Abstract
In ultrasound imaging, it is an everlasting pursuit to achieve higher and higher resolutions to visualize finer structures within the imaged area. However, the current mainstream approach to super-resolution ultrasound imaging heavily relies on ultrasound localization microscopy, which necessitates costly contrast agents and thousands of image syntheses for each super-resolution image. Consequently, this method suffers from low frame rates. In this study, we propose a novel super-resolution imaging technique that leverages a focused dual-frequency transducer and a dual-angle fusion method. This article outlines the design and fabrication process of a 0.9/3.9 MHz dual-frequency transducer with a focal point located approximately 17.5 mm away. The effectiveness of the super-resolution imaging method was validated using a customized phantom, successfully discerning copper wires that were spaced 0.15 mm apart. The axial resolution is 0.05 mm (0.13lambda ) and the lateral resolution is 0.23 mm (0.60lambda ) compared to the high-frequency wavelength. This design offers a promising approach for super-resolution ultrasound imaging without the need for contrast agents.
| Original language | English |
|---|---|
| Article number | 9517310 |
| Journal | IEEE Transactions on Instrumentation and Measurement |
| Volume | 73 |
| DOIs | |
| State | Published - 2024 |
Keywords
- Dual-frequency ultrasound transducer
- dual-orientation fusion
- quasi-monopolar ultrasound pulse
- super-resolution
- ultrasound imaging
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