Claims
- 1. A microscope system for observing a specimen, comprising:
an optical microscope having at least one objective lens and at least one eyepiece; a light source emitting an incident light; a darkfield condenser positioned to receive said incident light and focus said incident light upon said specimen; and a compound relay lens connected to said eyepiece.
- 2. The system of claim 1, wherein said incident light travels at a frequency in the ultraviolet range of the electromagnetic spectrum.
- 3. The system of claim 1, further comprising:
an adapter positioned between said light source and said microscope, said adapter configured to align said incident light.
- 4. The system of claim 1, further comprising:
a camera connected to said compound relay lens; and a computer in communication with said camera,
- 5. The system of claim 1, wherein said eyepiece comprises an ocular eyepiece pair and a projection eyepiece, and wherein said compound relay lens is connected to said projection eyepiece.
- 6. The system of claim 1, wherein said compound relay lens comprises:
a first relay lens connected to said eyepiece; and a second relay lens connected to said first relay lens, said compound relay lens providing higher magnification than a single relay lens alone.
- 7. A compound relay lens for an optical microscope having at least one eyepiece, comprising:
a first relay lens connected to said eyepiece; and a second relay lens connected to said first relay lens, said compound relay lens providing higher magnification than a single relay lens alone.
- 8. The compound relay lens of claim 7, wherein said microscope is connected to a photomicrography system having at least one camera, wherein said second relay lens is positioned between said first relay lens and said camera.
- 9. The compound relay lens of claim 7, wherein said first relay lens has a numerical aperture of at least 0.65 and a magnification power of at least 40 times.
- 10. The compound relay lens of claim 7, wherein said second relay lens has a magnification power of at least 10 times.
- 11. A method of provoking light scattering sufficient to illuminate a specimen in an optical microscope system, said system comprising a visible-light microscope having a darkfield condenser, at least one objective lens, and a compound relay lens, said method comprising:
illuminating a lamp that emits a first light, wherein said first light travels at a frequency in the ultraviolet range of the electromagnetic spectrum; focusing said first light upon said specimen using said darkfield condenser; and magnifying the image of said specimen using said compound relay lens.
- 12. The method of claim 11, further comprising:
adapting said ultraviolet light for use in said microscope by positioning an adapter between said lamp and said darkfield condenser.
- 13. The method of claim 11, wherein said specimen is placed upon a slide and is covered by a cover glass, said method further comprising:
placing a lower oil drop on the underside center of said slide; positioning said slide on the center of said darkfield condenser; placing an upper oil drop on the top center of said cover glass; raising said darkfield condenser until said upper oil drop contacts said objective lens.
- 14. A microscope system for illuminating and observing a specimen with scattered light from a combined light source, said system comprising:
an optical microscope having at least one objective lens and at least one eyepiece; a first light wave traveling at a first frequency; a second light wave traveling at a second frequency; an optical combiner positioned to receive said first and second light waves and combine said lights into a combined light, said combined light comprising an additive light wave traveling at an additive frequency and a subtractive light wave traveling at a subtractive frequency; a darkfield condenser positioned to receive said combined light and focus said combined light upon said specimen such that said additive and subtractive light waves provoke scattered light.
- 15. The system of claim 14, wherein said first light wave traveling at a first frequency is produced by a first filter system, comprising:
a first light source emitting a first unrefined light wave; a first filter connected to said first light source and configured to receive said first unrefined light wave; a first filter controller connected to said first filter, said first filter controller configured to send a first control signal capable of adjusting said first filter such that said first filter refines said first unrefined light wave into said first light wave traveling at said first frequency.
- 16. The system of claim 14, wherein said second light wave traveling at a second frequency is produced by a second filter system, comprising:
a second light source emitting a second unrefined light wave; a second filter connected to said second light source and configured to receive said second unrefined light wave; a second filter controller connected to said second filter, said second filter controller configured to send a second control signal capable of adjusting said second filter such that said second filter refines said second unrefined light wave into said second light wave traveling at said second frequency.
- 17. The system of claim 14, further comprising a compound relay lens connected to said eyepiece.
- 18. The system of claim 17, further comprising:
a camera connected to said compound relay lens; and a computer in communication with said camera,
- 19. The system of claim 17, wherein said eyepiece comprises an ocular eyepiece pair and a projection eyepiece, and wherein said compound relay lens is connected to said projection eyepiece.
- 20. The system of claim 17, wherein said compound relay lens comprises:
a first relay lens connected to said eyepiece; and a second relay lens connected to said first relay lens, said compound relay lens providing higher magnification than a single relay lens alone.
- 21. The system of claim 20, wherein said first relay lens has a numerical aperture of at least 0.65 and a magnification power of at least 40 times, and wherein said second relay lens has a magnification power of at least 10 times.
- 22. The system of claim 14, wherein said optical combiner comprises:
a chamber; a casing enclosing said chamber, said casing comprising a plurality of input ports and an output port; and a prism assembly positioned within said chamber, said prism assembly configured to receive said light waves entering through any two of said plurality of input ports, to combine said light waves into said combined light wave, and to project said combined light wave through said output port.
- 23. A system for producing a first light wave traveling at a first frequency and a second light wave traveling at a second frequency from a single light source emitting an unrefined light wave, said system comprising:
a dual-channel filter configured to receive said unrefined light wave; a dual-frequency filter controller connected to said dual-channel filter and configured to send a primary and a secondary control signal to said dual-channel filter, said dual-channel filter configured to broadcast said first light wave on a first channel in response to said primary control signal and, in an alternating fashion, to broadcast said second light wave on a second channel in response to said secondary control signal.
- 24. The system of claim 23, wherein said primary control signal produces a first acoustic wave within said dual-channel filter, said first acoustic wave interacting with said unrefined light wave to produce said first light wave at said first frequency.
- 25. The system of claim 23, wherein said secondary control signal produces a second acoustic wave within said dual-channel filter, said second acoustic wave interacting with said unrefined light wave to produce said second light wave at said second frequency.
- 26. The system of claim 23, wherein said dual-frequency filter controller comprises:
a primary radio frequency synthesizer; a secondary radio frequency synthesizer; and a driver connecting both of said primary and secondary radio frequency synthesizers to said dual-channel filter, said primary radio frequency synthesizer configured to synthesize and send a primary control signal via said driver to said dual-channel filter, said secondary radio frequency synthesizer configured to synthesize and send a secondary control signal via said driver to said dual-channel filter.
- 27. An optical combiner for combining two light waves to produce a single combined light wave, said optical combiner comprising:
a chamber; a casing enclosing said chamber, said casing comprising a plurality of input ports and an output port; and a prism assembly positioned within said chamber, said prism assembly configured to receive said light waves entering through any two of said plurality of input ports, to combine said light waves into said combined light wave, and to project said combined light wave through said output port.
- 28. The optical combiner of claim 28, further comprising:
a beam expander connected to a first input port designated for light waves emitted by a laser, said beam expander configured to focus and collimate said light waves, said beam expander positioned between said first input port and said prism.
- 29. The optical combiner of claim 28, wherein a laser beam is received through a first input port and an ultraviolet light wave is received through a second input port, said combiner further comprising:
a beam expander positioned between said first input port and said prism, said beam expander configured to focus and collimate said laser beam.
- 30. The optical combiner of claim 28, wherein said prism assembly is further configured to receive a single light wave entering through any one of said plurality of input ports, and project said single light wave through said output port.
- 31. A method of modulating the combinatory phenomenon to illuminate and view a specimen in an optical microscope system with a combined light, said method comprising:
filtering a first unrefined light wave to produce a first light wave traveling at a first frequency; filtering a second unrefined light wave to produce a second light wave traveling at a second frequency; combining said first and second light waves to produce said combined light wave, said combined light wave comprising an additive light wave traveling at an additive frequency and a subtractive light wave traveling at a subtractive frequency; condensing said combined light wave into the shape of a hollow cone; focusing the first vertex of said hollow cone of combined light upon said specimen.
- 32. The method of claim 31, wherein said specimen is placed upon a slide and is covered by a cover glass, said method further comprising:
placing a lower oil drop on the underside center of said slide; positioning said slide on the center of said darkfield condenser; placing an upper oil drop on the top center of said cover glass; raising said darkfield condenser until said upper oil drop contacts said objective lens.
RELATED APPLICATIONS
[0001] This application claims the benefit and priority of pending Provisional Application having Serial No. 60/250,800, filed on Dec. 1, 2000, entitled “Optical Microscope of High Resolution,” which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60250800 |
Dec 2000 |
US |