1. Field of the Invention
The invention relates to optical storage and in particular to a simplified holographic data storage system.
2. Description of the Related Art
Holographic data storage technology utilizes a reference beam and a signal beam interfering with each other to store high density data into an optical medium. The signal beam passes a light modulator, and the light modulator maps a two dimensional pattern to the signal beam.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
An optical storage system for storing data in an optical medium comprises an initial light source, a first sheet, a light modulator and a second sheet. The initial light source provides an initial light beam. The first sheet comprises a first surface and a second surface, wherein the initial light beam is partially reflected on the first surface to act as a reference beam, and the initial light beam partially passes the first surface, reflected on the second surface to act as a signal beam. The light modulator provides a pattern, wherein the signal beam contacts the light modulator. The second sheet comprises a third surface and a fourth surface, wherein the reference beam is reflected toward the optical medium on the third surface, the signal beam is reflected toward the optical medium on the fourth surface, and the reference beam and the signal beam interfere with each other to store the pattern into the optical medium.
The invention utilizes the first and second sheets to replace conventional reflectors. Thus, the optical elements of the holographic data storage system are reduced, and cost and volume thereof are decreased.
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
a shows a holographic data storage system of a first embodiment of the invention;
b shows the holographic data storage system of the first embodiment writing data to an optical medium;
c shows the holographic data storage system of the first embodiment reading data from the optical medium;
d shows the holographic data storage system of the first embodiment performing a servo process;
a shows a holographic data storage system of a second embodiment of the invention;
b shows the holographic data storage system of the second embodiment writing data to an optical medium;
c shows the holographic data storage system of the second embodiment reading data from the optical medium;
d shows the holographic data storage system of the second embodiment performing a servo process;
a shows a holographic data storage system of a third embodiment writing data to an optical medium;
b shows the holographic data storage system of the third embodiment reading data from the optical medium;
c shows the holographic data storage system of the third embodiment performing a servo process;
The following description is of the best-contemplated mode of carrying out the invention. This description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
a shows a holographic data storage system 100 of a first embodiment of the invention, comprising an initial light source 111, a filtering-expanding unit 112, a shutter 113, a light modulator 114, a lens 115, a first sheet 120, a second sheet 130, a beam splitter 141, an image sensor 142 and a servo unit 150. The holographic data storage system 100 reads data from an optical medium 70 and writes data thereto.
The first sheet 120 comprises a first surface 121 and a second surface 122. The second sheet 130 comprises a third surface 133 and a fourth surface 134. The first sheet 120 and the second sheet 130 are glass. The light modulator 114 is a space light modulator providing data pattern.
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The invention utilizes the first and second sheets to replace conventional reflectors. Thus, the optical elements of the holographic data storage system are reduced, and the cost and volume thereof are decreased.
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The initial light beam 101 travels in a first direction y, and the reference beam 102 and the signal beam 103 are reflected on the first sheet 120 toward a second direction x perpendicular to the first direction y. Then, the reference beam 102 and the signal beam 103 are reflected on the second sheet 130, and travel in the first direction y.
The first sheet 120 is parallel to the second sheet 130. An included angle between the first sheet and the first direction y is 45°.
The first sheet 120 further comprises a first optical film 125 and a first reflective layer 126, the first optical film 125 formed on the first surface 121, and the first reflective layer 126 formed on the second surface 122. The second sheet 130 further comprises a second optical film 135 and a second reflective layer 136, the second optical film 135 is formed on the fourth surface 134, and the second reflective layer 136 is formed on the third surface 133. The first optical film 125 is partially formed on the first surface 121, and the second optical film 135 is partially formed on the fourth surface 134.
The first optical film 125 and the second optical film 135 can be passable films. In an embodiment, when a light beam contacts the first optical film 125 or the second optical film 135, the first optical film 125 and the second optical film 135 provide 50% transmission and 50% reflection.
The initial light beam 101 is partially reflected by the first optical film 125 to act as the reference beam 102, and the initial light beam 101 partially passes the first optical film 125, reflected by the first reflective layer 126 to act as the signal beam 103. The reference beam 102 is reflected toward the optical medium 70 by the second reflective layer 136 passing the lens 115, the signal beam 103 is reflected toward the optical medium 70 by the second optical film 135 passing the lens 115, and the reference beam 102 and the signal beam 103 interfere with each other to store the pattern into the optical medium 70.
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a-3d show a holographic data storage system 100′ of a second embodiment of the invention, wherein a reflective light modulator 114′ is disposed on the second surface 122. The signal beam 103 passes the first surface 121 and is reflected by the reflective light modulator 114′. The reflective light modulator 114′ can be a digital micromirror element.
a shows the holographic data storage system 100′ of the second embodiment of the invention, comprising an initial light source 111, a filtering-expanding unit 112, a shutter 113, a reflective light modulator 114′, a lens 115, a first sheet 120, a second sheet 130, a beam splitter 141, an image sensor 142 and a servo unit 150. The holographic data storage system 100′ reads data from an optical medium 70 and writes data thereto.
The first sheet 120 comprises a first surface 121 and a second surface 122. The second sheet 130 comprises a third surface 133 and a fourth surface 134. The first sheet 120 and the second sheet 130 are glass. The reflective light modulator 114′ is a space light modulator providing data pattern.
As shown in
In the
The invention utilizes the first and second sheets to replace conventional reflectors. Thus, the optical elements of the holographic data storage system are reduced, and the cost and volume thereof are decreased.
As shown in
As shown in
The initial light beam 101 travels in a first direction y, and the reference beam 102 and the signal beam 103 are reflected on the first sheet 120 and the reflective light modulator 114′ toward a second direction x perpendicular to the first direction y. Then, the reference beam 102 and the signal beam 103 are reflected on the second sheet 130, and travel in the first direction y.
The first sheet 120 is parallel to the second sheet 130. An included angle between the reflective light modulator 114′ and the first direction y is 45°.
The first sheet 120 further comprises a first optical film 125, and the first optical film 125 is formed on the first surface 121. The second sheet 130 further comprises a second optical film 135 and a second reflective layer 136, the second optical film 135 is formed on the fourth surface 134, and the second reflective layer 136 is formed on the third surface 133. The first optical film 125 is partially formed on the first surface 121, and the second optical film 135 is partially formed on the fourth surface 134.
The first optical film 125 and the second optical film 135 can be passable films. In an embodiment, when a light beam contacts the first optical film 125 or the second optical film 135, the first optical film 125 and the second optical film 135 provide 50% transmission and 50% reflection.
The initial light beam 101 is partially reflected by the first optical film 125 to act as the reference beam 102, and the initial light beam 101 partially passes the first optical film 125, reflected by the reflective light modulator 114′ to act as the signal beam 103. The reference beam 102 is reflected toward the optical medium 70 by the second reflective layer 136 passing the lens 115, the signal beam 103 is reflected toward the optical medium 70 by the second optical film 135 passing the lens 115, and the reference beam 102 and the signal beam 103 interfere with each other to store the pattern into the optical medium 70.
The first and the second embodiments are on axis holographic data storage systems.
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While the invention has been described by way of example and in terms of preferred embodiment, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Date | Country | Kind |
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TW95141154 | Nov 2006 | TW | national |