IP Library Granted Patent US 12,605,205
Granted Patent B2
US 12,605,205 · App. 18/500,757 · Granted Apr 21, 2026

Active alignment system and method for optimizing optical coupling of multiplexer for laser-driven intravascular lithotripsy device

Inventors: Christopher A. Cook (Laguna Niguel, CA); Gerald D. Bacher (Carlsbad, CA); John F. Black (Bainbridge Island, WA)
Assignee: BOSTON SCIENTIFIC SCIMED, INC.
A61B18/245A61B2018/00369A61B2018/208A61B2018/2272
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Quick Facts
Patent No.
US 12,605,205
App. No.
18/500,757
Granted
Apr 21, 2026
Kind
B2
Abstract

A catheter system ( 100 ) for treating a treatment site ( 106 ) includes a first light source ( 124 ), a plurality of light guides ( 122 A), a multiplexer ( 128 ), a multiplexer alignment system ( 142 ), and a first beamsplitter ( 268 ). The first light source ( 124 ) generates a source beam ( 124 A). The multiplexer ( 128 ) receives the source beam ( 124 A), and alternatively directs the source beam ( 124 A) to each of the plurality of light guides ( 122 A). The multiplexer alignment system ( 142 ) is operatively coupled to the multiplexer ( 128 ). The multiplexer alignment system ( 142 ) includes a second light source ( 270 ) that generates a probe source beam ( 270 A) that is directed to scan across a guide proximal end ( 122 P) of each of the plurality of light guides ( 122 A) so that a time is determined to generate the source beam ( 124 A) so that the source beam ( 124 A) is optically coupled to the guide proximal end ( 122 P) of each of the plurality of light guides ( 122 A). The first beamsplitter ( 268 ) receives the source beam ( 124 A) and the probe source beam ( 270 A), and alternately directs the probe source beam ( 270 A) and the source beam ( 124 A) toward the guide proximal end ( 122 P) of each of the plurality of light guides ( 122 A).

Claims (46)

1 . A catheter system for treating a treatment site within or adjacent to a vessel wall or heart valve, the catheter system comprising:

a first light source that is configured to generate a source beam;

a plurality of light guides that are each configured to alternatively receive the source beam from the first light source, each light guide having a guide proximal end;

a multiplexer that is configured to receive the source beam from the first light source, the multiplexer being configured to alternatively direct the source beam from the first light source to each of the plurality of light guides;

a multiplexer alignment system that is operatively coupled to the multiplexer, the multiplexer alignment system including a second light source that is configured to generate a probe source beam, a second beamsplitter, and a photodetector, the probe source beam being configured to produce a backscattered energy beam that is scattered off of the guide proximal end of each of the plurality of light guides, the second beamsplitter being configured to receive the backscattered energy beam and direct at least a portion of the backscattered energy beam toward the photodetector, the photodetector being configured to generate a signal based at least in part on the at least a portion of the backscattered energy beam that is directed toward the photodetector;

a first beamsplitter that is configured to receive (i) the source beam from the first light source, and (ii) the probe source beam from the second light source, the first beamsplitter being configured to direct the probe source beam and the source beam toward the guide proximal end of each of the plurality of light guides with the probe source beam laterally offset a known distance from the source beam; and

a system controller that is configured to:

cause the second light source to generate the probe source beam toward the first beam splitter;

cause the multiplexer alignment system to scan the probe source beam across the guide proximal end of each of the plurality of light guides at a known speed;

receive the signal from the photodetector based on the backscattered energy beam;

determine a start time to generate the source beam based on the signal generated by the photodetector, the known distance, and the known speed so that the source beam is optically coupled to the guide proximal end of a light guide of the plurality of light guides when the first light source generates the source beam; and

cause the first light source to generate the source beam at the start time.

2 . The catheter system of claim 1 wherein the multiplexer alignment system is operatively coupled to the multiplexer so that the probe source beam is directed to scan across the guide proximal end of each of the plurality of light guides at a predetermined time prior to the source beam being directed toward the guide proximal end of each of the plurality of light guides.

3 . The catheter system of claim 1 wherein the multiplexer alignment system further includes coupling optics that are configured to focus the probe source beam to scan across the guide proximal end of each of the plurality of light guides.

4 . The catheter system of claim 3 wherein the multiplexer is configured to utilize the coupling optics to alternatively focus the source beam on the guide proximal end of each of the plurality of light guides.

5 . The catheter system of claim 1 wherein the first beamsplitter includes a dichroic beamsplitter.

6 . The catheter system of claim 1 wherein the first beamsplitter is configured to transmit one of the source beam and the probe source beam and to reflect the other of the source beam and the probe source beam.

7 . The catheter system of claim 1 further comprising an amplifier and signal processing electronics; and wherein the amplifier is configured to amplify the signal from the photodetector to provide an amplified signal that is directed to the signal processing electronics to determine an intensity of light energy contained within the backscattered energy beam.

8 . The catheter system of claim 7 wherein the system controller is configured to evaluate the intensity of light energy contained within the backscattered energy beam and determine optimal optical coupling between the probe source beam and the plurality of light guides.

9 . The catheter system of claim 1 wherein the multiplexer includes (i) a multiplexer base, (ii) a multiplexer stage that is movably supported on the multiplexer base, (iii) a stage mover that is configured to move the multiplexer stage in a single linear degree of freedom relative to the multiplexer base in response to a signal from the system controller, and (iv) a redirector that is mounted on the multiplexer stage; and wherein movement of the multiplexer stage relative to the multiplexer base is configured to result in corresponding movement of the redirector relative to the multiplexer base.

10 . The catheter system of claim 9 wherein the multiplexer further includes coupling optics that are mounted on the multiplexer stage, the coupling optics being configured to alternatively focus the source beam on the guide proximal end of each of the plurality of light guides; and wherein the source beam being received by the multiplexer initially impinges on the redirector, the redirector being configured to redirect the source beam toward the coupling optics.

11 . The catheter system of claim 1 wherein the plurality of light guides includes at least a first light guide and a second light guide; and wherein the system controller is configured to alternatingly direct the probe source beam and the source beam toward the guide proximal end of each of the first light guide and the second light guide so that (i) the probe source beam scans across the guide proximal end of the first light guide, (ii) the source beam subsequently scans across the guide proximal end of the first light guide, (iii) the probe source beam scans across the guide proximal end of the second light guide, and (iv) the source beam subsequently scans across the guide proximal end of the second light guide.

12 . The catheter system of claim 1 wherein system controller is configured to cause the source beam to be directed to the proximal end of the light guide while the causing the probe source to scan across the guide proximal end of each of the plurality of light guides.

13 . A catheter system for treating a treatment site within or adjacent to a vessel wall or heart valve, the catheter system comprising:

a first light source that is configured to generate a source beam;

a plurality of light guides that are each configured to receive the source beam from the first light source, each light guide having a guide proximal end, the plurality of light guides including at least a first light guide and a second light guide;

a multiplexer that is configured to receive the source beam from the first light source, the multiplexer being configured to direct the source beam from the first light source to each of the plurality of light guides;

a multiplexer alignment system that is operatively coupled to the multiplexer, the multiplexer alignment system including: a second light source that is configured to generate a probe source beam that is configured to be directed by the multiplexer alignment system; a first beamsplitter that is configured to receive (i) the source beam from the first light source, and (ii) the probe source beam from the second light source, the first beamsplitter being configured to direct the probe source beam and the source beam toward the guide proximal end of each of the first light guide and the second light guide with the source beam at a known offset distance from the probe source beam so that (i) the probe source beam scans across the guide proximal end of the first light guide, (ii) the source beam subsequently scans across the guide proximal end of the first light guide, (iii) the probe source beam scans across the guide proximal end of the second light guide, and (iv) the source beam subsequently scans across the guide proximal end of the second light guide, the probe source beam being configured to scan across the guide proximal end of each of the plurality of light guides to produce a backscattered energy beam that is scattered off of the guide proximal end of each of the plurality of light guides; and a photodetector that is configured to generate a signal based at least in part on the at least a portion of the backscattered energy beam that is directed toward the photodetector; and

a system controller that is configured to analyze the signal generated by the photodetector to determine optical coupling between the probe source and the plurality of light guides and cause the first light source to generate the source beam at a start time to optically couple the source beam with the proximal end of one or both of the first light guide and the second light guide, the start time being determined by the system controller based on the signal generated by the photodetector and the known offset distance.

14 . The catheter system of claim 13 wherein the plurality of light guides are retained at least partially within a guide coupling housing; and wherein the probe source beam is configured to be directed by the system controller to scan across a face of the guide coupling housing.

15 . The catheter system of claim 14 wherein the guide proximal end of each of the plurality of light guides is retained within the guide coupling housing.

16 . The catheter system of claim 13 wherein at least one of the first light source and the second light source includes a laser.

17 . The catheter system of claim 13 wherein the multiplexer alignment system further includes coupling optics that are configured to focus the probe source beam to scan across the guide proximal end of each of the plurality of light guides.

18 . The catheter system of claim 17 wherein the multiplexer is configured to utilize the coupling optics to alternatively focus the source beam on the guide proximal end of each of the plurality of light guides.

19 . The catheter system of claim 13 wherein the first beamsplitter includes a dichroic beamsplitter.

20 . A catheter system for treating a treatment site within or adjacent to a vessel wall or heart valve, the catheter system comprising:

a first light source that is configured to generate a source beam;

a second light source that is configured to generate a probe source beam;

a plurality of light guides that are each configured to receive the source beam from the first light source, each light guide having a guide proximal end, the plurality of light guides including at least a first light guide and a second light guide;

a multiplexer that is configured to receive the source beam, the multiplexer being configured to alternatively direct the source beam to each of the plurality of light guides;

a first beamsplitter that is configured to receive (i) the source beam from the first light source, and (ii) the probe source beam from the second light source, the first beamsplitter being configured to direct the probe source beam and the source beam toward the guide proximal end of each of the first light guide and the second light guide with the source beam at a known offset distance from the probe source beam so that (i) the probe source beam scans across the guide proximal end of the first light guide, (ii) the source beam subsequently scans across the guide proximal end of the first light guide, (iii) the probe source beam scans across the guide proximal end of the second light guide, and (iv) the source beam subsequently scans across the guide proximal end of the second light guide, the probe source beam being configured to produce a backscattered energy beam that is scattered off of the guide proximal end of each of the plurality of light guides;

a photodetector that is configured to generate a signal based at least in part on the at least a portion of the backscattered energy beam that is directed toward the photodetector; and

a system controller that is configured to:

cause the probe source beam to scan across one or both of the first light and the second light guide at a known speed;

analyze the signal generated by the photodetector to determine optical coupling between the probe source beam and the plurality of light guides; and

cause the first light source to generate the source beam at a start time, the starting being determined by the system controller based on determining an optical coupling between the probe source beam and the proximal end of one of the first light guide and the second light guide, the known offset distance, and the known speed.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2025
From: BOLT MEDICAL, INC.
To: BOSTON SCIENTIFIC SCIMED, INC.
Reel/Frame 073266/0423 →
Continuity (3)
Continuation 17308934 · May 5, 2021
Provisional Application 63023669 · May 12, 2020
Related Publication 20240058060A1 · Feb 22, 2024
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