Claims
- 1. In a beam deflection sensing optical device, having a light source providing an incident beam, a lens for focusing the incident beam to a spot on an object and an optical detector for receiving the beam when reflected from the object the improvement whereby the sensitivity of the optical device is increased, comprising providing:
(a) control means in the path of the incident beam for adjusting the size of the incident beam spot and including one or more objects placeable in the path of the incident beam and a plurality of movable, or interchangeable lenses, whereby to produce different size focused spots for respective selected objects; and/or (b) control means in the path of the incident beam for adjusting the power of the incident beam spot including a mask inserted in the path of the incident beam having adjacent regions through which the beam is transmitted, said adjacent regions having either different optical transmission characteristics or different shapes; and/or (c) means for viewing the spot and the object, and spot position control means based on imaging the object and the spot through the viewing means for moving the incident beam spot with movement of the object whereby to maintain the position of the spot on the object; and/or (d) control means for increasing the control signal to noise ratio of the optical detector, in which the optical detector has an array of three or more segments generating signals with gains adjusted based on evaluation of one or more segment signals, and means for adding the signals from said three or more segments to detect a change of position or shape of the spot as the reflected beam traverses said three or more segments.
- 2. The improvement of claim 1 in which said beam deflection sensing optical device is an atomic force microscope.
- 3. The improvement of claim 1 in which said light source is a source of collimated light and comprising control means in the path of the incident beam for adjusting the size of the incident beam spot including an adjustable beam expander or zoom optics in the path of the incident beam.
- 4. The improvement of claim 3 including a viewing system confocal with the spot on the cantilever, said beam expander or zoom optics being also in the path of said confocal viewing system.
- 5. The improvement of claim 4 including a plurality of cantilevers selectively placeable in the path of said beam, and including a plurality of cylindrical lenses or prisms, each cylindrical lens or prism associated with a cantilever.
- 6. The improvement of claim 1 including said control means for adjusting the power of the incident beam and including a cantilever disposed in a predetermined plane and means for forming an image plane, with respect to the plane of the cantilever, in the path of the incident beam, said mask being inserted in said image plane whereby to produce a desired spot shape.
- 7. The improvement of claim 1 including said control means for adjusting the power of the incident beam, said mask being patterned whereby to produce a desired spot irradiance distribution on the cantilever.
- 8. The improvement of claim 1 comprising said spot position control means, and means for determining a change in position of the object, comparing it to the position of the spot, and adjusting the position of the spot until it corresponds to the position of the object.
- 9. The improvement of claim 1 comprising said control means for increasing the control signal to noise ratio of the optical detector, the amplification of the signal from each segment being adjusted to optimize the control signal.
- 10. The improvement of claim 9 in which said array of segments is a CCD chip or a photodiode array.
- 11. The improvement of claim 9 including a plurality of pre-amplifiers associated with respective segments and summing means to receive the pre-amplified outputs thereof.
- 12. The improvement of claim 9 wherein said different gains are applied to the respective pre-amplifiers.
- 13. The improvement of claim 9 wherein said different gains are applied to the summing means.
- 14. The improvement of claim 1 comprising thermal drift limiting means for regulating the temperature of the environment of said optical device.
- 15. The improvement of claim 14 in which said thermal drift limiting means comprises a housing enclosing said optical device.
- 16. In a beam deflection sensing optical device having a light source providing an incident beam, a lens for focusing the incident beam to a spot on an object, and an optical detector for receiving the beam when reflected from the object, the improvement whereby the sensitivity of the optical device is increased, comprising providing:
(a) control means in the path of the incident beam for adjusting the size and power of the incident beam spot; and including one or more objects placeable in the path of the incident beam and a plurality of movable, or interchangeable lenses, whereby to produce different size focused spots for respective selected objects; and/or (b) means for viewing the spot and the objects and spot position control means based on imaging the object and the spot through the viewing means for moving the incident beam spot with movement of the object whereby to maintain the position of the spot on the object; and (c) control means for increasing the control signal to noise ratio of the optical detector, in which the optical detector has an array of three or more segments generating signals with gains adjusted based on evaluation of one or more segment signals, and means for adding the signals from said three or more segments to detect a change os position or shape of the spot as the reflected beam traverses said three or more segments.
- 17. A method for improving the sensitivity of a beam deflection sensing optical device having a light source providing an incident beam, a lens for focusing the incident beam to a spot on an object, and an optical detector having an array of three or more segments for receiving the beam when reflected from the object, comprising:
(a) modifying the incident beam to adjust the size of the incident beam spot, said optical device including one or more objects placeable in the path of the incident beam, comprising the step of discretely adjusting the size of the incident beam spot whereby to produce different size focused spots for respective selected objects; and/or (b) adjusting the power of the incident beam spot by inserting a mask in the path of the incident beam said mask having adjacent regions through which the beam is transmitted, said adjacent regions having either different optical transmission characteristics or different shapes; and or (c) moving the incident beam spot with movement of the object whereby to maintain the position of the spot on the object; and/or (d) adjusting the gains of different segments of the optical detector based on an evaluation of one or more segment signals and adding the signals from said three or more segments to detect a change of position or shape of the spot as the reflected beam traverses said three or more segments whereby to increase the signal to noise ratio of the optical detector.
- 18. The method of claim 17 in which said beam deflection sensing optical device is an atomic force microscope.
- 19. The method of claim 17 in which said light source is a source of collimated light, and including the step of adjusting the size of the incident beam spot by diverging or converging said collimated light beam and then re-collimating said diverged or converged light beam to a different size spot.
- 20. The method of claim 17 in which optical device includes a cantilever disposed in a predetermined plane and means for forming an image plane, with respect to the plane of the cantilever, in the path of the incident beam, comprising the step of inserting said mask in said image plane whereby to produce a desired spot shape.
- 21. The method of claim 20 in which said mask is patterned, and controlling said incident beam whereby to produce a desired spot irradiance distribution on the cantilever.
- 22. The method of claim 17 adjusting the power of the incident beam by inserting said mark in its path, and determining a change in position of the object, comparing it to the position of the spot, and adjusting the position of the spot until it corresponds to the position of the object.
- 23. The method of claim 17 in which the optical detector has an array of segments generating signals, including the step of applying different gains to different segments to amplify the signals from respective segments, the signal from each segment being amplified by adjusting it to optimize the control signal.
- 24. The method of claim 23 in which said array of segments is a CCD chip on a photodiode array.
- 25. The method of claim 23 in which said optical detector includes a plurality of pre-amplifiers associated with respective segments and summing means to receive the pre-amplified outputs thereof, comprising the step of applying said different gains to the respective pre-amplifiers.
- 26. The method of claim 23 in which said optical detector includes a plurality of pre-amplifiers associated with respective segments and summing means to receive the pre-amplified outputs thereof, comprising the step of applying said different gains to the summing means.
- 27. The method of claim 17 comprising regulating the temperature of the environment of the optical device to limit thermal drift.
- 28. The method of claim 27 in which the regulating step comprises enclosing said optical device in a housing.
- 29. A method for improving the sensitivity of a beam detection sensing optical device having a light source providing an incident beam, a lens for focusing the incident beam to a spot on an object, and an optical detector having an array of segments for receiving the beam when reflected from the object, comprising:
(a) modifying the incident beam to adjust the size of the incident beam spot, said optical device including one or more objects placeable in the path of the incident beam, comprising the step of discretely adjusting the size of the incident beam spot whereby to produce different size focused spots for respective selected objects; (b) adjusting the power of the incident beam spot by inserting a mask in the path of the incident beam, said mask having adjacent regions through which the beam is transmitted, said adjacent regions having either different optical transmission characteristics or different shapes. (c) moving the incident beam spot with movement of the object whereby to maintain the position of the spot on the object; and (d) adjusting the gains of different segments of the optical detector based on an evaluation of one or more segment signals and adding the signals from said one or more segments to detect a change of position or shape of the spot as the reflected beam traverses said three or more segments, whereby to increase the signal to noise ratio of the optical detector.
Government Interests
[0001] This invention was made with Government support under Grant (or Contract) No. DMR9,622,169, awarded by the National Science Foundation. The government has certain rights in this invention.