研究目的
To develop eco-friendly highly sensitive lead-free transducers at 50-60 MHz for high-frequency biomedical ultrasonic imaging applications utilizing a new modified KNN-NTK-FM lead-free piezoelectric ceramic.
研究成果
The newly developed KNN-NTK-FM lead-free piezoelectric ceramic has quite a potential to replace the lead-based piezoelectric materials in building eco-friendly highly sensitive transducers for high-frequency biomedical ultrasonic imaging applications. The small aperture size of the transducers fabricated in this study also inspires further studies on employing the KNN-NTK-FM piezoceramic in the application of high-frequency ultrasonic array transducers which require small element area.
研究不足
The lateral resolution is not satisfactory because the transducer was not focused. Future development on focused transducers will improve the lateral resolution.
1:Experimental Design and Method Selection:
A new (K,Na)NbO3-KTiNbO5-BaZrO3-Fe2O3-MgO (KNN-NTK-FM) lead-free piezoelectric ceramic was prepared by a conventional solid-state reaction method. A needle transducer with a small active aperture size was designed and evaluated using KLM transducer equivalent circuit model-based modeling software (PiezoCAD).
2:Sample Selection and Data Sources:
The ceramic exhibits a very dense microstructure and enhanced piezoelectric characteristics.
3:List of Experimental Equipment and Materials:
Equipment includes an impedance analyzer (HP 4294A), a pulse-echo setup with a high-frequency ultrasonic pulser-receiver (Panametrics 5900PR), and a digitizer (GaGe EON 12-bit). Materials include KNN-NTK-FM piezoceramic, silver loaded epoxy, and parylene C.
4:Experimental Procedures and Operational Workflow:
The fabrication process involved lapping, polishing, sputtering with Cr/Au electrodes, curing matching layers and backing, dicing into small posts, and assembling into a stainless-steel needle.
5:Data Analysis Methods:
Electrical impedance, pulse-echo response, and insertion loss were measured. Imaging performance was evaluated using wire and agar phantoms, and ex vivo imaging studies.
独家科研数据包,助您复现前沿成果,加速创新突破
获取完整内容-
HP 4294A
4294A
Agilent Technologies
Impedance analyzer for measuring electrical impedance magnitude and phase.
-
PDS 2010
2010
Specialty Coating Systems
Parylene coater for vapor-depositing parylene onto the external surface of the transducer.
-
Panametrics 5900PR
5900PR
Olympus NDT Inc.
High-frequency ultrasonic pulser-receiver for exciting the transducer and receiving echo signals.
-
GaGe EON 12-bit digitizer
CS122G1
DynamicSignals LLC
Digitizer for digitizing echo signals at a sampling rate of 1 GHz/s.
-
PiezoCAD
Sonic Concepts
KLM transducer equivalent circuit model-based modeling software for simulating and optimizing transducer design.
-
NSC-3000 Sputter Coater
NSC-3000
Nano-Master, Inc.
Sputtering system for sputtering Cr/Au electrodes.
-
Tcar 864-1
864-1
Thermocarbon
Dicing saw for dicing the acoustic stack into small posts.
-
Parylene C
Specialty Coating Systems
Material for the second matching layer.
-
E-Solder 3022
3022
Von Roll Isola
Conductive silver paste selected as the backing material.
-
EPO-TEK 301
301
Epoxy Technology
Insulating epoxy used to fill into the gap between the post and the stainless-steel needle.
-
登录查看剩余8件设备及参数对照表
查看全部