Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8130025 | Ultrasonics | 2018 | 20 Pages |
Abstract
Commercially available intracardiac echo (ICE) catheters face a trade-off between viewing depth and resolution. Frequency-tunable ICE probes would offer versatility of choice between penetration or resolution imaging within a single device. In this phantom study, the imaging performance of a novel, frequency-tunable, 32-element, 1-D CMUT array integrated with front-end electronics is evaluated. Phased-array ultrasound imaging with a forward-looking CMUT probe prototype operated beyond collapse mode at voltages up to three times higher than the collapse voltage (-65â¯V) is demonstrated. Imaging performance as a function of bias voltage (-70â¯V to -160â¯V), transmit pulse frequency (5-25â¯MHz), and number of transmit pulse cycles (1-3) is quantified, based on which penetration, resolution, and generic imaging modes are identified. It is shown that by utilizing the concept of frequency tuning, images with different characteristics can be generated trading-off the resolution and penetration depth. The penetration mode provides imaging up to 71â¯mm in the tissue-mimicking phantom, axial resolution of 0.44â¯mm, and lateral resolution of 0.12â¯rad. In the resolution mode, axial resolution of 0.055â¯mm, lateral resolution of 0.035â¯rad, and penetration depth of 16â¯mm are measured. These results show what this CMUT array has the potential versatile characteristics needed for intracardiac imaging, despite its relatively small transducer aperture size of 2â¯mmâ¯Ãâ¯2â¯mm imposed by the clinical application.
Related Topics
Physical Sciences and Engineering
Physics and Astronomy
Acoustics and Ultrasonics
Authors
Martin PekaÅ, Nenad MihajloviÄ, Harm Belt, Alexander F. Kolen, Jeannet van Rens, Frank Budzelaar, Bas Jacobs, Johan G. Bosch, Hendrik J. Vos, Debbie Rem-Bronneberg, Gijs van Soest, Antonius F.W. van der Steen,