Butterfly Network, Inc., Guilford, CT 06437
Butterfly Network, Inc., Guilford, CT 06437.
Proc Natl Acad Sci U S A. 2021 Jul 6;118(27). doi: 10.1073/pnas.2019339118.
Over the past half-century, ultrasound imaging has become a key technology for assessing an ever-widening range of medical conditions at all stages of life. Despite ultrasound's proven value, expensive systems that require domain expertise in image acquisition and interpretation have limited its broad adoption. The proliferation of portable and low-cost ultrasound imaging can improve global health and also enable broad clinical and academic studies with great impact on the fields of medicine. Here, we describe the design of a complete ultrasound-on-chip, the first to be cleared by the Food and Drug Administration for 13 indications, comprising a two-dimensional array of silicon-based microelectromechanical systems (MEMS) ultrasonic sensors directly integrated into complementary metal-oxide-semiconductor-based control and processing electronics to enable an inexpensive whole-body imaging probe. The fabrication and design of the transducer array with on-chip analog and digital circuits, having an operating power consumption of 3 W or less, are described, in which approximately 9,000 seven-level feedback-based pulsers are individually addressable to each MEMS element and more than 11,000 amplifiers, more than 1,100 analog-to-digital converters, and more than 1 trillion operations per second are implemented. We quantify the measured performance and the ability to image areas of the body that traditionally takes three separate probes. Additionally, two applications of this platform are described-augmented reality assistance that guides the user in the acquisition of diagnostic-quality images of the heart and algorithms that automate the measurement of cardiac ejection fraction, an indicator of heart health.
在过去的半个世纪中,超声成象已成为评估生命各个阶段各种医疗状况的关键技术。尽管超声已被证明具有价值,但需要在图像采集和解释方面具有专业知识的昂贵系统限制了其广泛应用。便携式和低成本超声成像的普及可以改善全球健康状况,也可以进行广泛的临床和学术研究,对医学领域产生重大影响。在这里,我们描述了一种完整的超声芯片的设计,这是第一个获得美国食品和药物管理局批准的用于 13 种适应症的超声芯片,它由直接集成到互补金属氧化物半导体(CMOS)控制和处理电子设备中的硅基微机电系统(MEMS)超声传感器二维阵列组成,从而实现了低成本的全身成像探头。描述了具有片上模拟和数字电路的换能器阵列的制造和设计,其工作功率消耗为 3 W 或更低,其中大约 9000 个基于七级反馈的脉冲器可单独寻址到每个 MEMS 元件,并且实现了超过 11000 个放大器、超过 1100 个模数转换器和超过每秒 1 万亿次的运算。我们对测量性能和成像传统上需要三个独立探头的身体区域的能力进行了量化。此外,还描述了该平台的两个应用程序——增强现实辅助,引导用户获取心脏的诊断质量图像;以及自动测量心脏射血分数(心脏健康的一个指标)的算法。