Abstract

In this article, an approach to designing and developing an ultrahigh frequency (≤600 MHz) ultrasound analog frontend with Golay coded excitation sequence for high resolution imaging applications is presented. For the purpose of visualizing specific structures or measuring functional responses of micron-sized biological samples, a higher frequency ultrasound is needed to obtain a decent spatial resolution while it lowers the signal-to-noise ratio, the difference in decibels between the signal level and the background noise level, due to the higher attenuation coefficient. In order to enhance the signal-to-noise ratio, conventional approach was to increase the transmit voltage level. However, it may cause damaging the extremely thin piezoelectric material in the ultrahigh frequency range. In this paper, we present a novel design of ultrahigh frequency (≤600 MHz) frontend system capable of performing pseudo Golay coded excitation by configuring four independently operating pulse generators in parallel and the consecutive delayed transmission from each channel. Compared with the conventional monocycle pulse approach, the signal-to-noise ratio of the proposed approach was improved by 7–9 dB without compromising the spatial resolution. The measured axial and lateral resolutions of wire targets were 16.4 µm and 10.6 µm by using 156 MHz 4 bit pseudo Golay coded excitation, respectively and 4.5 µm and 7.7 µm by using 312 MHz 4 bit pseudo Golay coded excitation, respectively.

Highlights

  • The coded excitation technique is well-known for enhancing the signal-to-noise ratio (SNR) in such frequency ranges; the device for very high frequency (VHF) coded excitation would only be available in combination with bench top devices which delivers transmit voltage much less efficiently and does not effectively block external noise source with several cable connections, which may lead to poor SNR

  • In order to address this problem, we present a prototype of 4 channel ultrahigh frequency (UHF) ultrasound analog frontend module capable of performing coded excitation imaging for the enhancement of the SNR

  • The design of UHF ultrasound analog frontend system with pseudo Golay coded excitation sequence for high resolution imaging applications was presented in this paper

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Summary

Introduction

There have been several studies on accurately visualizing living tissue with minimal effects on normal physiology and structures with ultrasound, inaudible sound having the frequency range over 20 kHz and transmitted or detected by transducers employing piezoelectric materials [1,2,3,4].By increasing the operational frequency of ultrasound technologies, the improved image resolution enables the exploration for the precisely quantitative indicator of arteriosclerosis using intravascular ultrasound (IVUS) imaging, highly detailed images of outer layers of skin, anterior segment of the eye, and measurement of the mechanical properties of small objects [5,6,7,8,9]. As the higher frequency ultrasound exhibits greater attenuation than the lower frequency ultrasound, the increased signal loss was observed and the signal-to-noise ratio (SNR), the ratio of signal power to the noise power, was inherently sacrificed. For these reasons, commercially available ultrasound imaging systems in the very high frequency (VHF) range between 30 MHz and 300 MHz and ultrahigh frequency (UHF) range from 300 MHz to Sensors 2018, 18, 2598; doi:10.3390/s18082598 www.mdpi.com/journal/sensors. UHF analog frontend system with coded exaction is even not currently available in the market

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