Claims
- 1. An apparatus with the capability of simultaneously or separately measuring the size of a focused laser beam, focus position, divergence, beam quality, power and/or power density of a laser beam comprising:
a. a nonlinear optical material; b. means for holding said nonlinear optical material c. means for moving said nonlinear optical material through the focal region of the laser beam; d. means for controlling said motion; e. detector means for receiving a portion of said laser beam and providing a signal according to the intensity of said laser beam during the scan of said nonlinear optical material through the said focal region; f. data acquisition and processing means connected to said sensor means for receiving said signal and for outputting information about the waist size, the position of the focus, the power and power density of the laser beam, or only a selection of one or more of those parameters, based upon the measured signal; g. indicator means for providing visual information about the measured selection of laser beam parameters.
- 2. Apparatus as in claim 1 further comprising a lens for focusing the laser beam.
- 3. Apparatus as in claim 1, wherein said sensor means is a CCD, matrix of detectors or another technique that has the capability of acquiring and outputting the two-dimensional distribution of said laser beam for further processing.
- 4. Apparatus as in claim 1 wherein said sensor means are interchangeable with sensor means of sensitive to radiation at different parts of the spectrum.
- 5. Apparatus as in claim 1 further comprising means for changing the distance between the sensor means and the nonlinear optical material.
- 6. Apparatus as in claim 1 further comprising means for controlling the power and direction of the laser beam traversed through the nonlinear optical material on its path to the detector means.
- 7. Apparatus as in claim 1 further comprising translational means for exposing different areas of said nonlinear optical material to said laser beam.
- 8. Apparatus as in claim 1 wherein the nonlinear optical material is a liquid crystal, an organic photochromic fulgide, cytochrome C, an azo dye, a carbazole compound with a conjugated side chain and/or electron withdrawing groups, a phycobiliprotein, a fluorescent dye, a rhodopsin, bacteriorhodopsin, solid crystal, semiconducting material, ZnSe or an analog of any of said materials and their combination.
- 9. Apparatus as in claim 1 wherein said nonlinear optical material is interchangeable with one or more nonlinear optical materials of different spectrum, thickness, and constants of optical nonlinearity.
- 10. Apparatus as in claim 1 wherein the data acquisition and processing means allow inputting the wavelength of the laser beam, the constant of the optical nonlinearity of the material, and other control and calibration parameters required for outputting the values of the desired selection of the laser beam parameters being characterized.
- 11. Apparatus as in claim 1 further comprising a second sensor means for measuring the transmission of the nonlinear optical material in the scan process.
- 12. An method for simultaneously or separately measuring the size of a focused laser beam, focus position, divergence, beam quality, power and/or power density of a laser beam comprising:
(a) a nonlinear optical material; (b) means for holding said nonlinear optical material (c) means for moving said nonlinear optical material through the focal region of the laser beam, (d) means for controlling said motion; (e) detector means for receiving a portion of said laser beam and providing a signal according to the intensity of said laser beam during the scan of said nonlinear optical material through the said focal region; (f) data acquisition and processing means connected to said sensor means for receiving said signal and for outputting information about the waist size, the position of the focus, the power and power density of the laser beam, or only a selection of one or more of those parameters, based upon the measured signal; (g) indicator means for providing visual information about the measured selection of laser beam parameters.
- 13. A method as in claim 1 further comprising a lens for focusing the laser beam.
- 14. A method as in claim 1, wherein said sensor means is a CCD, matrix of detectors or another technique that has the capability of acquiring and outputting the two-dimensional distribution of said laser beam for further processing.
- 15. A method as in claim 1 wherein said sensor means are interchangeable with sensor means of sensitive to radiation at different parts of the spectrum.
- 16. A method as in claim 1 further comprising means for changing the distance between the sensor means and the nonlinear optical material.
- 17. A method as in claim 1 further comprising means for controlling the power and direction of the laser beam traversed through the nonlinear optical material on its path to the detector means.
- 18. A method as in claim 1 further comprising translational means for exposing different areas of said nonlinear optical material to said laser beam.
- 19. A method as in claim 1 wherein the nonlinear optical material is a liquid crystal, an organic photochromic fulgide, cytochrome C, an azo dye, a carbazole compound with a conjugated side chain and/or electron withdrawing groups, a phycobiliprotein, a fluorescent dye, a rhodopsin, bacteriorhodopsin, solid crystal, semiconducting material, ZnSe or an analog of any of said materials and their combination.
- 20. A method as in claim 1 wherein said nonlinear optical material is interchangeable with one or more nonlinear optical materials of different spectrum, thickness, and constants of optical nonlinearity.
- 21. A method as in claim 1 wherein the data acquisition and processing means allow inputting the wavelength of the laser beam, the constant of the optical nonlinearity of the material, and other control and calibration parameters required for outputting the values of the desired selection of the laser beam parameters being characterized.
- 22. A method as in claim 1 further comprising sensor means for measuring the transmission of the nonlinear optical material in the scan process.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0001] This invention was made with Government support under SBIR Contracts No. Contract #DASG60-97-C-0053 and Contract #F33615-00-C-5409.
[0002] RIGHTS OF THE GOVERNMENT
[0003] The invention described herein may be manufactured and used by or for the Government of the United States for all governmental purposes without the payment of any royalty.