DocumentCode :
2350532
Title :
5G-6 Forward Looking Intracardiac Imaging Catheters for Electrophysiology
Author :
Stephens, Douglas N. ; Cannata, Jonathan ; Liu, Ruibin ; Shung, K. Kirk ; Oralkan, Omer ; Nikoozadeh, Amin ; Khuri-Yakub, Pierre ; Nguyen, Hien ; Chia, Raymond ; Dentinger, Aaron ; Wildes, Douglas ; Thomenius, Kai E. ; Mahajan, Aman ; Shivkumar, Kalyanam
Author_Institution :
California Univ., Davis, CA
fYear :
2006
fDate :
2-6 Oct. 2006
Firstpage :
702
Lastpage :
705
Abstract :
Minimally invasive electrophysiology interventions to treat cardiac arrhythmias are increasing worldwide due to advances in technologies that enable more effective clinical procedures. A forward imaging ultrasound catheter design has been developed and tested to advance the methods of integration of intracardiac imaging and electrophysiology sensing. The first catheters built have been constructed with a 9F (3 mm) shaft and a large (15F) tip to support experimental wire ports adjacent to a 24 element phased array operating at 14 MHz. The final tip design construction size will be 9F and possess an integrated metal electrode at the catheter distal end. Two forward looking array designs have been developed in parallel to produce two contrasting fine pitch (65 microns) 24 element phased array construction approaches. The first array has been assembled with a standard 2-2 composite PZT technology with the flex circuit mounted on the front facing side, and the second design is a cMUT version with a flip-chip bonded silicon die bonded to a backside flex circuit. The cMUT design requires a special interface to assure a safe element biasing scheme while enhancing the array´s linearity and sensitivity. The first PZT array prototypes, built without explicit matching layers, have been characterized and agree with FEA and KLM analyses in operation at 14 MHz. Matching layer variations have been used on the front layer flex circuit to optimize the sensitivity and bandwidth of the PZT arrays while minimizing the thermal boundary layer. Specially designed assembly approaches addressed the challenging forward looking array configurations that utilize interconnection flex circuits with bend radii at 250 microns. Animal studies have been performed utilizing beam forming adaptations for the forward looking imaging catheter operation on a Vingmed Vivid-7 system. The first piezoceramic array devices were used successfully to image the myocardium of the right atrium of a pig while simult- aneous tissue ablation was performed
Keywords :
bioelectric phenomena; biological techniques; biomedical ultrasonics; cardiology; micromechanical devices; piezoelectric transducers; ultrasonic transducer arrays; 14 MHz; 2-2 composite PZT technology; 3 mm; 500 micron; FEA analysis; KLM analysi; PZT array bandwidth; Vingmed Vivid-7 system; array linearity; array sensitivity; cMUT; capacitive micromachined ultrasonic transducers; cardiac arrhythmias; electrophysiology sensing; element biasing; flip-chip bonded silicon; forward imaging ultrasound catheter design; forward looking intracardiac imaging catheters; integrated metal electrode; interconnection flex circuit; minimally invasive electrophysiology; myocardium imaging; phased array; piezoceramic array devices; piezoelectric transducers; pig right atrium; thermal boundary layer; tissue ablation; Assembly; Bonding; Catheters; Flexible electronics; Minimally invasive surgery; Phased arrays; Shafts; Testing; Ultrasonic imaging; Wire;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium, 2006. IEEE
Conference_Location :
Vancouver, BC
ISSN :
1051-0117
Print_ISBN :
1-4244-0201-8
Electronic_ISBN :
1051-0117
Type :
conf
DOI :
10.1109/ULTSYM.2006.191
Filename :
4152047
Link To Document :
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