The present invention relates to light modulators used to improve contrast and/or resolution of selected characteristics of reflected light.
Reducing cost and complexity of optical devices while improving their performance is an overarching goal of the display industry. Heretofore, multiple such devices have been used to modulate or otherwise condition incident light to improve such characteristics as contrast and the like. But, as will be appreciated, the use of multiple optical devices in a series is expensive, complicated, and can introduce artifacts into the modulated light resulting from defects in one or more of the optical devices.
In the following detailed description of the invention, reference is made to the accompanying drawings that form a part hereof and in which is shown, by way of illustration, specific embodiments in which the invention may be practiced. In the drawings, like numerals describe substantially similar components throughout the several views. These embodiments are described in sufficient detail to enable those skilled in the art to practice the invention. Other embodiments may be utilized and structural, logical, and electrical changes may be made without departing from the scope of the present invention. The following detailed description is, therefore, not to be taken in a limiting sense, and the scope of the present invention is defined only by the appended claims and equivalents thereof.
Turning first to
In some embodiments, the modulator 10 is adapted to selectively reflect light from the illumination relay 20 to the target 22, i.e. the modulator 10 will in some instances operate in a binary manner. When operating in a binary manner, the modulator 10 will, in a first, on-state, reflect or emit substantially all the light incident thereon. In a second, off-state, the modulator 10 will absorb, pass, or otherwise prevent substantially all light from being emitted or reflected therefrom onto the target 22. In other embodiments, the modulator 10 may operate in a continuous manner in which a selected portion of the light incident thereon is ultimately directed to the target 22, i.e. the intensity of the light emitted from the modulator 10 may be continuously modified. In yet other embodiments, light incident on the modulator is filtered such that only light within a predetermined range of wavelengths is emitted therefrom. In the filtering embodiments, the modulator 10 may be operated in a binary manner in which the modulator 10 selectively emits or absorbs light within the predetermined range of wavelengths or in a continuous manner in which the predetermined range of wavelengths emitted by the modulator are shifted or modified up and down the optical spectrum. It is to be understood that the modulator 10 may also be operated in a combination of binary and continuous manners in that, by way of example only, the intensity of light and the range of wavelengths emitted from the modulator 10 may be continuously modified and selectively turned on and off as need be.
a is a block diagram illustrating a projection system employing a double-pass modulator, according to another embodiment. In operation, an illumination system 50, e.g. a lamp, emits a light beam 52. Light beam 52 passes through a polarization converter 54 that converts light beam 52 into a light beam 56 having a single polarization. Light beam 56 is reflected off the modulator 10, as described above and as described further below, and is passed through a projection lens 60. Projection lens 60 directs the light onto a target (or screen) 70.
Referring next to
The reflective polarizer 12 is adapted to pass light having a predetermined polarization state P and to reflect light having other polarization states. Accordingly, only light having the polarization state P is passed therethrough. Most or substantially all other light is reflected from the reflective polarizer 12. In one embodiment of modulator 10, a suitable reflective polarizer 12 is a film produced by 3M of St. Paul, Minn.
Upon passing through the reflective polarizer 12, the polarized light passes through a quarter wave plate 14. The quarter wave plate is aligned in such a manner that its optical axis is at an angle with respect to the direction of polarization. The quarter wave plate 14 modifies or shifts the relative phase of the two components of incident polarization along and perpendicular to the optical axis of the quarter wave plate by 90°.
After passing through the quarter wave plate 14, the phase-shifted polarized light (which no longer has its original polarization state P) is incident upon the reflector 16. Depending on how the reflector 16 is configured, the reflector 16 will reflect a predetermined portion of the light incident thereon. The reflector can be any optical modulator such as LCD, LCOS, DMD, etc.
In one embodiment, the reflector is an interferometer of the type described in U.S. patent application Ser. No. 20040218251 A1, filed on Apr. 30, 2003, assigned jointly herewith and hereby incorporated by reference. This embodiment, illustrated in
The optical cavity 128 is variably selective of a visible wavelength by means of optical interference. Depending on the desired configuration of the reflector 116, the optical cavity 128 may either reflect or transmit a chosen wavelength, i.e. the cavity 128 may be either reflective or transmissive in nature. No light is generated by the cavity 128. The wavelength and the intensity of light reflected by the reflector 116 are dependent on the thickness 130 of the cavity 128 as the magnitude of interference to which light incident upon the reflector 116 is subjected is directly related to the thickness 130 of the cavity 128. The interference engendered by the cavity 128 permits the ready selection of particular wavelengths and light intensities.
Light reflected from the reflector 16 or 116 of the modulator 10 passes again through the quarter wave plate 14, which again shifts the relative phase of the light passing therethrough by a quarter of a wavelength or 90° with respect to the optic axis of the plate. As the phase of this light is now shifted by 180° from its original P polarization state, the light is substantially reflected from the reflective polarizer 12 and passes once more through the quarter wave plate 14, where it is again relative phase-shifted by one quarter of a wavelength or 90°. The light is then incident a second time upon the reflector 16 or 116, which modulates the light as described in conjunction with
Light reflected from the reflector 16 or 116 on this second pass, if any, passes through the quarter wave plate 14 yet again, and in doing so, is relative phase-shifted another quarter of a wavelength or 45°. Because the light will have passed through the quarter wave plate 14 four (4) times, it will have been relative phase shifted a full 360° and accordingly will again have the same polarization state P that it had upon passing through the reflective polarizer 12. The light, now again having a polarization state P, will pass through the reflective polarizer 12 and out of the modulator 10. At this point, the light will have been modulated twice by a single modulator 10. Because modulation of the light has taken place in a single device, and because the reflector 16 may be chosen or adapted to minimize the reduction in intensity of the light incident thereon, the use of a single, double pass modulator to modify or otherwise condition light will result in an improved contrast ratio that, in some embodiments, can be readily controlled. Since the thickness of polarization and quarter wave plate layers are relatively small, the rays will not be displaced from one pixel to another during the double pass.
Although specific embodiments of a double pass modulator have been illustrated and described herein, it is manifestly intended that this invention be limited only by the following claims and equivalents thereof.