High speed optical system

Information

  • Patent Grant
  • 6961489
  • Patent Number
    6,961,489
  • Date Filed
    Monday, June 30, 2003
    22 years ago
  • Date Issued
    Tuesday, November 1, 2005
    20 years ago
Abstract
An optical system for high speed transmission of optical data. The system may condition light signals from a source for projection into an optical medium that is to convey the signals with high speed to another place. This conditioning may result in the light having an annular intensity distribution or profile. Much of the intensity of the light is near the periphery of the optical medium. This medium may be an optical fiber. This annular distribution may be attained with an optical element having a slope discontinuity or light from it being defocused to a certain extent at the optical medium. Either of these characteristics or both of them may used in the optical system so it can transmit light signals at very high rates.
Description
BACKGROUND

The present invention pertains to optical transmission of signals and more particularly to high speed light signal transmission in optical fibers.


Achieving a high gigahertz bit per second data rate in an optical fiber system is difficult and requires careful control of intensity distribution of light signals at the input face of the optical fiber in the system.


SUMMARY

A feature of the present invention is attaining a gigahertz bit per second data rate in an optical fiber. Robust compliance with a Telecommunications Industry Association specification is sought. Light distribution of a particular profile at a face of the optical fiber is a factor to achievement of the high speed conveyance of light signals. Optical element design and a certain focus are several elements of a high speed optical system.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a diagram of a high speed optical system;



FIG. 2 is a graph of an intensity distribution curve of a corrected optic projecting effectively a point source of light;



FIG. 3 is a graph of an intensity distribution of an annular projection of light;



FIGS. 4 and 5 show cross-sectionals of lenses having slope discontinuities;



FIG. 6 reveals several focal adjustments of an optical element;



FIG. 7 is a set of spot diagrams of intensity profiles of defocused and focused light.



FIG. 8 is a schematic of the optical system having the lens slope discontinuity and defocus features.





DESCRIPTION


FIG. 1 shows a layout of an optical system 10 for coupling light signals at very high rates. A laser light source 11, such as a vertical cavity surface emitting laser (VCSEL) may emit light signals 12 which go through a transfer optical element 13. From optical element 13, light rays 14 may impinge on a core or face 15 of an optical fiber 16 which may be a multi-mode fiber. Rays 14 may propagate through fiber 16 and exit fiber 16 at core or face 17 as light rays or signals 18. The light rays or signals 12 may be conditioned into light rays or signals 14 to make high speed transmission through optical fiber 16 or other like medium possible.


Achieving, for instance, a ten gigahertz bit per second data rate in fiber 16 with an approximately 2000 megahertz kilometer bandwidth may require careful control of the intensity distribution of light 14 at fiber face 15, i.e., a launch condition. An industry specification specifies a power distribution at the output fiber face sufficient to achieve a 2000 MHz-Km bandwidth-distance product in a 500 MHz-Km GI fiber. The Telecommunications Industry Association (TIA)/Electronic Industries Alliance (EIA)-492AAAB specification (hereafter “TIA specification”) effectively says that a 2000 MHz-Km bandwidth at 850 nm through 50/125-micron graded index multimode fiber can be achieved if at the end of the fiber the encircled flux within a radius of 4.5 microns is less than or equal to 30 percent of the total and the encircled flux within a radius of 19 microns is equal to or greater than 86 percent of the total encircled flux. An example of the fiber may be Corning's standard 50/125 multimode fiber which has a core radius of 25 microns and a cladding radius of 75 microns. The core and cladding indexes of refraction are 1.4948 and 1.4800, respectively. The wavelength is 850 nm.


Various illustrative examples of the present invention may provide the appropriate distribution of power into fiber 16 to achieve the data rate performance of a 10 gigahertz bit per second operation at 850 nm that is compliant with the above-noted TIA specification. The power of light source 11 may be redistributed by optical element 13 from the center to the outskirts of the beam which is projected on to core 15 of fiber 16. The velocities of the various modes of light are more diverse closer to the center of core 15 than the velocities of the modes of light closer to the perimeter of core 15. Since the velocities of the modes of light near the circumference of core 15 are close together, a light pulse having its flux or power concentrated more towards the perimeter will come through fiber 16 tighter and more distinguished in shape. This closeness of velocities of the various modes makes possible for very high rates of data transmission. That is at least one reason for the outer concentration of the power of light signals in core 15.


Attaining a power distribution of light on the end face core 15 of fiber 16 may be tried with a conventional, well-corrected, aspheric transfer optics as an optical element 13 that is adjusted to the best focus. This kind of optics may not be sufficient because compliance with the TIA specification could be achieved only for a few special modes, such as mode 2, 1 of a VCSEL as a light source 11. Robust compliance for a wide range of modes, for instance, of a VCSEL, and with tolerance of lateral and axial misalignment of the projected light from the optical element to core 15 may be attained with an optical element 16 whose point-source distribution function or point spread function (PSF) at the fiber face of core 15 complies with the TIA specification. PSF refers to a distribution of light on the fiber core face from a point source. The point source may radiate light in a spherical manner but only a cone of the light is captured by the optical element. The outgoing light from the optical element may be converged to a point, for example, with a lens. However, the reality is that the light source is not actually a point, and that diffraction and aberration, among other imperfections, prevent the light from being focused as a point on the fiber face. Even if the source were a point, the diffraction and aberration of the transfer optics or optical element 16 would prevent the projection of a point of light on the fiber 16 end face. A well corrected optic would have distribution curve 19, as shown in FIG. 2, on the fiber 16 end face. However, curve 19 does not comply with the TIA specification needed to achieve the 10 gigahertz bit per second data rate in the 2000 MHz-Km multimode fiber using 850 nm light. In order to get the power or flux distribution needed by the specification, one may maintain an annular intensity profile on the fiber face after convolving the PSF with the finite light source aperture, apodizing the complex source model amplitude, and including optical magnification. FIG. 3 illustrates an example of an annular intensity profile 20 on a face of core 15 of fiber 16. The normalized incident field amplitude or intensity of light is shown on the ordinate axis and the cross-sectional distance in microns from the center of the core 17 face of fiber 16 for each amplitude is shown by the abscissa axis.


Two characteristics of optical element 16, taken singly or in combination, may produce the light launch profile on fiber face core 15 and maintain robust compliance with the encircled flux conditions of the TIA specification. First, one surface 21 or 22 of optical element 13 may have a slope discontinuity at an optical axis 23 (r=0; r being the distance radially or perpendicularly from the optical axis, from the optical axis). This characteristic provides an axicon function to optical element 13. The optical prescription for surface 22, for example, may be a surface of revolution about optical axis 23. This functionality may be implemented by including it in the surface prescription having an odd power of radius. An axicon function or lens may be used to convert a parallel laser beam into a ring, a doughnut shaped ablation or an annular intensity profile 20 shown in FIG. 3. A surface 22 discontinuity may put into effect the axicon function, phenomenon or lens to produce the annular intensity profile 20 on the face of fiber 16. An illustration of surface 22 having a slope discontinuity at optical axis 23 is shown in FIG. 4. Line 24 shows the slope of the upper part of surface 22 at optical axis 23 (r=0). Line 25 shows the slope of the lower part of surface 22 at optical axis 23. As one follows surface 22 across axis 23, there is a disruptive change of slope from slope 24 to slope 25. Slope discontinuities may be implemented in various ways. FIG. 5 shows a slope or curvature discontinuity 34 as a small notch-like shape, cusp, indentation or protrusion in surface 22 at area 26 about optical axis 23. Discontinuity 34 may be sharp, abrupt, rough or smooth. Discontinuity 34 may be of any shape or contour. Elsewhere, the slope may be continuous, such as a function of the distance from optical axis 23 or of the radius, except at optical axis 23. Discontinuity 34 of slope of surface 23 may appear imperceptible to the eye. Apart from point or area 26, surface 22 may aspherical or spherical. Surface 21 of optical element 13 may instead have the slope discontinuity.


An illustrative example of lens surface specifications for optic element 13 may be in the following formulas, constants and variables for each of the surfaces. Surface 1 may be surface 21 and surface 2 may be surface 22 in FIG. 1, or vice versa.


Surface 1

z={cr2/[1+(1−(1+k)c2r2)1/2]}+A1r1+A2r2+A4r4+A6r6


c=1/R; R=0.65943 mm


k=−1.701593


A1=0


A2=0


A4=0.062933


A6=−0.01539


Surface 2

z={cr2/[1+(1−(1+k)c2r2)1/2]}+A1r1+A2r2+A4r4+A6r6


c=1/R; R=−2.015644 mm


k=−5.212050


A1=0.025409


A2=0.012167


A4=0


A6=0


The second characteristic which may be implemented to produce a launch profile having an annular intensity distribution or profile, similar to profile 20 of FIG. 3, is the defocusing of optical element 13 relative to the face of core 15 at a fiber 16 end. This defocusing may result in an intensity profile sufficient to attain compliance with the TIA specification. Optical element 16 is defocused to a region corresponding to approximately ±8λ(f/)2. This characteristic may result in the annular or ring-like distribution of light intensity. The area of low or no intensity in the center of the ring or annular distribution may be referred to as the dark spot of Arago in a well-corrected optic. FIG. 6 reveals three focus positions of optical element 13. Position 27 shows an annular intensity profile of light 14 launched on fiber 16 face of core 15. The intensity is shown by coordinate I and the distance from optical axis 23 is shown by coordinate R. Position 28 shows a profile having the intensity of light 14 concentrated on optical axis 23. Position 29 shows an annular intensity profile similar to the profile of position 27. Position 28 is a focused place for the core 15 face and positions 27 and 29 are defocused places for the face of core 15 to receive launched light 14. Either position 27 or 29 may be used to achieve the annular distribution of light intensity on the face of core 15.



FIG. 7 reveals an illustrative example of spot diagrams of the intensity profiles as seen on the core 15 end face of fiber 16 to show the defocus characteristic of system 10 for attaining the annular distribution of light intensity so as to comply with the TIA specification. Focus occurs at about 40 microns in FIG. 7 for spot 31. The best annulus at defocus occurs at 0 microns of adjustment for spot 30. Scale 32 shows the size of the intensity concentrations for the spots in the diagram.


Optical system 10 may incorporate both the axicon feature and the annular PSF at defocus, even though either one alone may suffice for attaining compliance with the TIA specification. Incorporating the characteristics or elements is system 10 of FIG. 8. It may be referred to as the “Ringlight” system. Light source 11 may be a VCSEL having about an 8 micron aperture. Between source 11 and optical element 13 is a BK7™ window 33 which may be part of the vacuum sealed package containing the VCSEL. The window is about 0.203 mm thick and its inner surface is about 1.145 mm from the base of the VCSEL. Window 33 is about 0.3 mm from surface 21 of optical element 13. Optical element 13 is about 2.8 mm long and about 1.7 mm in diameter. Surface 21 may have an even asphere curvature and incorporate a slope discontinuity 26 on axis 23. Surface 22 may have a SPS type or odd asphere surface. Lens surface 21 or 22 or both surfaces may include a hyperbolic (collimating) surface for receiving and collimating light originating from light source 11. Also, optical element 13 may be shaped so that light reflected back-toward light source 11 is not focused at a location where light 12 is emitted by source 11. Optical element 13 may be one piece and be made or molded from UltemR 1010 which is a General Electric Company plastic. Surface 22 may be about 0.85 mm from the face of core 15 of multimode optical fiber 16. VCSEL 11 may emit light signals 12 which propagate through window 33, surface 21 and optical element 13. The signals may exit element 13 as light 14 that may be launched into core 15 of fiber 16.


Although the invention has been described with respect to at least one illustrative embodiment, many variations and modifications will become apparent to those skilled in the art upon reading the present specification. It is therefore the intention that the appended claims be interpreted as broadly as possible in view of the prior art to include all such variations and modifications.

Claims
  • 1. A light transmission system comprising: a light source; an optical fiber; and a transfer lens for conveying light emitted by said light source into said optical fiber; and wherein: an optical axis runs from said light source through said transfer lens onto said optical fiber; said transfer lens has a first surface for receiving light from said light source; said transfer lens has a second surface for exiting light received at the first surface from said light source, and launching the light into a first end face of a said optical fiber light; and the second surface has a slope discontinuity proximate to the optical axis.
  • 2. The system of claim 1, wherein the second surface of said transfer lens is shaped so that light launched into the end face of said optical fiber has an annular intensity profile on the first end face around the optical axis.
  • 3. The system of claim 2, wherein the light launched into the first face of said optical fiber exits from a second face of said optical fiber having an annular intensity profile about a center of the second face of said optical fiber.
  • 4. The system of claim 3, wherein light that exits the second face of said optical fiber has an encircled flux within a radius of about 4.5 microns at 30 percent or less of the total encircled flux within a radius of about 19 microns at 86 percent or more of the total encircled flux.
  • 5. The system of claim 4, wherein a power distribution at the second end of said optical fiber is sufficient to achieve a 2000 MHz-Km bandwidth-distance product.
  • 6. The system of claim 5, wherein said optical fiber is a 500 MHz-Km fiber.
  • 7. The system of claim 6, wherein said optical fiber is a multimode fiber.
  • 8. The system of claim 7, wherein said light source is a laser.
  • 9. The system of claim 8, wherein said light source is a vertical cavity surface emitting laser (VCSEL).
  • 10. The system of claim 9, wherein said VCSEL is a multi mode light source.
  • 11. The system of claim 9, wherein said VCSEL is a single mode light source.
  • 12. An optical system comprising: an optical element having an input surface, an output surface, and an optical axis; and an optical medium having an end proximate to the output surface of said optical element and an end distal to the output surface of said optical element, the optical medium configured to receive emitted light having a received annular intensity profile and transfer the light to the distal end such that the transferred light substantially retains the received annular intensity profile at the distal end; and wherein: the output surface has a continuous slope/curvature in an area approximately between a periphery of the output surface and a first distance from the optical axis; and the output surface has a discontinuity in an area within a perimeter of the first distance for emitting light having an output annular intensity profile receivable at the proximate end of the optical medium.
  • 13. An optical system comprising: an optical element having an input surface and an output surface; and an optical fiber having an input surface, an output surface with a center point; and wherein: the output surface of said optical element is proximate to the input surface of said optical fiber; the output surface of said optical element has a shape and configuration such that for light input into the input surface of said optical element, the output surface of said fiber has an output of encircled flux; no more than 30 percent of the output of encircled flux is within 4.5 microns from the center point; and at least 86 percent of the output of encircled flux is within 19 microns from the center point.
  • 14. An optical system comprising: an optical fiber; and an optical element having an input surface, and an output surface proximate to a first end of said optical fiber; and wherein the output surface of said optical element is situated near the first end of said optical fiber, such that upon receipt of light by the input surface of said optical element, said optical element is defocused relative to the first end of said optical fiber so as to result in a distribution pattern of light having a lack of light at a center of the first end of said optical fiber.
  • 15. The system of claim 14, wherein: said optical fiber has a second end which emanates a distribution pattern of light upon receipt of light at the input surface of said optical element; and the distribution pattern of light at the second end of said optical fiber has a lack of light at about a center of the second end of said optical fiber.
  • 16. The system of claim 15, wherein the distribution pattern of light emanating from the second end of said optical fiber upon receipt of light at the input surface of said optical element comprises: 30 percent or less of the total light output within a radius of about 4.5 microns from the center; and at least 86 percent of the total light output within a radius of about 19 microns from the center.
  • 17. The system of claim 16, wherein, further comprising a light source for providing the light to the input surface of said optical element.
  • 18. The system of claim 17, wherein said light source is a laser.
  • 19. The system of claim 18, wherein said laser is a vertical cavity surface emitting laser.
  • 20. The system of claim 19, wherein said optical fiber has an about 50 micron core and an about 125 micron cladding around the core.
  • 21. The system of claim 14, wherein: said optical element has an axicon-like function on at least one surface of said optical element.
  • 22. The system of claim 21, wherein said optical element is a defocused well-corrected optic relative to the first end of said optical fiber.
  • 23. The system of claim 22, wherein the defocused well-corrected optic provides a relatively dark spot on the first end of said optical fiber.
  • 24. The system of claim 23, wherein the axicon-like function results from the at least one surface of said optical element having an aspheric surface with a slope-discontinuity proximate to an optical axis of said optical element.
  • 25. The system of claim 24, wherein the dark spot is a spot of Arago.
  • 26. An optical system comprising: an optical fiber having a first end; an optical element wherein said optical element is a defocused well-corrected optic relative to the first end of said optical fiber; and wherein said defocused well-corrected optic projects light has an annular shaped intensity profile, and wherein substantially all of the projection of light having an annular shaped intensity profile is received within the first end of said optical fiber.
  • 27. The optical system of claim 26, wherein said optical element has an axicon-like function on at least one surface of said optical element.
  • 28. The optical system of claim 27, wherein the defocused well-corrected optic may provide a relatively dark spot on the first end of said optical fiber.
  • 29. The system of claim 28, wherein the axicon-like function results from the at least one surface of said optical element having an aspheric surface with a slop-discontinuity proximate to an optical axis of said optical element.
  • 30. The system of claim 29, wherein the dark spot is a dark spot of Arago.
  • 31. An optical system comprising: a light source; an optical element having a first surface proximate to said light source and having a second surface; an optical fiber having a first end proximate to the second surface of said optical element and having a second end; wherein: said optical element has the characteristic of receiving light from said light source and projecting the light with an annular amplitude distribution on to the first end of said optical fiber; and said optical fiber has the characteristic of receiving the light projected from said optical element and projecting the light from the second end of said optical fiber with an annular power distribution.
  • 32. The optical system of claim 31, wherein: said light source is a laser; and said optical fiber is multi-mode fiber.
  • 33. The optical system of claim 32, wherein said laser is a single mode vertical cavity surface emitting laser.
  • 34. The optical system of claim 32, wherein said laser is a multi-mode vertical cavity surface emitting laser.
  • 35. The optical system of claim 32, wherein said optical element has at least one surface with a discontinuity in slope.
  • 36. The optical system of claim 32, wherein the power annular distribution of the light from the second end of said optical fiber has the following characteristics: thirty or less percent of the total power from the second end is from an area bordered by a perimeter of a radius of about 4.5 microns from a center of the second end of said optical fiber; and eighty-six or more percent of the total power from the second end is from an area bordered by a perimeter of a radius of about 19 microns from the center of the second end of said optical fiber.
  • 37. The optical system of claim 31, wherein said optical element has a slope discontinuity on at least one surface.
  • 38. The system of claim 37, wherein said optical element and said optical fiber are adjusted in position relative to each other so as to emphasize an annular distribution of the light received by the first end of said optical fiber.
  • 39. The system of claim 38, wherein at least one surface of said optical element is a hyperbolic collimating surface.
  • 40. A coupler comprising: an optical source for providing an input optical signal; a lens having a slope discontinuity for receiving the input optical signal and forming an optical signal having an annular intensity profile from the input optical signal; an output optical fiber configured to receive the optical signal having an annular intensity profile; and an optical axis running from said input optical fiber through said transfer lens and onto the output optical fiber, wherein the optical fiber, transfer lens, and output optical fiber are substantially optically aligned along the optical axis.
  • 41. The coupler of claim 40, wherein the annular intensity profile comprises: 30 percent or less of the total light output within a radius of about 4.5 microns from the optical axis; and at least 86 percent of the total light output within a radius of about 19 microns from the optical axis.
  • 42. The coupler of claim 40, wherein at least a majority of the optical signal having an annular intensity profile is received and transmitted by the output optical fiber.
  • 43. The coupler of claim 40, wherein the output optical fiber further comprises a first end proximate to the lens and a second end distal to the lens, the output optical fiber configured to receive the output signal having the annular intensity profile and transfer the signal to the second end such that the transferred light substantially retains the annular intensity profile at the second end.
  • 44. A coupler comprising: an optical source for providing an input optical signal; a lens having a slope discontinuity for focusing the input optical signal into an optical signal having an annular intensity profile; and an output optical fiber configured to receive within a first end of the output optical fiber and transmit the optical signal having an annular intensity profile, wherein the optical signal received within the first end of the output optical fiber substantially retains its annular intensity profile during transmission by the output optical fiber to a second end of the output optical fiber.
  • 45. The coupler of claim 44, wherein the annular intensity profile comprises: 30 percent or less of the total light output within a radius of about 4.5 microns from an optical axis of the output optical fiber; and at least 86 percent of the total light output within a radius of about 19 microns from the optical axis of the output optical fiber.
  • 46. The system of claim 44, wherein the lens is a defocused well-corrected optic relative to a first end of the output optical fiber.
  • 47. The system of claim 44, wherein the lens and the output optical fiber are adjusted in position relative to each other so as to emphasize the annular distribution of the signal transferred by the output optical fiber.
US Referenced Citations (243)
Number Name Date Kind
3271631 Marinace Sep 1966 A
3419321 Barber et al. Dec 1968 A
3848970 Goodell Nov 1974 A
3936742 Krause Feb 1976 A
3980391 Stewart Sep 1976 A
4128302 Di Vita Dec 1978 A
4317085 Burnham et al. Feb 1982 A
4408871 Kojima Oct 1983 A
4466694 MacDonald Aug 1984 A
4483585 Takami Nov 1984 A
4490618 Cielo Dec 1984 A
4660207 Svilans Apr 1987 A
4675058 Plaster Jun 1987 A
4678269 Pace Jul 1987 A
4681414 Hershet Jul 1987 A
4755036 Suzuki et al. Jul 1988 A
4765703 Suzuki et al. Aug 1988 A
4784722 Liau et al. Nov 1988 A
4816912 Suzuki et al. Mar 1989 A
4818058 Bonanni Apr 1989 A
4829537 Baer May 1989 A
4834484 Gorman et al. May 1989 A
4842390 Sottini et al. Jun 1989 A
4885592 Kofol et al. Dec 1989 A
4894785 Fernandes Jan 1990 A
4901327 Bradley Feb 1990 A
4935029 Matsutani et al. Jun 1990 A
4943128 Takada et al. Jul 1990 A
4943970 Bradley Jul 1990 A
4956844 Goodhue et al. Sep 1990 A
4961622 Gorman et al. Oct 1990 A
4976727 Matsutani et al. Dec 1990 A
5001323 Matsutani et al. Mar 1991 A
5029101 Fernandes Jul 1991 A
5029973 Rink Jul 1991 A
5031187 Orenstein et al. Jul 1991 A
5047076 Cognolato et al. Sep 1991 A
5052016 Mahbobzadeh Sep 1991 A
5052772 Okamoto et al. Oct 1991 A
5056098 Anthony et al. Oct 1991 A
5062115 Thornton Oct 1991 A
5068869 Wang et al. Nov 1991 A
5079774 Mendez et al. Jan 1992 A
5115442 Lee et al. May 1992 A
5117469 Cheung et al. May 1992 A
5140605 Paoli et al. Aug 1992 A
5157537 Rosenblatt et al. Oct 1992 A
5158908 Blonder et al. Oct 1992 A
5170406 Tidwell Dec 1992 A
5212706 Jain May 1993 A
5216263 Paoli Jun 1993 A
5216680 Magnusson et al. Jun 1993 A
5237581 Asada et al. Aug 1993 A
5245622 Jewell et al. Sep 1993 A
5258990 Olbright et al. Nov 1993 A
5262360 Holonyak, Jr. et al. Nov 1993 A
5285466 Tabatabaie Feb 1994 A
5293392 Shieh et al. Mar 1994 A
5312398 Hobart et al. May 1994 A
5317170 Paoli May 1994 A
5317587 Ackley et al. May 1994 A
5325386 Jewell et al. Jun 1994 A
5331654 Jewell et al. Jul 1994 A
5337074 Thornton Aug 1994 A
5337183 Rosenblatt et al. Aug 1994 A
5349599 Larkins Sep 1994 A
5351256 Schneider et al. Sep 1994 A
5354323 Whitebook Oct 1994 A
5359447 Hahn et al. Oct 1994 A
5359618 Lebby et al. Oct 1994 A
5363397 Collins et al. Nov 1994 A
5373520 Shoji et al. Dec 1994 A
5373522 Holonyak, Jr. et al. Dec 1994 A
5376580 Kish et al. Dec 1994 A
5386426 Stephens Jan 1995 A
5390209 Vakhshoori Feb 1995 A
5396508 Bour et al. Mar 1995 A
5400145 Suita et al. Mar 1995 A
5402258 Murakami et al. Mar 1995 A
5404373 Cheng Apr 1995 A
5404869 Parkyn, Jr. et al. Apr 1995 A
5412678 Treat et al. May 1995 A
5412680 Swirhum et al. May 1995 A
5414600 Strobl et al. May 1995 A
5415652 Mueller et al. May 1995 A
5416044 Chino et al. May 1995 A
5428634 Bryan et al. Jun 1995 A
5430634 Baker et al. Jul 1995 A
5438584 Paoli et al. Aug 1995 A
5446754 Jewell et al. Aug 1995 A
5458594 Mueller et al. Oct 1995 A
5465263 Bour et al. Nov 1995 A
5467104 Burness, III et al. Nov 1995 A
5470314 Walimsky Nov 1995 A
5475701 Hibbs-Brenner Dec 1995 A
5491344 Kenny et al. Feb 1996 A
5493577 Choquette et al. Feb 1996 A
5495576 Ritchey Feb 1996 A
5497390 Tanaka et al. Mar 1996 A
5509095 Baker et al. Apr 1996 A
5513202 Kobayashi et al. Apr 1996 A
5530709 Waarts et al. Jun 1996 A
5530715 Shieh et al. Jun 1996 A
5555255 Kock et al. Sep 1996 A
5557626 Grodinski et al. Sep 1996 A
5561683 Kwon Oct 1996 A
5567980 Holonyak, Jr. et al. Oct 1996 A
5568498 Nilsson Oct 1996 A
5568499 Lear Oct 1996 A
5574738 Morgan Nov 1996 A
5577492 Parkyn, Jr. et al. Nov 1996 A
5581571 Holonyak, Jr. et al. Dec 1996 A
5586131 Ono et al. Dec 1996 A
5590145 Nitta Dec 1996 A
5594752 Endriz Jan 1997 A
5596339 Furness, III et al. Jan 1997 A
5598300 Magnusson et al. Jan 1997 A
5600126 Appel et al. Feb 1997 A
5606572 Swirhun et al. Feb 1997 A
5613769 Parkyn, Jr. et al. Mar 1997 A
5625729 Brown Apr 1997 A
5642376 Olbright et al. Jun 1997 A
5645462 Banno et al. Jul 1997 A
5646978 Kem et al. Jul 1997 A
5648978 Sakata Jul 1997 A
5659327 Furness, III et al. Aug 1997 A
5676453 Parkyn, Jr. et al. Oct 1997 A
5677920 Waarts et al. Oct 1997 A
5679963 Klem et al. Oct 1997 A
5692083 Bennett Nov 1997 A
5696023 Holonyak, Jr. et al. Dec 1997 A
5699373 Uchida et al. Dec 1997 A
5712188 Chu et al. Jan 1998 A
5726805 Kaushik et al. Mar 1998 A
5727013 Botez et al. Mar 1998 A
5727014 Wang et al. Mar 1998 A
5773817 Kingsley et al. Jun 1998 A
5774487 Morgan Jun 1998 A
5777342 Baer Jul 1998 A
5778018 Yoshikawa et al. Jul 1998 A
5781575 Nilsson Jul 1998 A
5784399 Sun Jul 1998 A
5790576 Waarts et al. Aug 1998 A
5790733 Smith et al. Aug 1998 A
5793783 Endriz Aug 1998 A
5799543 Nagai et al. Sep 1998 A
5802092 Endriz Sep 1998 A
5805624 Yang et al. Sep 1998 A
5806955 Parkyn, Jr. et al. Sep 1998 A
5818066 Duboz Oct 1998 A
5828684 Van de Walle Oct 1998 A
5832055 Dewaele Nov 1998 A
5836667 Baker et al. Nov 1998 A
5838705 Shieh et al. Nov 1998 A
5838715 Corzine et al. Nov 1998 A
5861955 Gordon Jan 1999 A
5866911 Baer Feb 1999 A
5892784 Tan et al. Apr 1999 A
5892787 Tan et al. Apr 1999 A
5896408 Corzine et al. Apr 1999 A
5896475 Perchak Apr 1999 A
5901166 Nitta et al. May 1999 A
5903588 Guenter et al. May 1999 A
5903589 Jewell May 1999 A
5903590 Hadley et al. May 1999 A
5908408 McGary et al. Jun 1999 A
5936266 Holonyak, Jr. et al. Aug 1999 A
5936777 Dempewolf Aug 1999 A
5940422 Johnson Aug 1999 A
5952668 Baer Sep 1999 A
5953362 Pamulapati et al. Sep 1999 A
5978401 Morgan Nov 1999 A
5978408 Thornton Nov 1999 A
5993466 Yoon Nov 1999 A
5993467 Yoon Nov 1999 A
5995531 Gaw et al. Nov 1999 A
5998215 Prather et al. Dec 1999 A
6002705 Thornton Dec 1999 A
6008675 Handa Dec 1999 A
6008781 Furness, III et al. Dec 1999 A
6014395 Jewell Jan 2000 A
6043104 Uchida et al. Mar 2000 A
6046065 Goldstein et al. Apr 2000 A
6052398 Brillouet et al. Apr 2000 A
6055262 Cox et al. Apr 2000 A
6060743 Sugiyama et al. May 2000 A
6075650 Morris et al. Jun 2000 A
6078601 Smith Jun 2000 A
6086263 Selli et al. Jul 2000 A
6133590 Ashley et al. Oct 2000 A
6139517 Macoviak Oct 2000 A
6144682 Sun Nov 2000 A
6154480 Magnusson et al. Nov 2000 A
6160916 Horiuchi Dec 2000 A
6185241 Sun Feb 2001 B1
6186648 Baker et al. Feb 2001 B1
6191890 Baets et al. Feb 2001 B1
6208681 Thorton Mar 2001 B1
6212312 Grann et al. Apr 2001 B1
6222864 Waarts et al. Apr 2001 B1
6238944 Floyd May 2001 B1
6253004 Lee et al. Jun 2001 B1
6254563 Macoviak et al. Jul 2001 B1
6259104 Baer Jul 2001 B1
6269109 Jewell Jul 2001 B1
6297068 Thornton Oct 2001 B1
6302596 Cohen et al. Oct 2001 B1
6317103 Furness, III et al. Nov 2001 B1
6324326 Dejneka et al. Nov 2001 B1
6339496 Koley et al. Jan 2002 B1
6349159 Uebbing et al. Feb 2002 B1
6356572 Tanaka et al. Mar 2002 B1
6366338 Masubuchi et al. Apr 2002 B1
6369403 Holonyak, Jr. Apr 2002 B1
6372533 Jayaraman et al. Apr 2002 B2
6392257 Ramdani et al. May 2002 B1
6410213 Raguin et al. Jun 2002 B1
6410941 Taylor et al. Jun 2002 B1
6411638 Johnson et al. Jun 2002 B1
6411835 Modell et al. Jun 2002 B1
6427066 Grube Jul 2002 B1
6455879 Ashley et al. Sep 2002 B1
6459709 Lo et al. Oct 2002 B1
6459713 Jewell Oct 2002 B2
6462360 Higgins, Jr. et al. Oct 2002 B1
6472694 Wilson et al. Oct 2002 B1
6477285 Shanley Nov 2002 B1
6487230 Boucart et al. Nov 2002 B1
6487231 Boucart et al. Nov 2002 B1
6490311 Boucart et al. Dec 2002 B1
6493371 Boucart et al. Dec 2002 B1
6493372 Boucart et al. Dec 2002 B1
6493373 Boucart et al. Dec 2002 B1
6496621 Kathman et al. Dec 2002 B1
6498358 Lach et al. Dec 2002 B1
6501973 Foley et al. Dec 2002 B1
6515308 Kneissl et al. Feb 2003 B1
6535541 Boucart et al. Mar 2003 B1
6536959 Kuhn et al. Mar 2003 B2
6542531 Sirbu et al. Apr 2003 B2
6567435 Scott et al. May 2003 B1
20010004414 Kuhn et al. Jun 2001 A1
20030072526 Kathman et al. Apr 2003 A1
Foreign Referenced Citations (7)
Number Date Country
4240706 Jun 1994 DE
0288184 Oct 1988 EP
0776076 May 1997 EP
60123084 Jan 1985 JP
02054981 Feb 1990 JP
5299779 Nov 1993 JP
WO 9857402 Dec 1998 WO
Related Publications (1)
Number Date Country
20040264854 A1 Dec 2004 US