GB2326016A - Optical pickup - Google Patents
Optical pickup Download PDFInfo
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- GB2326016A GB2326016A GB9816618A GB9816618A GB2326016A GB 2326016 A GB2326016 A GB 2326016A GB 9816618 A GB9816618 A GB 9816618A GB 9816618 A GB9816618 A GB 9816618A GB 2326016 A GB2326016 A GB 2326016A
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- light
- hoe
- optical pickup
- light source
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- G—PHYSICS
- G11—INFORMATION STORAGE
- G11B—INFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
- G11B7/00—Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
- G11B7/12—Heads, e.g. forming of the optical beam spot or modulation of the optical beam
- G11B7/135—Means for guiding the beam from the source to the record carrier or from the record carrier to the detector
- G11B7/1365—Separate or integrated refractive elements, e.g. wave plates
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- G—PHYSICS
- G11—INFORMATION STORAGE
- G11B—INFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
- G11B7/00—Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
- G11B7/12—Heads, e.g. forming of the optical beam spot or modulation of the optical beam
- G11B7/135—Means for guiding the beam from the source to the record carrier or from the record carrier to the detector
- G11B7/1353—Diffractive elements, e.g. holograms or gratings
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- Optics & Photonics (AREA)
- Optical Head (AREA)
Abstract
An optical pickup comprises a holographic element 150 including a transparent substrate 154 carrying multiple thin layers 155 formed by alternately stacking first and second kinds of thin layer having respective first and second reflective indices. A reflecting layer 158 is applied to the substrate and layers. The element 150 gives rise to different light paths for differently polarized light components.
Description
OPTICAL PICKUP
The present invention relates to an optical pickup, and more particularly, to an optical pickup adopting a multi-coated polarization holographic optical element (HOE).
Generally, an optical pickup is for recording and/or reproducing information such as picture, sound and data on an optical recording medium in a noncontact manner.
Figure 1 is a schematic perspective view of a conventional optical pickup adopting a general HOE. The optical pickup includes a light source 20, a HOE 50 for changing a travelling path of incident light, a phase delay plate 60 for changing a polarization direction of the incident light, an objective lens 70 for converging the light entered from the light source 20 on a recording surface of a recording medium 10, and a photodetector 80 for detecting an information signal and an error signal.
The objective lens 70 is driven by an actuator (not shown) to correct tracking and focusing errors based on the error signal detected from the photodetector 80.
The HOE 50 is arranged at a position along an optical path between the objective lens 70 and the light source 20, which is formed by etching a substrate to form its hologram pattern to provide different diffraction characteristics in accordance with the polarization direction of the incident light. Generally, the phase delay plate 60 includes a A/4 waveform plate for changing a linearly polarized light incident from the light source 20 into a circularly polarized light and changing the circularly polarized light reflected from the recording medium into the linearly polarized light. A reflecting mirror for changing a travelling path of the light emitted from the light source 20 is arranged at an angle between the light source 20 and the HOE 50 under the consideration of the optical arrangement of the optical pickup. Also, a collimating lens 30 for collimating a divergent light emitted from the light source 20 may be further comprised on the optical path between the light source 20 and the reflecting mirror 40.
As described above, the optical pickup adopting the
HOE 50 has a simpler optical structure than an optical pickup adopting a beam splitter.
As shown in Figure 2, the conventional HOE 50 adopted in the above optical pickup uses a substrate 51 made of LiNb3 having a high refractive index, wherein a plurality of grooves 52 are formed by an etching process. The light incident on the HOE is transmitted in a region having the grooves 52 without a phase delay. Meanwhile, the phase of a P-polarized light component or S-polarized light component is reversed by 1800 in a region without the grooves 52. Accordingly, a polarized light component passed through the HOE, such as a light 54 of a Ppolarized light component, is transmitted directly while the other polarized light component such as a light 55 of an S-polarized light component is diffractively transmitted. The HOE 50 can transmit the light directly or diffractively according to the polarized light component of the incident light, however, the material of the substrate used therefor, i.e., LiNb3, is expensive.
Thus, manufacturing costs of the conventional optical pickup adopting the HOE are high.
With a view to overcome or reduce the above defect, it is an aim of embodiments of the present invention to provide an optical pickup adopting a holographic optical element (HOE) formed by stacking multiple thin layers.
It is another aim of embodiments of the present invention to provide an optical pickup adopting a reflective type HOE formed by stacking multiple thin layers.
According to a first aspect of the invention, there is provided an optical pickup comprising: a light source; an objective lens for converging light emitted from the light source on a recording medium; a holographic optical element (HOE) arranged along an optical path between the light source and the objective lens, for changing the path of the incident light; a phase delay plate arranged between the HOE and the recording medium, for changing the polarization direction of the incident light; and a photodetector for receiving the light reflected by the recording medium via the HOE, wherein the HOE includes a transparent substrate for transmitting the incident light, multiple thin layers formed by alternately stacking a first thin layer and a second thin layer each having different reflective indices on the transparent substrate, and a reflection layer coated on the transparent substrate and one side of the multiple thin layers for completely reflecting the incident light.
Preferably, the P-polarized light component and the
S-polarized light component of the incident light, passed through said multiple thin layers, have a phase difference of 90 .
Said phase delay plate is preferably formed by alternately stacking a first coating layer and a second coating layer each having different reflective indices to delay the phase of the incident light such that incident
P- and S-polarized light components have a phase difference of 900.
A collimating lens may be provided arranged along the optical path between said light source and said HOE, for collimating the divergent light emitted from said light source.
According to a second aspect of the invention, there is provided an optical pickup comprising: a light source; an objective lens for converging light emitted from said light source on a recording medium; an HOE arranged at a position along an optical path between said light source and said objective lens, for changing the travelling path of the incident light; a phase delay plate arranged between said HOE and the recording medium, for changing a polarization direction of the incident light; and a photodetector for receiving the light reflected by the recording medium via said HOE, wherein said HOE includes a transparent substrate for transmitting the incident light, and multiple thin layers formed by alternately stacking a first thin layer and a second thin layer each having different reflective indices on said transparent substrate.
Preferably, the P-polarized light component and the
S-polarized light component of the incident light, passed through said multiple thin layers, have a phase difference of 1800.
Said phase delay plate may be formed by alternatelz stacking a first coating layer and a second coating layer each having different reflective indices to delay the phase of the incident light such that incident P- and Spolarized light components have a phase difference of 900.
The pickup may comprise a mirror at a position alonc the optical path between said light source and said HOE, for changing a travelling path of the incident light.
Preferably, said phase delay plate comprises multiply coating layers having a first coating layer and a seconc coating layer which are stacked in sequence each havinc different reflective indices, for transmitting onc polarized light component of the incident light anc reflecting the other polarized light component; and reflect ion layer formed on one side of said multiple coating layers, for completely reflecting the incident light, so as to delay the incident P- and S-polarizec light components to have a phase difference of 900.
A collimating lens may be provided arranged betweeI said light source and said HOE, for collimating thc divergent light emitted from said light source.
According to a third aspect of the invention, there is provided an optical pickup having a light source, ar objective lens for converging light emitted from the light source on a recording medium, a holographic optical element (HOE) arranged along an optical path between thc light source and the objective lens, for changing the pat of the incident light, a phase delay plate arrangec between the HOE and the recording medium, for changing polarization direction of the incident light, and photodetector for receiving the light reflected by tht recording medium, wherein the HOE comprises a polarization beam splitter for transmitting one polarized light component of the incident light and reflecting the other polarized light component thereof; and a reflection member having a hologram pattern for diffracting the light passed through the polarization beam splitter, for reflecting the incident light, wherein the HOE is arranged at an angle between the light source and the phase delay plate.
Preferably a transparent member is provided along the optical path between said polarization beam splitter and said reflection member, to impart different optical axes to respective lights reflected by said polarization beam splitter and transmitted through said polarization beam splitter.
Said polarization beam splitter may include multiple thin layers formed by stacking a plurality of thin layers to transmit one polarized light component.
Preferably, the light reflected by said polarization beam splitter and the light reflected by said reflection member have a phase difference of 900.
Said phase delay plate may be formed by alternately stacking a first coating layer and a second coating layer each having different reflective indices to delay the phase of the incident light by 90".
A collimating lens may be provided arranged along the optical path between said light source and said HOE, for collimating the divergent light emitted from said light source.
For a better understanding of the invention, and to show how embodiments of the same may be carried into effect, reference will now be made, by way of example, to the accompanying diagrammatic drawings, in which:
Figure 1 is a schematic diagram showing the optical arrangement of an optical pickup adopting a conventional
HOE;
Figure 2 is a schematic perspective view showing the conventional HOE;
Figure 3 is a schematic diagram showing the optical arrangement of an optical pickup according to a preferred embodiment of the present invention;
Figure 4 is a schematic diagram showing an example of the HOE shown in Figure 3;
Figure 5 is a schematic diagram showing another example of the HOE shown in Figure 3;
Figure 6 is a schematic diagram showing an example of the phase delay plate shown in Figure 3;
Figure 7 is a schematic diagram showing the optical arrangement of an optical pickup according to another preferred embodiment of the present invention;
Figure 8 is a schematic diagram showing an example of the HOE shown in Figure 7;
Figure 9 is a schematic diagram showing an example of the phase delay plate shown in Figure 7; and
Figure 10 is a schematic diagram showing the optical arrangement of an optical pickup according to still another preferred embodiment of the present invention.
As shown in Figure 3, an optical pickup according to a preferred embodiment of the present invention includes a light source 120, a holographic optical element (HOE) 150, a phase delay plate 160, an objective lens 170 and a photodetector 180. Here, the light source 120, the objective lens 170 and the photodetector 180 are the same as the light source 20, the objective lens 70 and the photodetector 80 described in Figure 1, thus the description thereof will be omitted. Also, preferably, a collimating lens 130 for collimating a divergent light emitted from the light source 120 is further provided along the optical path between the light source 120 and the HOE 150.
The HOE 150 is arranged at an angle along the optical path between the collimating lens 130 and the objective lens 170. The HOE 150 as a reflective type reflects the light from the light source 120 toward a recording medium 10 and the light back from the recording medium 10 toward the photodetector 180 which is near the light source 120.
According to an example of the HOE 150, the HOE shown in Figure 4 includes a polarization beam splitter 151 for transmitting a polarized light component such as the Ppolarized light component and reflecting the other polarized light component such as the S-polarized light component and a reflection member 152 having a hologram pattern 152a for diffracting the light passed through the polarization beam splitter 151, which is for completely reflecting the incident light. Also, a transparent member 153 for generating difference in optical axes of respective beams which are reflected from and transmittec through the polarization beam splitter 151 is further included between the polarization beam splitter 151 ane the reflection member 152. The polarization beam splitter 151 has a structure in which a plurality of thin layers are stacked to transmit one polarized light component.
Only the S-polarized light component among the P- and Spolarized light components incident on the HOE 150 i. < completely reflected by the polarization beam splitter 153 and only the P-polarized light component is transmittec through the polarization beam splitter 151. The light passed through the polarization beam splitter 151 ic completely reflected by the reflection member 152 and bach to the polarization beam splitter 151 to be transmitted.
Of course, the polarization beam splitter 151 car completely reflect the P-polarized light component anc transmit the S-polarized light component. Thus, while the
P- and S-polarized light components which are incident with the same phase are reflected by the HOE 150, thf phases thereof are changed into phases that are different from each other. That is, the light is divided into a light reflected by the polarization beam splitter 151 ane a light reflected by the reflection member 152, and the light reflected by the reflection member 152 ie diffractively reflected by the hologram pattern 152a. AC described previously, the reflective type HOE 150 ic arranged at an angle, so that the light entering back intc the HOE 150 after being reflected by the recording mediun 10, which entered into the recording medium 10 after beinc emitted from the light source 120, is diffractivel) reflected. Accordingly, the photodetector 180 receives ar information signal, a focusing error signal and a trackinc error signal with respect to the recording medium 1( through the above diffraction.
Another example of the HOE 150 will be described now with reference to Figure 5. As shown in Figure 5, the HOE 150 includes a transparent substrate 154, multiple thin layers 155 stacked on parts of the transparent substrate 154, and a reflection layer 158 coated over the transparent substrate 154 and the multiple thin layers 155. The reflection layer 158 is formed by a metal coating or a reflection coating.
The transparent substrate 154 directly transmits incident light. Thus, the P- and S-polarized light components toward the transparent substrate 154 are transmitted without a phase delay. The multiple thin layers 155 are formed by alternately stacking a first thin layer 156 having a reflective index of nl and a second thin layer 157 having a reflective index of n,. The multiple thin layers 155 are obtained by forming a multi-layered structure by alternately coating the first and second thin layers 156 and 157 on the transparent substrate 154 and then partially etching the multi-layered structure. The reflective index n of the first thin layer 156 and the reflective index nh of the second thin layer 157 are different from each other.
As described above, the multiple thin layers 155 completely transmit the incident light and delay the phase of the S- or P-polarized light component by 1800. In order to completely transmit the incident light, the optical depth (A) of a pair of first and second thin layers 156 and 157 which are alternately stacked to form the multiple thin layers 155 should not be a multiple of
X/4 in which X is wavelength of the light emitted from the light source 120.
The reflection layer 158 is formed on the transparent substrate 154 and the surface of the multiple thin layers 155 by a total reflection coating, thereby completely reflecting the incident light.
Here, the multiple thin layers 155 delay the P- or Spolarized light component of the incident light by 900.
Thus, the phase of P- or S-polarized light component reflected by the reflection layer 158 after being incident on the multiple thin layers 155 is delayed by 1800 with respect to the incident light. Thus, the HOE 150 shown in
Figure 5 performs the same function as the HOE shown in
Figure 4.
The phase delay plate 160 arranged along the optical path between the HOE 150 and the objective lens 170 delays the phase of the light to change a linearly polarized light into a circularly polarized light and a circularly polarized light into a linearly polarized light. For this end, the phase delay plate 160 is formed by alternately stacking a first coating layer 161 and a second coating layer 162 which have different reflective indices. The phase delay plate 160 can control the phase difference by controlling the number of respective stacked layers of two coating layers 161 and 162. Here, preferably, the phase delay plate 160 delays the incident light by as much as 1/4 the wavelength of the light emitted from the light source 120, that is, by 900.
An optical pickup according to another preferred embodiment of the present invention will be described with reference to Figure 7. As shown in Figure 7, the optical pickup includes a light source 220, a HOE 250, a phase delay plate 260, an objective lens 270, and a photodetector 280 next to the light source 220. The light source 220, the objective lens 270 and the photodetector 280 are the same as the light source 20, the objective lens 70 and the photodetector 80 described with reference to Figure 1, thus a detailed description thereof will be omitted. Also, preferably, a collimating lens 230 for collimating the divergent light emitted from the light source 220 is further included along the optical path between the light source 220 and the HOE 250. As shown in Figure 8, the HOE 250 includes a transparent substrate 251 and multiple thin layers 255 formed on portions of the transparent substrate 251 by a multi-coating. The transparent substrate 251 directly transmits incident light. Thus, the P- and S-polarized light components toward the transparent substrate 251 are transmitted without a phase delay. The multiple thin layers 255 have a multi-layered structure which is formed by alternately stacking a first thin layer 256 having a reflective index of n, and a second thin layer 256 having a reflective index of nh on the transparent substrate 251 and then partially etching the stacked layer. The reflective index n1 of the first thin layer 256 and the reflective index nh of the second thin layer 257 are different from each other. The multiple thin layers 255 having the multi-layered structure completely transmits the incident light and delays the phases of the S- and P-polarized light components of the incident light by 1800.
Here, the HOE 250 for reversing the phase of the Spolarized light component is defined as an S-type HOE while the HOE 250 for reversing the phase of the Ppolarized light component is defined as a P-type HOE.
When adopting the S-type HOE, the multiple thin layers 255 directly transmit the P-polarized light component without a phase delay and reversely transmits the S-polarized light component by 1800. Thus, compared with a light incident on a portion of the transparent substrate 251 where the multiple thin layers 255 are not formed, the HOE functions with respect to the S-polarized light component.
On the contrary, when adopting the P-type HOE, the multiple thin layers 255 directly transmit the S-polarized light component without a phase delay and reversely transmits the P-polarized light component by 1800. Thus, compared with a light incident on the portion of the transparent substrate 251 where the multiple thin layers 255 are not formed, the HOE functions with respect to the
P-polarized light component.
The phase delay plate 260 is arranged at an angle at a position along the optical path between the HOE 250 and the objective lens 270 and changes an incident circularly polarized light into a linearly polarized light and an incident linearly polarized light into a circularly polarized light. As shown in Figure 9, the phase delay plate 260 includes multiple coating layers 263 having a first coating layer 261 and a second coating layer 262 which are alternately stacked with different reflective indices, and a reflection layer 264 coated on one side of the multiple coating layers 263. In the phase delay plate 260 having the above structure, the light is completely reflected by the reflection layer 264, so that a phase difference exists between the incident light and the light passed through the multiple coating layers 263 by 450.
Here, one polarized light component incident from the light source 220 is reflected by the multiple coating layers 263, and the other polarized light component is transmitted through the multiple coating layers 263 and then reflected by the reflection layer 264. For example, the S-polarized light component among the P- and Spolarized light components having the same phase is reflected by the multiple coating layers 263, and the Ppolarized light component is transmitted through the multiple coating layers 263 and then completely reflected by the reflection layer 264. Thus, the phases of the Pand S-polarized light components reflected by the phase delay plate 260 become different from each other. Here, a phase delay of 900 exists between the P- and S-polarized light components in order to change an incident linearly polarized light component into a circularly polarized light component and an incident circularly polarized light component into a linearly polarized light component.
An optical pickup according to still another preferred embodiment of the present invention will be described with reference to Figure 10. As shown in Figure 10, the optical pickup includes a light source 320, a reflecting mirror 340, an HOE 350, a phase delay plate 360, an objective lens 370 and a photodetector 380 arranged next to the light source 320. The light source 320 and the reflecting mirror 340, the objective lens 370 and the photodetector 380 are the same as the light source 20, the reflecting mirror 40 and the objective lens 70 and the photodetector 80 described with reference to Figure 1, thus a detailed description thereof will be omitted.
Preferably, a collimating lens 330 for collimating the divergent light emitted from the light source 320 is arranged at a position along the optical path between the light source 320 and the HOE 350.
As shown in Figure 8, the HOE 350 includes a transparent substrate 251 and multiple thin layers 255 formed on part of the transparent substrate 251 by a multiple coating. The HOE 350 diffractively 'transmits the light incident from the recording medium 10. The phase delay plate 360 is formed by alternately stacking a first coating layer 161 and a second coating layer 162 each having different reflective indices as shown in Figure 6, which can control the phase difference by controlling the number of respective stacked layers of two coating layers 161 and 162. The phase delay plate 360 transmits the incident light by delaying the light emitted from the light source 120, by as much as 1/4 the wavelength of the light, that is, 900.
As described above, optical pickups according to embodiments of the present invention adopt a low-priced
HOE and phase delay plate which have a multi-layered structure instead of a high-priced substrate made of LiNb3, thereby reducing the manufacturing cost. Also, the function of a reflecting mirror located along the optical path between the light source and the HOE can be replaced by the reflective type HOE or the phase delay plate, thereby providing a small optical pickup having a simple optical structure.
The reader's attention is directed to all papers and documents which are filed concurrently with or previous to this specification in connection with this application and which are open to public inspection with this specification, and the contents of all such papers and documents are incorporated herein by reference.
All of the features disclosed in this specification (including any accompanying claims, abstract and drawings), and/or all of the steps of any method or process so disclosed, may be combined in any combination, except combinations where at least some of such features and/or steps are mutually exclusive.
Each feature disclosed in this specification (including any accompanying claims, abstract and drawings), may be replaced by alternative features serving the same, equivalent or similar purpose, unless expressly stated otherwise. Thus, unless expressly stated otherwise, each feature disclosed is one example only of a generic series of equivalent or similar features.
The invention is not restricted to the details of the foregoing embodiment(s). The invention extends to any novel one, or any novel combination, of the features disclosed in this specification (including any accompanying claims, abstract and drawings), or to any novel one, or any novel combination, of the steps of any method or process so disclosed.
Claims (10)
1. An optical pickup comprising:
a light source;
an objective lens for converging light emitted from said light source on a recording medium;
a holographic optical element (HOE) arranged along an optical path between said light source and said objective lens, for changing the travelling path of the incident light;
a phase delay plate arranged between said HOE and the recording medium, for changing the polarization direction of the incident light; and
a photodetector for receiving the light reflected by the recording medium via said HOE,
wherein said HOE includes a transparent substrate for transmitting the incident light, multiple thin layers formed by alternately stacking a first thin layer and a second thin layer each having different reflective indices on said transparent substrate, and a reflection layer coated on said transparent substrate and one side of said multiple thin layers for completely reflecting the incident light.
2. An optical pickup as claimed in claim 1, wherein the
P-polarized light component and the S-polarized light component of the incident light, passed 'through said multiple thin layers, have a phase difference of 900.
3. An optical pickup as claimed in claim 1 or 2, wherein said phase delay plate is formed by alternately stacking a first coating layer and a second coating layer each having different reflective indices to delay the phase of the incident light such that incident P- and S-polarized light components have a phase difference of 90 .
4. An optical pickup as claimed in claim 1, 2 or 3, further comprising a collimating lens arranged along the optical path between said light source and said HOE, for collimating the divergent light emitted from said light source.
5. An optical pickup comprising:
a light source;
an objective lens for converging light emitted from said light source on a recording medium;
an HOE arranged at a position along an optical path between said light source and said objective lens, for changing the travelling path of the incident light;
a phase delay plate arranged between said HOE and the recording medium, for changing a polarization direction of the incident light; and
a photodetector for receiving the light reflected by the recording medium via said HOE,
wherein said HOE includes a transparent substrate for transmitting the incident light, and multiple thin layers formed by alternately stacking a first thin layer and a second thin layer each having different reflective indices on said transparent substrate.
6. An optical pickup as claimed in claim 5, wherein the
P-polarized light component and the S-polarized light component of the incident light, passed through said multiple thin layers, have a phase difference of 1800.
7. An optical pickup as claimed in claim 5 or 6, wherein said phase delay plate is formed by alternately stacking a first coating layer and a second coating layer each having different reflective indices to delay the phase of the incident light such that incident P- and S- polarized light components have a phase difference of 900.
8. An optical pickup as claimed in claim 7, further comprising a mirror at a position along the optical path between said light source and said HOE, for changing a travelling path of the incident light.
9. An optical pickup as claimed in claim 5, wherein said phase delay plate comprises multiple coating layers having a first coating layer and a second coating layer which are stacked in sequence each having different reflective indices, for transmitting one polarized light component of the incident light and reflecting the other polarized light component; and a reflection layer formed on one side of said multiple coating layers, for completely reflecting the incident light, so as to delay the incident P- and Spolarized light components to have a phase difference of 900.
10. An optical pickup as claimed in claim 5, 6, 7, 8 or 9, further comprising a collimating lens arranged between said light source and said HOE, for collimating the divergent light emitted from said light source.
10. An optical pickup as claimed in claim 5, 6, 7, 8 or 9, further comprising a collimating lens arranged between said light source and said HOE, for collimating the divergent light emitted from said light source.
11. An optical pickup having a light source, an objective lens for converging light emitted from said light source on a recording medium, a holographic optical element (HOE) arranged along an optical path between said light source and said objective lens, for deflecting the path of the incident light, a phase delay plate arranged between said
HOE and the recording medium, for changing a polarization of the incident light, and a photodetector for receiving the light reflected by the recording medium,
wherein said HOE comprises a polarization beam splitter for transmitting one polarized light component of the incident light and reflecting the other polarized light component thereof; and a reflection member having a hologram pattern for diffracting the light passed through said polarization beam splitter, and for reflecting said light,
wherein said HOE is arranged at an angle to said light source and to said phase delay plate.
12. An optical pickup as claimed in claim 11, wherein a transparent member is further provided along the optical path between said polarization beam splitter and said reflection member, to impart different optical axes to respective lights reflected by said polarization beam splitter and transmitted through said polarization beam splitter.
13. An optical pickup as claimed in claim 1 or claim 12, wherein said polarization beam splitter includes multiple thin layers formed by stacking a plurality of thin layers to transmit one polarized light component.
14. An optical pickup as claimed in claim 11, 12 or 13, wherein the light reflected by said polarization beam splitter and the light reflected by said reflection member have a phase difference of 900.
15. An optical pickup as claimed in any of the preceding claims, wherein said phase delay plate is formed by alternately stacking a first coating layer and a second coating layer each having different reflective indices to delay the phase of the incident light by 900.
16. An optical pickup as claimed in any of the preceding claims, further comprising a collimating lens arranged along the optical path between said light source and said
HOE, for collimating the divergent light emitted from said light source.
17. An optical pickup substantially as herein described with reference to Figure 3, 4 and 6.
18. An optical pickup substantially as herein described with reference to Figures 3, 5 and 6.
19. An optical pickup substantially as herein described with reference to Figures 7, 8 and 9.
20. An optical pickup substantially as herein described with reference to Figure 10.
Amendments to the claims have been fled as follows
CLAIMS 1. An optical pickup comprising:
a light source;
an objective lens for converging light emitted from said light source on a recording medium;
a holographic optical element (HOE) arranged along an optical path between said light source and said objective lens, for changing the travelling path of the incident light;
a phase delay plate arranged between said HOE and the recording medium, for changing the polarization direction of the incident light; and
a photodetector for receiving the light reflected by the recording medium via said HOE,
wherein said HOE includes a transparent substrate for transmitting the incident light, multiple thin layers formed by alternately stacking a first thin layer and a second thin layer each having different reflective indices on said transparent substrate, and a reflection layer coated on said transparent substrate and one side of said multiple thin layers for completely reflecting the incident light.
2. An optical pickup as claimed in claim 1, wherein the
P-polarized light component and the S-polarized light component of the incident light, passed through said multiple thin layers, have a phase difference of 900.
3. An optical pickup as claimed in claim 1 or 2, wherein said phase delay plate is formed by alternately stacking a first coating layer and a second coating layer each having different reflective indices to delay the phase of the incident light such that incident P- and S-polarized light components have a phase difference of 900.
4. An optical pickup as claimed in claim 1, 2 or 3, further comprising a collimating lens arranged along the optical path between said light source and said HOE, for collimating the divergent light emitted from said light source.
5. An optical pickup comprising:
a light source;
an objective lens for converging light emitted from said light source on a recording medium;
an HOE arranged at a position along an optical path between said light source and said objective lens, for changing the travelling path of the incident light;
a phase delay plate arranged between said HOE and the recording medium, for changing a polarization direction of the incident light; and
a photodetector for receiving the light reflected by the recording medium via said HOE,
wherein said HOE includes a transparent substrate for transmitting the incident light, and multiple thin layers formed by alternately stacking a first thin layer and a second thin layer each having different reflective indices on said transparent substrate.
6. An optical pickup as claimed in claim 5, wherein the
P-polarized light component and the S-polarized light component of the incident light, passed through said multiple thin layers, have a phase difference of 1800.
7. An optical pickup as claimed in claim 5 or 6, wherein said phase delay plate is formed by alternately stacking a first coating layer and a second coating layer each having different reflective indices to delay the phase of the incident light such that incident P- and S- polarized light components have a phase difference of 900.
8. An optical pickup as claimed in claim 7, further comprising a mirror at a position along the optical path between said light source and said HOE, for changing a travelling path of the incident light.
9. An optical pickup as claimed in claim 5, wherein said phase delay plate comprises multiple coating layers having a first coating layer and a second coating layer which are stacked in sequence each having different reflective indices, for transmitting one polarized light component of the incident light and reflecting the other polarized light component; and a reflection layer formed on one side of said multiple coating layers, for completely reflecting the incident light, so as to delay the incident P- and Spolarized light components to have a phase difference of 900.
Applications Claiming Priority (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
KR1019960031540A KR100188963B1 (en) | 1996-07-30 | 1996-07-30 | Optical pickup device |
KR1019960031539A KR100219669B1 (en) | 1996-07-30 | 1996-07-30 | Optical pickup device |
GB9714743A GB2315909B (en) | 1996-07-30 | 1997-07-15 | Optical pickup |
Publications (3)
Publication Number | Publication Date |
---|---|
GB9816618D0 GB9816618D0 (en) | 1998-09-30 |
GB2326016A true GB2326016A (en) | 1998-12-09 |
GB2326016B GB2326016B (en) | 1999-02-17 |
Family
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Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
GB9816618A Expired - Fee Related GB2326016B (en) | 1996-07-30 | 1997-07-15 | Optical pickup |
Country Status (1)
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GB (1) | GB2326016B (en) |
Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP0612068A2 (en) * | 1993-02-16 | 1994-08-24 | Nec Corporation | Optical head device and birefringent diffraction grating polarizer and polarizing hologram element used therein |
EP0740294A1 (en) * | 1995-04-26 | 1996-10-30 | Matsushita Electric Industrial Co., Ltd. | Optical head |
-
1997
- 1997-07-15 GB GB9816618A patent/GB2326016B/en not_active Expired - Fee Related
Patent Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP0612068A2 (en) * | 1993-02-16 | 1994-08-24 | Nec Corporation | Optical head device and birefringent diffraction grating polarizer and polarizing hologram element used therein |
EP0740294A1 (en) * | 1995-04-26 | 1996-10-30 | Matsushita Electric Industrial Co., Ltd. | Optical head |
Also Published As
Publication number | Publication date |
---|---|
GB2326016B (en) | 1999-02-17 |
GB9816618D0 (en) | 1998-09-30 |
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Legal Events
Date | Code | Title | Description |
---|---|---|---|
PCNP | Patent ceased through non-payment of renewal fee |
Effective date: 20090715 |