1. Field of the Invention
The present invention relates to an optical pickup of an optical disk device.
2. Description of the Related Art
An optical disk device for reproducing/recording an optical disk such as a CD or DVD has an optical pickup installed therein. In the related art, there has been developed an optical pickup, which is adapted for recording/reproducing different kinds of disks.
For example, a DVD recorder uses an optical pickup adapted for recording a DVD and reproducing a CD.
A laser beam is emitted from a laser diode 1. The laser diode 1 has a configuration shown in
The DVD recording laser beam or the CD reproducing laser beam, emitted from the laser diode 1 thus configured, is divided through a grating 18 into one main beam and two sub-beams. Moreover, the laser beam having passed through a PBS (Polarized Beam Splitter) 19 and a quarter-wavelength plate 20 is reflected by a launching mirror 21 into a collimator lens 22. The laser beam having entered the collimator lens 22 is introduced as a parallel beam into an aperture 23. This aperture 23 has such a wavelength selectivity that it passes the DVD recording laser beam (of the wavelength of 650 nm) as it is but restricts the CD recording laser beam (of the wavelength of 780 nm). The laser beam having passed through the aperture 23 is condensed by an objective lens 24 onto the recording face of a disk 25.
The laser beam reflected by the disk 25 is passed through the objective lens 24, the aperture 23 and the collimator lens 22, and is reflected by the launching mirror 21 through the quarter-wavelength plate 20 into the PBS 19. The laser beam to enter the PBS 19 has passed twice through the quarter-wavelength plate 20 so that it is reflected by the PBS 19 into a cylindrical lens 26.
The cylindrical lens 26 has a curved concave surface, as shown in
The laser beam thus having passed through the cylindrical lens 26 is received by a photo-detector 27.
Here, the optical pickup thus configured has the following problems.
The upper face diagram of the distribution of the intensity of light just after emitted from the objective lens 24 of the case, in which the deviation angle deviates orthogonally relative to the active layer from the reference axis, as shown in
In response to this deviation of the distribution of the intensity of light just after emitted from the objective lens 24, the distribution of the intensity of light in the light receiving portion of the photo-detector 27 also deviates. The distribution of the intensity of light and the center-of-gravity position (i.e., a mark X) in the light receiving portion 30 (for the DVD main beam) and the light receiving portion (for the CD main beam) of the case, in which the emission direction deviates orthogonally to the active layer from the reference axis, as shown in
If the four light receiving faces of the light receiving portion 30 are designated by a, b, c and d and if the four light receiving faces of the light receiving portion 33 are designated by A, B, C and D, as shown in
PDY1=((Ia+Ib)−(Ic+Id))/(Ia+Ib+Ic+Id)×100 (1)
PDY2=((IA+IB)−(IC+ID))/(IA+IB+IC+ID)×100 (2)
Here: PDY1 [%]: Light receiving balance of the DVD light receiving portion; PDY2 [%]: Light receiving balance of the CD light receiving portion; and Ii: Intensity of light on the light receiving face i.
The case, as shown in
JP-A-2003-22543 discloses that the deviation of the light receiving balance due to the deviation of the emission direction of the laser beam from the LD from the reference axis parallel to the active layer is adjusted by inclining the LD thereby to adjust the light receiving balance. However, this adjustment has to be made for every optical pickups, thereby to raise the cost.
In view of the problems thus far described, the present invention has been conceived to provide an optical pickup capable of suppressing the rise in the cost.
In order to achieve the aforementioned object, according to the invention, there is provided an optical pickup comprising: a monolithic laser diode; and a photo-detector having each light receiving portion formed on one substrate and corresponding to each laser beam emitted from the monolithic laser diode,
wherein the monolithic laser diode is arranged such that each light emitting point belonging to the monolithic laser diode is positioned on each reference axis, and such that each reference axis is inclined from the direction orthogonal to each laminar face containing the each light emitting point and in the direction orthogonal to the active layer by an angle of an average value of the angular deviation of the emission direction orthogonal to the active layer at the light emitting point belonging to the monolithic laser diode.
For example, the invention may be embodied by an optical pickup comprising: a laser diode including a stem, a base protruded from the principal face of the stem, a sub-mount arranged on the base, and a monolithic laser diode arranged over the sub-mount; and a photo-detector having each light receiving portion formed on one substrate and corresponding to each laser beam emitted from the monolithic laser diode, wherein the mounting face of the base for mounting the sub-mount is formed by such an angle with respect to an axis orthogonal to the principal face of the stem as corresponds to an average value of the angular deviation of the emission direction orthogonal to an active layer at a light emitting point belonging to the monolithic laser diode; and the laser diode is arranged such that each light emitting point belonging to the monolithic laser diode is positioned on each reference axis, and such that each reference axis and the axis orthogonal to the principal face of the step are substantially parallel to each other.
For example, the invention may also be embodied by an optical pickup comprising: a laser diode including a stem, a base protruded from the principal face of the stem, a sub-mount arranged on the base, and a monolithic laser diode arranged over the sub-mount; an LD holder having a hole for inserting the laser diode; and a photo-detector having each light receiving portion formed on one substrate and corresponding to each laser beam emitted from the monolithic laser diode, wherein the hole belonging to the LD holder is formed such that the axis extending through the center of the hole is inclined from the axis parallel to the upper face and the lower face of the LD holder by such an angle as corresponds to an average value of the angular deviation of the emission direction orthogonal to an active layer at a light emitting point belonging to the monolithic laser diode; and the LD holder having the laser diode inserted thereinto is arranged such that each light emitting point belonging to the monolithic laser diode is positioned on each reference axis, and such that each reference axis and the axis parallel to the upper face and the lower face of the LD holder are substantially parallel to each other.
For example, the invention may also be embodied by an optical pickup comprising: a laser diode including a stem, abase protruded from the principal face of the stem, a sub-mount arranged on the base, and a monolithic laser diode arranged over the sub-mount; an LD holder having a hole for inserting the laser diode and protrusions formed on the upper face and the lower face; an LD spring having a base portion and leaf portions formed by folding the two ends of the base portion; and a photo-detector having each light receiving portion formed on one substrate and corresponding to each laser beam emitted from the monolithic laser diode, wherein the hole belonging to the LD holder is formed such that the axis extending through the center of the hole is substantially parallel to the upper face and the lower face of the LD holder; the leaf portions have holes for fitting the protrusions therein, and in that the LD spring is arranged such that the leaf portions are substantially parallel to each reference axis; and the LD holder having the laser diode inserted thereinto is fixed on the LD spring by fitting the protrusions in the holes belonging to the leaf portions, such that each light emitting point belonging to the monolithic laser diode is positioned on each reference axis, and such that each reference axis is inclined from the direction orthogonal to each laminar face containing the each light emitting point and in the direction orthogonal to the active layer by an angle of an average value of the angular deviation of the emission direction orthogonal to the active layer at the light emitting point belonging to the monolithic laser diode.
For example, the invention may also be embodied by an optical pickup comprising: a laser diode including a stem, a base protruded from the principal face of the stem, a sub-mount arranged on the base, and a monolithic laser diode arranged over the sub-mount; an LD holder having a hole for inserting the laser diode and protrusions formed on the upper face and the lower face; an LD spring having a base portion and first and leaf portions formed by folding the end portions of the base portion substantially perpendicularly; a base portion for retaining the LD spring; and a photo-detector having each light receiving portion formed on one substrate and corresponding to each laser beam emitted from the monolithic laser diode, wherein the hole belonging to the LD holder is formed such that the axis extending through the center of the hole is substantially parallel to the upper face and the lower face of the LD holder; the first and second leaf portions have holes for fitting the protrusions therein, and in that the LD holder having the laser diode inserted thereinto is fixed by the LD spring such that the first leaf portion and the upper face of the LD holder, and the second leaf portion and the lower face of the LD holder are substantially parallel to each other; the base portion has a stiffening face, against which the base portion is brought into abutment, and in that the stiffening face is inclined from the axis orthogonal to each reference axis by an angle corresponding to an average value of the angular deviation of the emission direction orthogonal to the active layer at the light emitting point belonging to the monolithic laser diode; and the base portion is brought into abutment against the stiffening face such that each light emitting point belonging to the monolithic laser diode may be positioned on each reference axis, and in that the LD spring, on which the LD holder having the laser diode inserted thereinto is fixed, is retained by the base portion.
According to the optical pickup thus constituted, the average light receiving balance residual between the optical pickups can be suppressed to a small value, and the optical pickups, of which the light receiving balance residual exceeds the allowable range, can be suppressed in number, to make unnecessary an adjustment after the movement adjustment of the photo-detector thereby to suppress the rise in the cost.
The optical pickup of the invention can suppress the rise in the cost.
Embodiments of the invention are described with reference to the accompanying drawings. An optical pickup for a DVD recorder is taken as an example.
The laser diode 1 has the aforementioned configuration, as shown in
An LD holder 36 is provided with holes 36a and 36b, which extend longitudinally therethrough such that the hole 36a has a larger diameter than that of the hole 36b. The laser diode 1 is mounted on the LD holder 36 by press-fitting the stem 3 into the hole 36a so that the principal face 3a of the stem 3 may come into abutment against an abutment face 36c positioned at the boundary between the hole 36a and the hole 36b. At this time, the cap 35 is covered with the hole 36b. Moreover, protrusions 36f are formed at the substantially transverse center portions on the upper face 36d and the lower face 36e of the LD holder 36.
An LD spring 37 is a leaf spring formed of a metal sheet. The LD spring 37 includes a base portion 37a and leaf portions 37b and 37c formed by folding it at the upper and lower ends of the base portion 37a substantially perpendicularly to the base portion 37a into a generally C-shape in a side view. Moreover, the LD spring 37 is folded into a generally L-shape in a side view oppositely of the leaf portion 37c from the lower end of the base portion 37a thereby to form retaining portions 37e transversely across the leaf portion 37c. A hole 37f is formed in the substantially central portion of the base portion 37a. In the substantially transverse center portions of the leaf portions 37b and 37c, there are formed holes 37d, in which the protrusions 36f of the LD holder 36 are fitted to hold the LD spring 37 on the LD holder 36.
The base portion 38 is provided therein with a grating 18, a PES 19, a quarter-wavelength plate 20, a launching mirror 21, a collimator lens 22 and a cylindrical lens 26 (see
As described above, the laser diode 1 is integrated with the base portion 38. The laser beam, as emitted from the laser diode 1, passes through the hole of the cap 35, the holes 36a, 36b and 37f and the opening 38b and through the optical system in the base portion 38 so that it is emitted from the objective lens 24. The laser beam is reflected by the disk 25 to enter the objective lens 24 again, and passes through the optical system in the base portion 38 so that it is received by the photo-detector 27 mounted on the side face of the base portion 38.
Next, embodiments of the individual structures for achieving the object of the invention are described on the optical pickup having the structure thus made.
Here, the monolithic LD 6 has the emission direction precisions on the individual light emitting points as its specifications. The emission direction precisions orthogonal to the active layer are expressed with the average value and the dispersion of the angular deviation orthogonal to the active layer of the emission direction in the direction orthogonal to the laminar face containing the light emitting points. Here, the average value of the angular deviation of the emission direction at a light emitting point 12 for the DVD orthogonal to the active layer is designated by θA.
The sub-mount 5 is mounted on the upper leading end of the base 4 protruded from the stem 3, and the monolithic LD 6 is mounted on the upper leading end of the sub-mount 5. The cap 35 is mounted on the principal face 3a of the stem 3 and provided in its front face with a hole 35a for passing the laser beam therethrough. A mounting face 4a for mounting the sub-mount 5 is inclined by −θA with respect to the axis orthogonal to the principal face 3a of the stem 3. As shown in
As a result, the monolithic LD 6 is arranged to deviate the individual reference axes by θA orthogonally to the active layer from the direction orthogonal to the individual laminar faces containing the individual light emitting points, so that the average emission direction of the DVD light emitting point 12 is aligned with the reference axis. In case, therefore, the laser beam emitted from the DVD light emitting point 12 is received by a light receiving portion 30 (for the DVD main beam) of the photo-detector 27, the center of gravity of the intensity of light is aligned on the average with the center of the light receiving portion 30 so that the light receiving balance becomes substantially 0 on the average. If the average value of the angular deviation of the emission direction of a CD light emitting point 13 is then equal to the same value θA as that of the DVD light emitting point 12, the average emission direction of the CD light emitting point 13 is also aligned with the reference axis, and the light receiving balance in a light receiving portion 33 (for the CD main beam) of the photo-detector 27 also becomes substantially 0 on the average, so that the average light receiving balance residual becomes substantially 0.
In case the average value of the angular deviation of the emission direction of the CD light emitting point 13 is different from that of the DVD light emitting point 12, the average emission direction of the CD light emitting point 13 deviates from the reference axis. As has been described with reference to
According to this first embodiment, the average light receiving balance residual between the optical pickups can be suppressed to a small value, and the optical pickups, of which the light receiving balance residual exceeds the allowable range, can be suppressed in number, to make unnecessary an adjustment after the movement adjustment of the photo-detector thereby to suppress the rise in the cost.
In the laser diode 1, the base 4 is protruded substantially orthogonally to the principal face 3a of the stem 3. The sub-mount 5 is mounted on the upper leading end of the base 4, and the monolithic LD 6 is mounted on the upper leading end of the sub-mount 5. The cap 35 is mounted on the principal face 3a of the stem 3 and provided in its front face with the hole 35a for passing the laser beam therethrough.
As in the foregoing first embodiment, the average value of the angular deviation of the emission direction at the light emitting point 12 of the monolithic LD 6 orthogonal to the active layer is designated by θA. At this time, the hole 36a and the hole 36b are so formed that the axis extending through the centers of the hole 36a and the hole 36b of the LD holder 36 may be inclined by −θA from the axis parallel to the upper face 36d and the lower face 36e of the LD holder 36. Moreover, the stem 3 is so press-fitted in the hole 36a as to bring the principal face 3a of the stem 3 into abutment against the abutment face 36c. As shown in
As a result, the monolithic LD 6 is arranged to deviate the individual reference axes by θA orthogonally to the active layer from the direction orthogonal to the individual laminar faces containing the individual light emitting points, so that the average emission direction of the DVD light emitting point 12 is aligned with the reference axis. In case, therefore, the laser beam emitted from the DVD light emitting point 12 is received by the light receiving portion 30 (for the DVD main beam) of the photo-detector 27, the center of gravity of the intensity of light is aligned on the average with the center of the light receiving portion 30 so that the light receiving balance becomes substantially 0 on the average. If the average value of the angular deviation of the emission direction of the CD light emitting point 13 is then equal to the same value θA as that of the DVD light emitting point 12, the average emission direction of the CD light emitting point 13 is also aligned with the reference axis, and the light receiving balance in the light receiving portion 33 (for the CD main beam) of the photo-detector 27 also becomes substantially 0 on the average, so that the average light receiving balance residual becomes substantially 0. Even in case the average value of the angular deviation of the emission direction of the CD light emitting point 13 is different from that of the DVD light emitting point 12, the average light receiving balance deviation is suppressed to a small value for the aforementioned reasons.
According to this second embodiment, the average light receiving balance residual between the optical pickups can be suppressed to a small value, and the optical pickups, of which the light receiving balance residual exceeds the allowable range, can be suppressed in number, to make unnecessary an adjustment after the movement adjustment of the photo-detector thereby to suppress the rise in the cost,
In the laser diode 1, the base 4 is protruded substantially orthogonally to the principal face 3a of the stem 3 The sub-mount 5 is mounted on the upper leading end of the base 4, and the monolithic LD 6 is mounted on the upper leading end of the sub-mount 5. The cap 35 is mounted on the principal face 3a of the stem 3 and provided in its front face with the hole 35a for passing the laser beam therethrough.
In the LD holder 36, the hole 36a and the hole 36b are so formed that the axis extending through the centers of the hole 36a and the hole 36b of the LD holder 36 may be substantially parallel to the upper face 36d and the lower face 36e of the LD holder 36. Moreover, the stem 3 is so press-fitted in the hole 36a as to bring the principal face 3a of the stem 3 into abutment against the abutment face 36c. Moreover, the protrusions 36f are formed at longitudinally displaced positions on the upper face 36d and the lower face 36e of the LD holder 36.
The holes 37d are individually formed at the longitudinally displaced positions in the leaf portion 37b and the leaf portion 37c of the LD spring 37. As shown in
As a result, the monolithic LD 6 is arranged to deviate the reference axes by θA orthogonally to the active layer from the direction orthogonal to the laminar faces containing the DVD light emitting points 12, so that the average emission direction of the DVD light emitting point 12 is aligned with the reference axis. In case, therefore, the laser beam emitted from the DVD light emitting point 12 is received by the light receiving portion 30 (for the DVD main beam) of the photo-detector 27, the center of gravity of the intensity of light is aligned on the average with the center of the light receiving portion 30 so that the light receiving balance becomes substantially 0 on the average. If the average value of the angular deviation of the emission direction of the CD light emitting point 13 is then equal to the same value θA as that of the DVD light emitting point 12, the average emission direction of the CD light emitting point 13 is also aligned with the reference axis, and the light receiving balance in the light receiving portion 33 (for the CD main beam) of the photo-detector 27 also becomes substantially 0 on the average, so that the average light receiving balance residual becomes substantially 0. Even in case the average value of the angular deviation of the emission direction of the CD light emitting point 13 is different from that of the DVD light emitting point 12, the average light receiving balance deviation is suppressed to a small value for the aforementioned reasons.
According to this third embodiment, the average light receiving balance residual between the optical pickups can be suppressed to a small value, and the optical pickups, of which the light receiving balance residual exceeds the allowable range, can be suppressed in number, to make unnecessary an adjustment after the movement adjustment of the photo-detector thereby to suppress the rise in the cost.
In the laser diode 1, the base 4 is protruded substantially orthogonally to the principal face 3a of the stem 3. The sub-mount 5 is mounted on the upper leading end of the base 4, and the monolithic LD 6 is mounted on the upper leading end of the sub-mount 5. The cap 35 is mounted on the principal face 3a of the stem 3 and provided in its front face with the hole 35a for passing the laser beam therethrough.
In the LD holder 36, the hole 36a and the hole 36b are so formed that the axis extending through the centers of the hole 36a and the hole 36b of the LD holder 36 may be substantially parallel to the upper face 36d and the lower face 36e of the LD holder 36. Moreover, the stem 3 is so press-fitted in the hole 36a as to bring the principal face 3a of the stem 3 into abutment against the abutment face 36c. Moreover, the protrusions 36f are formed at longitudinally displaced positions on the upper face 36d and the lower face 36e of the LD holder 36.
The leaf portion 37b and the leaf portion 37c of the LD spring 37 are substantially orthogonal to the base portion 37a, and the holes 37d are individually formed in the leaf portion 37b and the leaf portion 37c at the longitudinally identical positions. Moreover, the protrusions 36f are so fitted in the holes 37d that the upper face 36d of the LD holder 36 and the leaf portion 37b, and the lower face 36e of the LD holder 36 and the leaf portion 37c may be substantially parallel to each other, and the LD holder 36 having the laser diode 1 press-fitted therein is fixed on the LD spring 37.
As in the foregoing first embodiment, the average value of the angular deviation of the emission direction at the light emitting point 12 of the monolithic LD 6 orthogonal to the active layer is designated by θA. At this time, as shown in
As a result, the monolithic LD 6 is arranged to deviate the individual reference axes by θA orthogonally to the active layer from the direction orthogonal to the individual laminar faces containing the individual light emitting points, so that the average emission direction of the DVD light emitting point 12 is aligned with the reference axis. In case, therefore, the laser beam emitted from the DVD light emitting point 12 is received by the light receiving portion 30 (for the DVD main beam) of the photo-detector 27, the center of gravity of the intensity of light is aligned on the average with the center of the light receiving portion 30 so that the light receiving balance becomes substantially 0 on the average. If the average value of the angular deviation of the emission direction of the CD light emitting point 13 is then equal to the same value 6 A as that of the DVD light emitting point 12, the average emission direction of the CD light emitting point 13 is also aligned with the reference axis, and the light receiving balance in the light receiving portion 33 (for the CD main beam) of the photo-detector 27 also becomes substantially 0 on the average, so that the average light receiving balance residual becomes substantially 0. Even in case the average value of the angular deviation of the emission direction of the CD light emitting point 13 is different from that of the DVD light emitting point 12, the average light receiving balance deviation is suppressed to a small value for the aforementioned reasons.
According to this fourth embodiment, the average light receiving balance residual between the optical pickups can be suppressed to a small value, and the optical pickups, of which the light receiving balance residual exceeds the allowable range, can be suppressed in number, to make unnecessary an adjustment after the movement adjustment of the photo-detector thereby to suppress the rise in the cost.
Number | Date | Country | Kind |
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P2005-239569 | Aug 2005 | JP | national |