The present invention relates to optical integrating bars.
With respect to
Beyond this traditional use of optical integrating bars, additional uses are desirable.
The above-described desire is addressed and a technical solution is achieved in the art by systems and methods for polarization maintaining optical integration, according to various embodiments of the present invention.
In some embodiments of the present invention, source light is transmitted to an optical integrating bar, the source light including light having linear or substantially linear polarization in or substantially in a first polarization state or light having polarization in or substantially in the first polarization state and in or substantially in a second polarization state orthogonal and substantially orthogonal to the first polarization state. The optical integrating bar is or substantially is square or rectangular in cross-section. The cross-section has first and second axes each perpendicular or substantially perpendicular to each other and each perpendicular or substantially perpendicular to opposite one-dimensional sides of the cross-section. The source light is transmitted to the optical integrating bar in a direction nominally perpendicular to an input face of the optical integrating bar. The input face is parallel or substantially parallel to the cross-section. The first, second, or first and second polarization states are aligned or substantially aligned with the first, second, or first and second axes of the optical integrating bar, respectively, when the source light beams are transmitted to the optical integrating bar by the transmitting step. In this way, polarization of the source light is substantially maintained even after it is integrated and the uniformity of its intensity has been improved by the integrating bar.
In addition to the embodiments described above, further embodiments will become apparent by reference to the drawings and by study of the following detailed description.
The present invention will be more readily understood from the detailed description of exemplary embodiments presented below considered in conjunction with the attached drawings, of which:
It is to be understood that the attached drawings are for purposes of illustrating the concepts of the invention and may not be to scale.
Various embodiments of the present invention pertain to maintaining or substantially maintaining the polarization of source light while improving uniformity of the intensity of the source light. In this regard, embodiments of the present invention involve directing source light beams having linear polarization states towards an optical integrating bar in a manner that aligns or substantially aligns the polarization state(s) of the source light beams with the axes of the optical integrating bar. If such alignment is performed, the combined light output by the optical integrating bar will exhibit or substantially exhibit the polarization states of the source light beams, while also exhibiting improved intensity uniformity.
The invention is inclusive of combinations of the embodiments described herein. References to “a particular embodiment” and the like refer to features that are present in at least one embodiment of the invention. Separate references to “an embodiment” or “particular embodiments” or the like do not necessarily refer to the same embodiment or embodiments; however, such embodiments are not mutually exclusive, unless so indicated or as are readily apparent to one of skill in the art. The use of singular or plural in referring to the “method” or “methods” and the like is not limiting. Further, it should be noted that, unless otherwise explicitly noted or required by context, the word “or” is used in this disclosure in a non-exclusive sense. Further still, although this description often uses the term “light”, one skilled in the art will appreciate that other forms of radiation may be used in various embodiments of the present invention.
Each source light beam 14, 15 includes light having linear polarization in a first polarization state or light having the first polarization state and a second polarization state orthogonal to the first polarization state. In the particular example of
The optical integrating bar 1, in this example, is square in cross-section 8. However, one of ordinary skill in the art will appreciate that optical integrating bars may have a rectangular cross-section and may tapered such that the input face and output face are not the same size or proportion. The cross-section 8 has a first axis 9 extending vertically in
The optical integrating bar includes an input face 16 and an output face 17. The input face 16 and the output face 17 are parallel or substantially parallel to the cross-section 8. As illustrated in the embodiment of
So long as the polarization of source light 6 is aligned or substantially aligned with axis 9 or axis 10, such polarization will be maintained or substantially maintained in the combined output light 7. Light from any source may be used provided it is linearly polarized and aligned to the integrating bar as described. It is particularly advantageous to utilize light that is emitted in a polarized state, such as from a laser or array of lasers. By utilizing a source that is already of small etendue and polarized, highly efficient illumination systems may be developed.
Associated with each switching system 47r, 47g, 47b, are supporting optics 51r, 51g, 51b, respectively. According to an embodiment of the present invention, each set of supporting optics 51 includes a lens 51-1, an integrating bar 52 (also labeled 51-2), additional lenses and a spatial light modulator 60 (collectively labeled 51-3). According to an embodiment of the present invention, the illumination system 47-1 transmits polarized source light to the switching subsystem 47-2, which interacts with the transmitted source light and outputs light having uniform polarization in a first polarization state or light having polarization in first and second polarization states orthogonal to each other. The output light from switching subsystem 47-2 passes through a lens 51-1 which takes the low angular distribution light from the solid state light source(s) and delivers a more highly angled cone of linearly polarized light to the integrating bar 52 in the manner illustrated with respect to
It is to be understood that the exemplary embodiments are merely illustrative of the present invention and that many variations of the above-described embodiments can be devised by one skilled in the art without departing from the scope of the invention. It is therefore intended that all such variations be included within the scope of the following claims and their equivalents.
This application is related to prior U.S. patent application Ser. No. 12/036,385, filed Feb. 25, 2008, with an Attorney Docket Number of 94569, and is also related to U.S. patent application Ser. No. ______, filed concurrently herewith, with an Attorney Docket Number of 95298 and a title of “Etendue Maintaining Polarization Switching System and Related Methods” by Barry Silverstein et al. The entire disclosure of docket 95298 is hereby incorporated herein by reference in its entirety.