this paper, we present the first designs and prototypes of an eight-element, concentric-ring, CMUT array to treat upper abdominal cancers. This array was simulated and designed to focus 30-50 mm into tissue, and ablate a 2- to 3-cm-diameter tumor within 1 h. Assuming a surface acoustic output pressure of 1 MPa peak-to-peak (8.5 W/cm (2)) at 2.5 MHz, we simulated an array that produced a focal intensity of 680 W/cm (2) when focusing to 35 mm. CMUT cells were then designed to meet these frequency and surface acoustic intensity specifications. These cell designs were fabricated as 2.5 mm x 2.5 mm test transducers and used to verify our models. The test transducers were shown to operate at 2.5 MHz with an output pressure of 1.4 MPa peak-to-peak (16.3 W/cm (2)). With this CMUT cell design, we fabricated a full eight-element array. Due to yield issues, we only developed electronics to focus the four center elements of the array. The beam profile of the measured array deviated from the simulated one because of the crosstalk effects; the beamwidth matched within 10% and sidelobes increased by two times, which caused the measured gain to be 16.6 compared to 27.4.

摘要

MRI 引导的治疗性超声波是一种非侵入性的治疗方法,有潜力降低死亡率、降低医疗成本,并扩大治疗的可及性。电容式微机械超声换能器 (CMUT) 的设计和制造方面的最新进展使其在治疗性超声应用中与压电换能器具有竞争力。在本文中,我们提出了用于治疗上腹部癌症的第一个八元件同心环 CMUT 阵列的设计和原型。该阵列经过模拟和设计,可将焦点聚焦在组织内 30-50 毫米处,并在 1 小时内消融 2-3 厘米直径的肿瘤。假设表面声输出峰值为 1 MPa(8.5 W/cm (2)),频率为 2.5 MHz,我们模拟了一个在聚焦到 35 毫米时产生 680 W/cm (2) 焦点强度的阵列。然后设计 CMUT 单元以满足这些频率和表面声强度规格。这些单元设计被制造为 2.5mm x 2.5mm 的测试换能器,并用于验证我们的模型。测试换能器在 2.5 MHz 下工作,输出峰值为 1.4 MPa(16.3 W/cm (2))。使用这种 CMUT 单元设计,我们制造了完整的八元件阵列。由于产量问题,我们仅开发了用于聚焦阵列四个中心元件的电子设备。由于串扰效应,测量的阵列的波束轮廓与模拟的不一致;波束宽度相差 10%以内,旁瓣增加了两倍,这导致测量增益为 16.6,而模拟增益为 27.4。

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