Flexible high-density mapping catheter
Aspects of the present disclosure are directed to flexible high-density mapping catheters with a planar array of high-density mapping electrodes near a distal tip portion. These mapping catheters may be used to detect electrophysiological characteristics of tissue in contact with the electrodes, and may be used to diagnose cardiac conditions, such as cardiac arrhythmias for example.
1 . An electrophysiology catheter, the catheter comprising:
an elongated catheter body comprising a proximal end and a distal end, and defining a catheter longitudinal axis extending between the proximal end and the distal end;
a flexible tip assembly coupled to the distal end of the catheter body and adapted to conform to tissue, the flexible tip assembly comprising a plurality of electrode-carrying arms, the plurality of electrode-carrying arms comprising:
a first longitudinally-extending outer arm;
a second longitudinally-extending outer arm; and
at least two longitudinally-extending inner arms,
wherein the first and second longitudinally-extending outer arms form an outer frame and the at least two longitudinally-extending inner arms form at least one inner frame, the at least one inner frame being at least partially disposed within the outer frame;
a plurality of electrodes disposed on each of the plurality of electrode-carrying arms;
a first magnetic sensor disposed on the first longitudinally-extending outer arm; and
a second magnetic sensor disposed on the second longitudinally-extending outer arm,
wherein the plurality of electrodes are equally spaced along both a length of each arm and across adjacent arms of the plurality of electrode-carrying arms.
2 . The electrophysiology catheter of claim 1 , wherein the at least one inner frame is longitudinally offset within the outer frame.
3 . The electrophysiology catheter of claim 1 , wherein the first outer arm and the second outer arm form a unitary piece of the outer frame.
4 . The electrophysiology catheter of claim 1 , wherein the flexible tip assembly includes at least 4 arms, and each arm includes at least 4 electrodes.
5 . The electrophysiology catheter of claim 1 , wherein the plurality of electrode-carrying arms are generally parallel to the catheter longitudinal axis.
6 . The electrophysiology catheter of claim 1 , further comprising a proximal bushing coupled to the distal end of the catheter body, wherein the proximal bushing is configured to hold the plurality of electrode-carrying arms at proximal portions thereof.
7 . The electrophysiology catheter of claim 1 , wherein the at least one inner frame does not intersect the outer frame.
8 . The electrophysiology catheter of claim 1 , wherein the catheter is configured for diagnosing a cardiac arrhythmia in a patient and the plurality of electrodes are configured to monitor mapping electrical signals produced by a heart tissue of the patient.
9 . The electrophysiology catheter of claim 1 , wherein each of the longitudinally-extending arms converge at a distal portion of the flexible tip assembly.
10 . An electrophysiology ablation catheter, the ablation catheter comprising:
an elongated catheter body comprising a proximal end and a distal end, and defining a catheter longitudinal axis extending between the proximal end and the distal end;
a flexible tip assembly coupled to the distal end of the catheter body and adapted to conform to and contact tissue, wherein the flexible tip assembly includes a plurality of electrode-carrying arms;
a plurality of electrodes disposed on each of the plurality of electrode-carrying arms, wherein the plurality of electrodes are configured to selectively ablate target tissue; and
a plurality of flexible electronic circuit boards that are communicatively and mechanically coupled to the plurality of electrodes,
wherein the plurality of electrodes are equally spaced along both a length of each arm and across adjacent arms.
11 . The electrophysiology ablation catheter of claim 10 , wherein the plurality of electrodes are further configured to selectively ablate the tissue using bipolar ablation.
12 . The electrophysiology ablation catheter of claim 10 , wherein the plurality of electrodes are further configured to selectively ablate the tissue using unipolar ablation.
13 . The electrophysiology ablation catheter of claim 10 , wherein the flexible tip assembly comprises a two-sided planar array of the plurality of electrodes, wherein the electrodes are configured for contacting tissue on a front side and a back side of the planar array.
14 . The electrophysiology ablation catheter of claim 10 , wherein the plurality of electrode-carrying arms are configured to maintain the plurality of electrodes in a spaced relationship such that each of the plurality of electrodes captures separate data about electrical activity of cardiac tissue adjacent to the plurality of electrodes.
15 . The electrophysiology ablation catheter of claim 10 , wherein each of the electrode-carrying arms converge at a distal portion of the flexible tip assembly to form the plurality of loops.
16 . The electrophysiology ablation catheter of claim 15 , wherein a distal portion of the plurality of loops are axially offset from each other.
17 . The electrophysiology ablation catheter of claim 15 , wherein the plurality of loops do not intersect each other.
18 . The electrophysiology ablation catheter of claim 10 , wherein the flexible tip assembly includes at least 4 arms, and each arm includes at least 4 electrodes.
19 . The electrophysiology ablation catheter of claim 10 , wherein the plurality of electrodes are further configured for radiofrequency ablation.
20 . The electrophysiology ablation catheter of claim 10 , wherein the plurality of electrode-carrying arms comprises a first outer arm and a second outer arm, wherein a first magnetic sensor is disposed on the first outer arm and a second magnetic sensor is disposed on the second outer arm.