IP Library Granted Patent US 12,456,848
Granted Patent B2
US 12,456,848 · App. 17/950,186 · Granted Oct 28, 2025

Fractional handpiece with a passively Q-switched laser assembly

Inventors: Xiaoming Shang (Lexington, MA); Hui Liu (Boston, MA); Craig Langlois (Clinton, MA); Kevin Schomacker (Maynard, MA)
Assignee: Candela Corporation
H01S3/115A61N5/067A61N2005/0644
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Quick Facts
Patent No.
US 12,456,848
App. No.
17/950,186
Granted
Oct 28, 2025
Kind
B2
Abstract

A fractional handpiece and systems thereof for skin treatment include a passively Q-switched laser assembly operatively connected to a pump laser source to receive a pump laser beam having a first wavelength and a beam splitting assembly operable to split a solid beam emitted by the passively Q-switched laser assembly and form an array of micro-beams across a segment of skin. The passively Q-switched laser assembly generates a high power sub-nanosecond pulsed laser beam having a second wavelength.

Claims (35)

1. A fractional handpiece for skin treatment comprising:

a handpiece body comprising:

a passively Q-switched laser assembly within the handpiece body operatively connected to a pump laser source to receive a pump laser beam having a first wavelength, the passively Q-switched laser assembly comprising one or more pump lenses and a laser cavity comprising one or more external mirrors;

a beam splitting assembly operable to split a solid beam emitted by the passively Q-switched laser assembly and form an array of micro-beams across a segment of skin; and

a positional sensor operable to guide movement of the fractional handpiece and to synchronize with laser pulsing,

wherein the passively Q-switched laser assembly generates a high power sub-nanosecond pulsed laser beam having a second wavelength.

2. The fractional handpiece of claim 1 , wherein the positional sensor comprises one or more rollers, one or more accelerometers, or combinations thereof.

3. The fractional handpiece of claim 1 , wherein operation of the passively Q-switched laser is triggered and synchronized by the positional sensor.

4. The fractional handpiece of claim 1 , further comprising a first homogenizer.

5. The fractional handpiece of claim 4 , wherein the first homogenizer is in the pump laser beam path before the passively Q-switched laser assembly.

6. The fractional handpiece of claim 4 , wherein the first homogenizer is in the passively Q-switched laser assembly, before the laser cavity.

7. The fractional handpiece of claim 1 , wherein the laser cavity comprises a high reflector cavity mirror, an output coupler cavity mirror, a gain medium, and a saturable absorber.

8. The fractional handpiece of claim 7 , wherein the gain medium is bonded with the saturable absorber and sandwiched with a high reflective coating at the first wavelength and anti-reflective coating at the second wavelength.

9. The fractional handpiece of claim 7 , wherein the high reflector cavity mirror comprises a coating highly transmissive at the first wavelength and highly reflective at the second wavelength.

10. The fractional handpiece of claim 7 , wherein the output coupler cavity mirror comprises a partially reflective coating at the second wavelength.

11. The fractional handpiece of claim 7 , wherein the gain medium comprises Nd:YAG (neodymium-doped yttrium aluminum garnet), Nd:YAP (Neodymium doped yttrium aluminum perovskite), or Nd:YLF (neodymium-doped yttrium lithium fluoride).

12. The fractional handpiece of claim 7 , wherein the saturable absorber comprises a Cr 4+ :YAG crystal or ceramic Cr 4 :YAG.

13. The fractional handpiece of claim 1 , wherein the laser cavity comprises a high reflector cavity mirror, a gain medium, and a saturable absorber, whose output end comprises partially reflective coating at the second wavelength to act as an output coupler.

14. The fractional handpiece of claim 1 , wherein the laser cavity comprises a gain medium with an input end coated with a high transmissive coating at the first wavelength and a high reflective coating at the second wavelength to act as high reflector, a saturable absorber, and an output coupler.

15. The fractional handpiece of claim 1 , wherein the laser cavity comprises a high reflector cavity mirror and a gain medium bonded with a saturable absorber and sandwiched with a high reflective coating at the first wavelength and anti-reflective coating at the second wavelength.

16. The fractional handpiece of claim 15 , wherein the high reflector cavity mirror comprises a coating highly transmissive at the first wavelength and highly reflective at the second wavelength.

17. The fractional handpiece of claim 15 , wherein an input end of the bonded gain medium is coated with anti-reflective coating at both the first wavelength and second wavelength while an output end of the bonded saturable absorber has a partially-reflective coating at the second wavelength to act as an output coupler.

18. The fractional handpiece of claim 1 , wherein the laser cavity comprises an output coupler cavity mirror and a gain medium bonded with a saturable absorber and sandwiched with a high reflective coating at the first wavelength and anti-reflective coating at the second wavelength.

19. The fractional handpiece of claim 18 , wherein the output coupler cavity mirror comprises a partially reflective coating at the second wavelength.

20. The fractional handpiece of claim 18 , wherein an input end of the bonded gain medium is coated with a highly reflective coating at the second wavelength and a highly transmissive coating at the first wavelength to act as a high reflector while an output end of the bonded saturable absorber has an anti-reflective coating at the second wavelength.

21. The fractional handpiece of claim 1 , wherein the handpiece body further comprises a scanning system comprising a pair of scanning mirrors to generate two-dimensional microbeam pattern.

22. The fractional handpiece of claim 1 , wherein the beam splitting assembly comprises a 1-D beam splitter, a focusing lens, a fixed mirror, and a rotational mirror operable to scan a 1-D fractionated micro-dot line to form a 2-D micro-spot pattern.

23. The fractional handpiece of claim 1 , wherein the beam splitting assembly comprises a 1-D beam splitter, a focusing lens and one or more rollers operable to allow manual movement of the handpiece along a direction perpendicular to a 1-D fractionated micro-dot line to form a 2-D micro-spot pattern.

24. The fractional handpiece of claim 23 , wherein the beam splitting assembly further comprises an axicon diffractive optic to generate donut beam pattern.

25. The fractional handpiece of claim 1 , wherein the handpiece body further comprises a second harmonic generator to generate an additional laser light wavelength.

26. The fractional handpiece of claim 1 , wherein the handpiece body further comprises:

a fast photodetector operable to sense the sub-nanosecond pulsed laser beam and to shut down the pump laser source to avoid double or multiple pulsing;

a second homogenizer before the beam splitting assembly to mitigate beam characteristic changes at different repetition rates;

a vibrator operable to vibrate to warn or provide feedback to a user if there is any malfunction of the laser or sliding speed is too slow or too fast; and/or

an attenuator operable to achieve appropriate energy for treatment of different skin types or LIOB depth.

Assignments (3)
NOTICE OF SUCCESSION OF AGENCY AT REEL/FRAME 074236/0278 Recorded May 29, 2026
From: BARCLAYS BANK PLC, AS PRIOR COLLATERAL AGENT
To: HSBC BANK USA, N.A., AS SUCCESSOR COLLATERAL AGENT
Reel/Frame 075649/0005 →
SECURITY INTEREST Recorded Mar 31, 2026
From: CANDELA CORPORATION
To: BARCLAYS BANK PLC, AS COLLATERAL AGENT
Reel/Frame 074236/0278 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 2, 2022
From: SHANG, XIAOMING; LIU, HUI; LANGLOIS, CRAIG; SCHOMACKER, KEVIN
To: CANDELA CORPORATION
Reel/Frame 061279/0875 →
Continuity (2)
Continuation In Part 16884708 · May 27, 2020
Related Publication 20230048178A1 · Feb 16, 2023
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