IP Library › Granted Patent US 8,314,359
Granted Patent B2
US 8,314,359 · App. 12/580,762 · Granted Nov 20, 2012

Methods and systems for laser welding transparent materials with an ultrashort pulsed laser

Assignee: IMRA America, Inc.
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,314,359
App. No.
12/580,762
Granted
Nov 20, 2012
Kind
B2
Abstract

Methods and systems for ultrashort pulse laser processing of optically transparent materials are disclosed. At least one embodiment includes a method for welding materials with ultrashort laser pulses to create a bond through localized heating, at least one material being transparent at a laser wavelength. The ultrashort pulse duration causes nonlinear absorption of the laser radiation, and the high repetition rate of the laser causes pulse-to-pulse accumulation of heat within the materials. The laser is focused near the interface of the materials, generating sufficiently high fluence at the region to be welded. This minimizes damage to the rest of the material and enables fine weld lines. In various implementations the laser is focused near the sub-surface interface between two materials, generating high fluence at the region proximate to the laser focus with minimal modification to the surrounding region, including areas above and below the laser beam waist.

Claims (23)

1. A method for welding materials, comprising:

focusing a beam of ultrashort laser pulses near an interface between said materials, at least one of said materials being transparent at a wavelength of said ultrashort pulses; and

producing said ultrashort laser pulses at a repetition rate in the range from 100 kHz to 100 MHz, and with one or more zones of fluence sufficient to induce localized melting of said materials at said interface without ablation of said materials, said ultrashort pulses providing a fluence of more than about 0.01 J/cm 2 in said one or more zones, and intensity sufficient to cause non-linear absorption within said materials, wherein a pulse to pulse temporal spacing corresponding to said repetition rate in said range is sufficiently small to cause accumulation of heat in said materials so as to induce said localized melting at said interface.

2. The method of claim 1 , wherein a plurality of materials are transparent at a wavelength of said ultrashort pulses.

3. The method of claim 1 , wherein said repetition rate is in the range from 1 MHz to 50 MHz.

4. The method of claim 1 , further comprising optically controlling formation and spatial position of one or more areas of high intensity within a body of said materials, to induce melting of said materials only within said zone or zones.

5. The method of claim 1 , further comprising generating linear weld features or an array of circular weld features.

6. The method of claim 5 , wherein said generating is carried out at a welding speed of 5 mm/sec or greater.

7. The method of claim 1 , wherein at least one material comprises a glass, and said fluence is in the range from about 1 J/cm 2 to 100 J/cm 2 .

8. The method of claim 7 , wherein said glass comprises fused silica.

9. The method of claim 7 , wherein said fluence is in the range from 5 J/cm 2 to 15 J/cm 2 and said ultrashort pulses have a pulse width in the range from 10 fs to ps.

10. The method of claim 1 , wherein said materials each comprise a transparent polymer.

11. The method of claim 1 , wherein a spatial distribution of said laser pulses comprises a uniform intensity distribution.

12. A method for selectively creating a raised ridge at the interface between two opposed surfaces of two respective pieces to be welded to fill a gap, at least one of said pieces comprising transparent material, said method comprising:

generating ultrashort pulses at a repetition rate in the range from 100 kHz to 100 MHz;

focusing said ultrashort laser pulses within one or both of the two pieces, to selectively raise a ridge on one or both of said opposed surfaces; and

subsequently laser welding a raised ridge to the opposed surface, or to a ridge selectively raised on the opposed surface.

13. The method of claim 12 , wherein each of said pieces comprise transparent material, and a raised ridge having a peak height of up to a few microns is selectively raised on a first one of said two opposed surfaces, wherein said method comprises: prior to said step of laser welding, using a second pass of the laser beam with a beam focus adjusted to raise a ridge on the second one of said opposed two surfaces, the ridges raised on the two opposed surfaces being of sufficient total thickness to fill said gap between said opposed surfaces.

14. An optical system for welding materials, comprising:

a laser system that produces a beam of ultrashort laser pulses having pulse widths in the range from about 50 fs to 500 ps and having a pulse repetition rate in the range from 100 kHz to 100 MHz; and

a focusing element for focusing said beam near an interface between said materials, wherein said beam, at said interface, has a fluence of more than about 0.01 J/cm 2 , and an intensity insufficient to ablate said materials, wherein said laser system has a pulse repetition rate in said range high enough to cumulatively induce localized melting of said materials at said interface, and at least one of said materials is transparent to a wavelength of said ultrashort pulses.

15. The system of claim 14 , further comprising a sub-system, including a mechanism for inducing relative motion at a speed greater than 5 mm/sec during application of pulses at said repetition rate, said sub-system arranged so as to control formation and spatial position of one or more areas of high intensity within a body of said materials, to induce melting of said materials only within said zone or zones.

16. The system of claim 15 , wherein said sub-system and/or said focusing element transforms a Gaussian beam to a uniform beam.

Continuity (3)
Division 11517325 · Sep 8, 2006
Provisional Application 60714863 · Sep 8, 2005
Related Publication 20100084384A1 · Apr 8, 2010