1. Field of the Invention
The present invention is generally related to light source devices and, more particularly, to a light source device suitable for use in an optical disk storage system.
2. Related Art
An optical disk storage system provides means for recording and reproducing great quantities of data on and from an optical disk. The data is accessed by focusing a light beam onto a data layer of the optical disk and detecting a reflected light beam from the optical disk. Therefore, a light source should be provided in the optical disk storage system to emit the light beam. Usually, a semiconductor laser is employed in the optical disk storage system for providing a laser beam. A laser beam has been found to be advantageous for such an application as it has a good monochromaticity. However, the semiconductor laser is much more expensive than other kinds of light sources, such as a light emitting diode (LED). Hence, the light emitting diode has been introduced into the optical disk storage system instead of the semiconductor laser for reducing cost of the optical disk storage system.
Referring to
In above-described optical module 100, the light beam incident on the optical disk 170 has a bandwidth within 20 nm. The monochromaticity of the light passing through the optical filter 120 is greatly improved relative to the light emitted from the LED 102. However, this improvement is also poor relative to the requirements of the optical disk storage system, especially in view of the rigorous requirements of a high-density optical disk storage system.
Therefore, a heretofore unaddressed need exists in the industry to address aforementioned deficiencies and inadequacies associated with the monochromaticity of light beams used in optical disk storage systems.
A light source device includes a light source, a reflective filter and an optical absorber. The light source is used for emitting a light beam. The reflective filter is configured for selectively reflecting a first portion of the light beam emitted from the light source and for selectively transmitting a second portion thereof. The optical absorber is configured for absorbing the second portion of the light beam transmitted by the reflective filter.
One embodiment provides an optical system for an optical disk storage system. The optical system includes a light source device, an objective lens, and a detector. The light source device includes a light source, a reflective filter and an optical absorber. The light source is used for emitting a light beam. The reflective filter is configured for selectively reflecting a first portion of the light beam emitted from the light source and for selectively transmitting a second portion thereof. The optical absorber is configured for absorbing the second portion of the light beam transmitted by said reflective filter. The objective lens is used for focusing the portion of the light beam onto an optical disk. The detector is configured for receiving a return light beam reflected by the optical disk.
Many aspects of the present optical system can be better understood with reference to the following drawings. The components in the drawings are not necessarily to scale, the emphasis instead being placed upon clearly illustrating the principles of the present optical system. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
The coupler 13 includes a first, second, and third port 131, 132, and 133, respectively, each connecting with a corresponding end of the second, a third and a forth optical fibers 17, 18 and 19. Thus, the light beam transmits into the coupler 13 from the first port 131. In the coupler 13, the light beam is diverted/redirected to the second port 132, so as to transmit to the reflective filter 14 via the third optical fiber 18.
In this embodiment, the reflective filter 14 is an optical fiber grating 14 directly formed in the third optical fiber 18. The optical fiber grating 14 has a predetermined reflection wavelength and a predetermined bandwidth. That is, only a portion (i.e., a first portion) of the light beam, which has a wavelength within a range defined by the reflection wavelength and bandwidth of the optical fiber grating 14, can be reflected by the optical fiber grating 14 (shown in
A portion of the light beam, which is transmitted by the reflective filter 14, transmits to the optical absorber 15 via the third optical fiber 18. Another portion of the light beam, which is reflected from the optical fiber grating 14, is transmitted into the coupler 13 via the third optical fiber 18 and the second port 132. The coupler 13 redirects the light beam from the second port 132 to the third port 133. Then, the light beam transmits out of the light source device 1 via the fourth optical fiber 19.
Referring to
Referring to
The LED array 21 includes a plurality of LEDs 211, 212 and 213 for emitting/generating lights, each with predetermined wavelengths within a respective wavelength range. Three LEDs 211, 212 and 213 are provided in this embodiment, but more or less LEDs also can be provided in alternative embodiments. In this embodiment, the LED 211 emits a first light beam with a first center wavelength such as 405 nm, the LED 212 emits a second light beam with a second wavelength greater than the first center wavelength, such as 650 nm, and the LED 213 emits a third light beam with a third center wavelength greater than the second center wavelength, such as 780 nm. Each one of the light beams has a bandwidth of about 100 nm.
Three first optical fibers 270 interconnect the three LEDs 211, 212, 213, respectively, with the multiplexer 22. Thus, the light beams emitted from the LEDs 211, 212 and 213 are synchronously transmitted to the multiplexer 22 via the first optical fibers 270. The multiplexer 22 couples the three light beams into a complex light beam with three wavelengths.
The coupler 25 has three polls 241, 242, and 243, e.g. a first port 241, a second port 242 and a third port 243, respectively, connecting with three corresponding optical fibers 272, 274, 276. A second optical fiber 272 is installed between the multiplexer 22 and the first port 241, allowing the complex light beam to transmit from the multiplexer 22 to the coupler 25. In the coupler 24, the complex light beam is diverted/redirected to the second port 274, which connects with a third optical fiber 274. Consequently, the complex light beam transmits to the adjustable reflective filter 25 via the third optical fiber 274.
The adjustable reflective filter 25 is configured for selectively reflecting a portion of an incident light beam based on a reflection wave band of the adjustable reflective filter 25. As a result, the adjustable reflective filter 25 reflects a portion of the complex light beam and transmits another portion thereof. The reflected portion of the complex light beam enters into the coupler 24 via the third optical fiber 274 and the second port 242, and transmits out from the third port 243 to a fourth optical fiber 276. On the other hand, the transmitted portion of the complex light beam transmits to the optical absorber 26 via the third optical fiber 274 to be absorbed thereby.
The adjustable reflective filter 25 includes a plurality of reflectors 251, 252, 253 (e.g. a first, second and third optical fiber gratings 251, 252, 253) and a plurality of controllers 251′, 252′, 253′ (e.g. a first, second, and third piezoelectric elements 251′, 252′ and 253′). The optical fiber gratings 251, 252, 253 are directly formed in the optical fiber 274 and have bandwidths of about 2 nm, respectively configured for selectively reflecting incident light beams (shown in
The piezoelectric elements 251′, 252′ and 253′ are advantageously made of a PbZrO3 material and are similar to each other. (It is, however, to be understood that each piezoelectric element 251′, 252′ and 253′ could be made of any of a variety of piezoelectric materials, with each being composed of the same or a different such material, and still be within the scope of the present optical system.) Now referring to
When a voltage is applied to the deformable portion 251′a, the deformable portion 251′a will deform so as to selectably compress or expand the first optical fiber grating 251. Thus, the grating spacing of the first optical fiber grating 251 will be changed following the compression or expansion. The change of the grating spacing will result in a change of the reflection wavelength of the first optical fiber grating 251. As shown in
Referring to
When the complex light beam transmits into the first optical fiber grating 251, the first optical fiber grating 251 reflects a portion of the complex light beam, specifically the portion thereof having a wavelength within 405±1 nm, and transmits any other portion of the complex light beam. The reflected portion is directed to the fourth optical fiber 276 via the third optical fiber 274 and the coupler 24. The portion transmitted beyond the first optical fiber grating 251 reaches the second optical fiber grating 252, via the third optical fiber 274. The light beam transmitted from the first optical fiber grating 251 has no wavelength in the range of the reflection wavelength of the second optical fiber grating 252 and is thereby transmitted in its entirety by the second optical fiber grating 252. The light beam transmitted from the second optical fiber grating 252 also has no wavelength in the range of the reflection wavelength of the third optical fiber grating 253, and, as such, is entirely transmitted by the third optical fiber grating 253. The light beam transmitted by the third optical fiber grating 253 is absorbed by the optical absorber 26. The reflection wavelength of the second optical fiber grating 252 is adjusted to be in a range of 455-600 nm or 700-730 nm, when a second predetermined voltage is applied on the second piezoelectric element 252′. The reflection wavelength of the third optical fiber grating 253 is adjusted to be in a range of 700-730 nm or 830-850 nm, when a third predetermined voltage is applied on the third piezoelectric element 253′.
Referring to
When the complex light beam transmits into the first optical fiber grating 251, the first optical fiber grating 251 transmits the whole light beam to the second optical fiber grating 252. The second optical fiber grating 252 reflects a portion of the complex light beam, which has a wavelength within 650±1 nm, and transmits any other portion of the complex light beam. The reflected portion transmits to the first optical fiber grating 252 and, again, is transmitted by the first optical fiber grating 252. Then, the reflected portion transmits out of the light source device 2 after subsequently passing through the third optical fiber 274, the coupler 24, and the forth optical fiber 276. However, the portion transmitted through the second optical fiber 252 transmits to the third optical fiber grating 252, as well. The third optical fiber grating 252 transmits the whole light beam incident thereupon to the optical absorber 26 because of the unmatched wavelength. The optical absorber 26 absorbs the incident light beam, as transmitted by the third optical fiber grating 252.
Referring to
When the complex light beam transmits to the adjustable reflective filter 25, the first and second optical fiber gratings 251, 252 subsequently transmit the whole incident complex light beam because of unmatchable wavelengths therebetween. Accordingly, then, the complex light beam transmits to the third optical fiber grating 253, and the third optical fiber grating 253 reflects a portion of the complex light beam having a wavelength within 780±1 nm and transmits any other portion of the complex light beam. The reflected portion of the complex light beam is subsequently transmitted by the first and second optical fiber gratings 251, 252. Then, the reflected portion of the complex light beam transmits out of the light source device 2 after passing through the coupler 24 and the fourth optical fiber 276. The transmitted portion of the complex light beam, passing through the third optical fiber grating 253, reaches the optical absorber 26 to be absorbed.
Now, referring to
It should be emphasized that the above-described embodiment of the present invention is merely possible example of implementation, merely set forth for a clear understanding of the principles of the invention. Many variation and modifications may be made to the above-described embodiment of the invention without departing substantially from the spirit and principles of the invention. All such modifications and variations are intended to be included herein and to be considered to be within the scope of this disclosure and the present invention and protected by the following claims.
Number | Date | Country | Kind |
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200410077645.1 | Dec 2004 | CN | national |