IP Library Granted Patent US 7,103,077
Granted Patent B2
US 7,103,077 · App. 10/835,088 · Granted Sep 5, 2006

System and method for measuring and controlling an energy of an ultra-short pulse of a laser beam

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Quick Facts
Patent No.
US 7,103,077
App. No.
10/835,088
Granted
Sep 5, 2006
Kind
B2
Abstract

A system for measuring the energy of an ultra-short pulse in a laser beam includes a half-wave plate for orienting the polarization of the beam. A polarizing beam splitter is used to reflect a portion of each pulse of the beam and a remainder of the beam is transmitted toward a target. Energy in the reflected portion is measured by a laser energy meter (“LEM”) to determine the energy in the remainder of the beam. An output signal from the LEM is used to obtain an error signal that can then be used to rotate the half-wave plate to control the energy level in the remainder of the beam. In an alternate embodiment, a fixed-ratio beam splitter and a second LEM are used to measure and control the energy in the remainder of the laser beam.

Claims (50)

1. An apparatus for measuring energy in an ultra-short pulse of a laser beam which comprises:

a laser source for directing a laser beam along a beam path, wherein the laser beam includes a plurality of the ultra-short pulses, and each pulse has an energy;

a photodiode for receiving a predetermined portion of the energy of each ultra-short pulse of the laser beam to generate a current therewith, wherein the current produces a voltage pulse indicative of the energy in a single laser pulse;

an amplifier for amplifying the voltage pulse;

an integrator for integrating the amplified voltage pulse over a specified time period to obtain an output signal, wherein the output signal is a measure of the energy of an ultra-short pulse from the laser beam;

a rotating half-wave plate positioned on the beam path for establishing an orientation of the polarization of the laser beam;

a polarizing beam splitter, optically aligned with said half-wave plate, for reflecting the predetermined portion of the energy of each ultra-short pulse toward said photodiode and for transmitting a remainder of the laser beam along the beam path; and

a comparator for controlling the rotation of said half-wave plate.

2. An apparatus as recited in claim 1 wherein said comparator compares the output signal of said integrator with a known reference signal to generate an error signal, and further wherein the error signal is used for rotating said half-wave plate to establish the orientation of the polarization of the laser beam for controlling the energy transmitted in the remainder of the laser beam.

3. An apparatus as recited in claim 1 which further comprises:

a fixed-ratio beam splitter positioned on the beam path for extracting a fixed portion of the energy from each ultra-short pulse in the remainder of the laser beam; and

a verification laser energy meter positioned to receive and measure the fixed portion of the energy.

4. A apparatus as recited in claim 3 wherein said verification laser energy meter comprises:

a photodiode for receiving the fixed portion of the energy of each ultra-short pulse of the remainder of the laser beam to generate a remainder current therewith, wherein the remainder current produces a remainder voltage pulse indicative of the energy in a single laser pulse in the remainder of the laser beam;

an amplifier for amplifying the remainder voltage pulse; and

an integrator for integrating the amplified remainder voltage pulse over a specified time period to obtain a remainder output signal, wherein the remainder output signal is a measure of the energy of an ultra-short pulse from the remainder of the laser beam.

5. An apparatus as recited in claim 4 wherein said comparator compares the remainder output signal of said verification laser energy meter to a known reference signal for generating a verification signal, and further wherein the verification signal is used to rotate said half-wave plate and establish the orientation of the polarization of the laser beam for controlling the energy transmitted in the remainder of the laser beam.

6. An apparatus as recited in claim 4 wherein said comparator compares the output signal with a known reference signal to generate an error signal, and wherein said comparator compares the remainder output signal to the known reference signal to generate a verification signal, and further wherein the verification signal is compared to the error signal to compensate the verification signal as needed to rotate said half-wave plate and establish the orientation of the polarization of the laser beam.

7. A system for measuring energy in an ultra-short pulse of a laser beam which comprises:

a means for directing the laser beam along a beam path, wherein said laser beam includes a plurality of the ultra-short pulses, and each pulse has an energy;

a means for converting a predetermined portion of the energy of each ultra-short pulse of the laser beam into an electrical current, wherein the current produces a voltage pulse indicative of the energy in a single laser pulse;

a means for amplifying said voltage pulse;

a means for integrating the amplified voltage pulse over a specified time period to obtain an output signal, wherein the output signal is a measure of the energy in an ultra-short pulse of the laser beam;

a means for establishing an orientation of the polarization of the laser beam;

a means for reflecting the predetermined portion of the energy of each ultra-short pulse of the laser beam toward said converting means, and for transmitting a remainder of the laser beam along the beam path; and

a comparator for controlling said establishing means.

8. A system as recited in claim 7 wherein said comparator compares the output signal of said integrating means with a known reference signal to generate an error signal, and further wherein the error signal is used by said establishing means to establish the orientation of the polarization of the laser beam for controlling the energy transmitted in the remainder of the laser beam.

9. A system as recited in claim 7 wherein said establishing means is a rotating half-wave plate positioned on the beam path, and further wherein said reflecting means is a polarizing beam splitter optically aligned with said rotating half-wave plate.

10. A system as recited in claim 9 which further comprises:

a means for extracting a fixed portion of the energy from each ultra-short pulse in the remainder of the laser beam; and

a means for measuring the fixed portion of the energy.

11. A system as recited in claim 10 wherein said extracting means is a fixed-ratio beam splitter.

12. A system as recited in claim 11 wherein said measuring means is a verification laser energy meter, and further wherein said verification laser energy meter comprises:

a photodiode for receiving the fixed portion of the energy of each ultra-short pulse of the remainder of the laser beam to generate a remainder current therewith, wherein the remainder current produces a remainder voltage pulse indicative of the energy in a single laser pulse in the remainder of the laser beam an amplifier for amplifying the remainder voltage pulse; and

an integrator for integrating the amplified remainder voltage pulse over a specified time period to obtain a remainder output signal, wherein the remainder output signal is a measure of the energy in an ultra-short pulse from the remainder of the laser beam.

13. A system as recited in claim 12 wherein said comparator compares the remainder output signal of said verification laser energy meter to a known reference signal for generating a verification signal, and further wherein the verification signal is used to rotate said half-wave plate to establish the orientation of the polarization of the laser beam, for controlling the energy transmitted in the remainder of the laser beam.

14. A system as recited in claim 12 wherein said comparator compares the output signal with a known reference signal to generate an error signal, and wherein said comparator compares the remainder output signal to the known reference signal to generate a verification signal, and further wherein the verification signal is compared to the error signal to compensate the verification signal as needed to rotate said half-wave plate and establish the orientation of the polarization of the laser beam.

15. A method for measuring energy in an ultra-short pulse of a laser beam which comprises the steps of:

directing a laser beam along a beam path, wherein the laser beam includes a plurality of the ultra-short pulses, and each pulse has an energy;

converting a predetermined portion of the energy of each ultra-short pulse of the laser beam into an electrical current, wherein the current produces a voltage pulse indicative of the energy in a single laser pulse;

amplifying said voltage pulse;

integrating the amplified voltage pulse over a specified time period to obtain an output signal, wherein the output signal is a measure of the energy of an ultra-short pulse from the laser beam;

passing the laser beam through a rotating half-wave slate positioned on the beam path, wherein said rotating half-wave plate establishes an orientation of the polarization of the laser beam; and

dividing the laser beam with a polarizing beam splitter which is optically aligned with said half-wave plate to reflect the predetermined portion of the energy of each ultra-short purse toward said photodiode, and to transmit a remainder of the laser beam along the beam path.

16. A method as recited in claim 15 which further comprises the step of comparing the output signal with a known reference signal to generate an error signal, wherein said error signal is used for rotating said half-wave plate to establish the orientation of the polarization of the laser beam for controlling the energy transmitted in the remainder of the laser beam.

17. A method as recited in claim 15 which further comprises the steps of:

dividing the remainder of the laser beam with a fixed-ratio beam splitter, wherein said fixed-ratio beam splitter extracts a fixed portion of the energy from each ultra-short pulse in the remainder of the laser beam;

activating a verification laser energy meter positioned to receive the fixed portion of the energy of each ultra-short pulse, for generating a remainder output signal;

comparing the remainder output signal of said verification laser energy meter to a known reference signal for generating a verification signal; and

applying the verification signal to rotate said half-wave plate to establish the orientation of the polarization of the laser beam for controlling the energy transmitted in the remainder of the laser beam.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 12, 2009
From: 20/10 PERFECT VISION AG
To: TECHNOLAS PERFECT VISION GMBH
Reel/Frame 023510/0024 →
CHANGE OF NAME Recorded Aug 10, 2009
From: 20/10 PERFECT VISION OPERATIONS GMBH
To: TECHNOLAS PERFECT VISION GMBH
Reel/Frame 023065/0970 →
CHANGE OF NAME Recorded Aug 6, 2009
From: 20/10 PERFECT VISION AG
To: 20/10 PERFECT VISION OPERATIONS GMBH
Reel/Frame 023065/0012 →
CHANGE OF NAME Recorded Aug 5, 2009
From: 20/10 PERFECT VISION OPTISCHE GERAETE GMBH
To: 20/10 PERFECT VISION AG
Reel/Frame 023056/0389 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 19, 2004
From: SCHUHMACHER, MICHAEL; SCHILLER, MARKUS
To: 20/10 PERFECT VISION OPTISCHE GERAETE GMBH
Reel/Frame 015573/0039 →