1. Field of the Invention
The present invention relates to an optical pickup device for separately emitting beam lights having different wavelengths from a plurality of light sources and transmitting the beam lights through a common collimator lens and an objective lens and irradiating the beam lights onto an optical disc.
2. Description of the Related Art
The optical pickup device includes that which emits beam lights having different wavelengths from a plurality of light sources and irradiates the beam lights onto an optical disc through a common collimator lens, a rising mirror, and an objective lens. Specifically, in this type of optical pickup device, for example, the beam lights such as red and blue corresponding to the type of optical disc is emitted from the light source, converted to an infinite light in which the light flux is parallel by the collimator lens, reflected by the rising mirror so as to enter the objective lens perpendicularly, collected by the objective lens, and irradiated onto the optical disc. The light reflected by the optical disc is received by a light detector via the objective lens, the rising mirror, and the collimator lens, photo-electric converted by the light detector, and focusing error signal, tracking error signal, reproduction signal of the recorded data of the optical disc and recording signal etc. are detected.
In order to obtain a satisfactory reproduction signal and the like, an ideal intensity distribution of the beam light to be entered into the objective lens is a circle. However, the intensity distribution of the beam light emitted from the light source and transmitted through the collimator lens may be an ellipse due to the properties of the light source. Furthermore, when the rising mirror is made up of parallel flat plates that reflect the light at the surface, the intensity distributions of the beam light entering the rising mirror from the collimator lens and the beam light exiting from the rising mirror towards the objective lens have the same shape. Therefore, the elliptical beam light in which the intensity distribution is shifted from the ideal distribution enters the objective lens, and thus a satisfactory reproduction signal and the like cannot be obtained. In Japanese Laid-Open Patent Publication No. 10-320811, the rising mirror is configured by a light transmissive rising prism and a light reflective diffraction grating arranged on an inclined surface of the prism on the side opposite to the light source, where usage efficiency of the beam light is changed by controlling the application voltage on the diffraction grating, but no description is made on the shape of the intensity distribution of the beam light.
The rising mirror, when being made up of light transmissive rising prism etc., has the wavelength dispersion characteristic that the angle of refraction changes by the wavelength of the beam light. Thus, even if the optical axes of the beam lights having different wavelengths coincide when the beam lights enter the rising mirror from the collimator lens, one optical axis will be tilted with respect to the other optical axis when the beam lights exit from the rising mirror towards the objective lens, whereby coma aberration is generated.
When both beam lights having different wavelengths are converted to infinite lights and entered to the common objective lens, a large spherical aberration is generated in one beam light. Furthermore, when one of the beam lights having different wavelengths is converted to finite light in which the light flux diverges, astigmatism is generated in the beam light exiting from the rising mirror towards the objective lens. In Japanese Laid-Open Patent Publication No. 2005-32299 (paragraph 0105), a diffraction grating made of polarization hologram etc. for diffracting the returned light from the optical disc is arranged, and by adjusting the shape of the diffraction grating, a function of correcting the astigmatism is added. However, no description is made on correcting other aberrations. In Japanese Laid-Open Patent Publication No. 2004-139672, a diffraction grating for diffracting the returned light from the optical disc is arranged on the light detector side of the half mirror, but no description is made on correction of aberrations.
In view of solving the above problems, the present invention aims to provide an optical pickup device for reducing coma aberration, spherical aberration, and astigmatism while entering the beam light having an ideal intensity distribution to the objective lens.
The present invention provides an optical pickup device for separately emitting beam lights having different wavelengths from a plurality of light sources, transmitting the beam lights through a common collimator lens and an objective lens, and irradiating the beam lights onto an optical disc; wherein the beam light emitted from one light source is converted to an infinite light in which light flux is parallel by the collimator lens, and exit from the collimator lens; the beam light emitted from the other light source is converted to a finite light in which the light flux diverges, and exit from the collimator lens; the device including a beam shaping element, including a light transmissive prism formed to a wedge shape, for entering the beam light exit from the collimator lens from a first surface, reflecting the beam light at a second surface opposing the first surface, and exiting the beam light from the first surface towards the objective lens and converting a horizontal to vertical ratio of the beam light; and a light reflective diffraction grating arranged on the second surface of the beam shaping element, the diffraction grating being formed to a pattern for correcting wavelength dispersion characteristic of the beam shaping element and astigmatism generated on the finite light by the beam shaping element.
In this manner, it is possible to enter the circular beam light having an ideal intensity distribution to the objective lens by converting the horizontal to vertical ratio of the intensity distribution of the beam light to substantially one in the beam shaping element, even if the intensity distribution of the beam light emitted from the light source and transmitted through the collimator lens is an ellipse due to the properties of the light source. Furthermore, since the wavelength dispersion characteristic of the beam shaping element is corrected by the diffraction grating, the optical axes of the beam lights having different wavelengths exit from the beam shaping element towards the objective lens become parallel, thereby suppressing occurrence of coma aberration. One of the beam lights having different wavelengths is converted to an infinite light in the collimator lens and entered to the objective lens, and the other beam light is converted to finite light and entered to the objective lens, and thus spherical aberration in the latter beam light can be reduced while suppressing occurrence of spherical aberration in the former beam light. Furthermore, since the astigmatism generated on the finite light by the beam shaping element is corrected by the diffraction grating, the astigmatism of the beam light exit from the beam shaping element towards the objective lens can be reduced. Consequently, satisfactory reproduction signal and recording signal can be obtained by the reflected light from the optical disc.
A typical embodiment of the present invention provides an optical pickup device for separately emitting beam lights having different wavelengths from a plurality of light sources, transmitting the beam lights through a common collimator lens and an objective lens, and irradiating the beam lights onto an optical disc; wherein the beam light emitted from one light source is converted to an infinite light in which light flux is parallel by the collimator lens, and exit from the collimator lens; the beam light emitted from the other light source is converted to a finite light in which the light flux diverges, and exit from the collimator lens; the device including a beam shaping element, including a light transmissive rising prism formed to a wedge shape, for entering the beam light exit from the collimator lens from a first surface, reflecting the beam light at a second surface opposing the first surface, and exiting the beam light from the first surface towards the objective lens and converting a horizontal to vertical ratio of an intensity distribution of the beam light to substantially one; and a diffraction grating integrally arranged by forming a plurality of concave-convex parts on the second surface for reflecting the beam light of the beam shaping element, the diffraction grating having a pattern combining a pattern for canceling out wavelength dispersion characteristic of the beam shaping element and a pattern for reducing astigmatism generated on the finite light by the beam shaping element.
In this manner, it is possible to enter the circular beam light having an ideal intensity distribution to the objective lens by converting the horizontal to vertical ratio of the intensity distribution of the beam light to substantially one in the beam shaping element. Furthermore, the wavelength dispersion characteristic of the beam shaping element is canceled out by the diffraction grating, and the optical axes of the beam lights having different wavelengths exit from the beam shaping element towards the objective lens become parallel, thereby suppressing occurrence of coma aberration. One of the beam lights having different wavelengths is converted to an infinite light in the collimator lens and entered to the objective lens thereby suppressing spherical aberration, and the other beam light is converted to finite light and entered to the objective lens thereby reducing spherical aberration. Furthermore, since the astigmatism generated on the finite light by the beam shaping element is reduced in the diffraction grating, the astigmatism of the beam light exit from the beam shaping element towards the objective lens can be reduced. Consequently, satisfactory reproduction signal and recording signal can be obtained by the reflected light from the optical disc. Moreover, since the diffraction grating is integrally arranged on the reflecting surface of the beam shaping element, the number of components is few, the beam shaping element and the diffraction grating can be inexpensively and easily manufactured, and the cost of the optical pickup device can be suppressed low.
According to the present invention, the beam light having an ideal intensity distribution can be entered to the objective lens, and spherical aberration, comma aberration, and astigmatism can be reduced.
Light sources 1, 2 include different type semiconductor laser elements. The light sources 1, 2 separately emit a beam light of red and blue having different wavelengths. Beam splitters 3, 4 transmit and reflect the beam light. A collimator lens 5 transmits the beam light and converts the beam light to an infinite light having parallel light flux. A beam shaping element 6 includes a light transmissive rising prism formed into a wedge shape as shown in
The red and blue beam lights are emitted from the light sources 1, 2 according to the type of disc 11 such as a DVD or a Blu-Ray Disc (registered trademark). The beam light emitted from the light source 1 transmits through the beam splitters 3, 4 and enters the collimator lens 5. The beam light emitted from the light source 2 is reflected by the beam splitter 3 so that the advancing direction is bent, transmitted through the beam splitter 4, and entered into the collimator lens 5. The beam light is exit from the collimator lens 5, entered from a first surface (surface on lens 5, 8 side) of the beam shaping element 6, reflected at a second surface (reflecting surface on the side opposite to the lens 5, 8 i.e. diffraction grating 7) opposing the first surface so that the advancing direction is bent upward, and exit from the first surface towards the objective lens 8. Then the beam light is collected by the objective lens 8 and irradiated on the recording surface of the optical disc 11. The light reflected by the optical disc 11 is transmitted through the objective lens 8, reflected by the beam shaping element 6 so that the advancing direction is bent, transmitted through the collimator lens 5, reflected by the beam splitter 4 so that the advancing direction is bent, and received by the light detector 9. The light received by the light detector 9 is converted to electrical signals, and focusing error signal, tracking error signal, and reproduction signal of the recorded data of the optical disc 11 or recording signal are detected.
The spot of the beam light entering the beam shaping element 6 is a circle as shown in
In the beam shaping element 6, the angle of refraction changes depending on the wavelength of the beam light. Due to this wavelength dispersion characteristic, when the diffraction grating 7 is not arranged on the reflecting surface of the beam shaping element 6 as shown in
The objective lens 8 is designed such that the spherical aberration is zero (does not occur) when the beam light of shorter wavelength out of the beam lights having different wavelengths emitted from the light sources 1, 2 is converted to an infinite light of parallel light flux and entered thereto. Thus, when both beam lights having different wavelengths are converted to infinite light by the collimator lens 5 and entered to the objective lens 8, a large spherical aberration is generated in the beam light of long wavelength. As a countermeasure therefor, the advancing distance of the beam light from the light sources 1, 2 to the collimator lens 5 is adjusted, so that the beam light of shorter wavelength out of the beam lights having different wavelengths emitted from the light sources 1, 2 is converted to an infinite light by the collimator lens 5 and exit from the collimator lens 5 as shown with a thin solid line in
When the beam light enters the beam shaping element 6 as finite light, astigmatism is generated in the beam light exit from the beam shaping element 6 towards the objective lens 8. The countermeasure therefor is performed by the diffraction grating 7. The pattern of the diffraction grating 7 suited for correction to suppress astigmatism is a curved stripe pattern that curves from each side towards the center as shown in
In order to perform both countermeasures for coma aberration and astigmatism, the diffraction grating 7 having a curved stripe pattern that curves from one side to the other side of the opposing sides as shown in
According to the above-described manner, even if the intensity distribution of the beam lights emitted from the light sources 1, 2 and transmitted through the collimator lens 5 is an ellipse due to the properties of the light sources 1, 2, the horizontal to vertical ratio of the intensity distribution of the beam light is converted to substantially one in the beam shaping element 6, whereby the circular beam light having an ideal intensity distribution enters the objective lens 8. Since the wavelength dispersion characteristic of the beam shaping element 6 is corrected by the diffraction grating 7 having the pattern of
The present invention may employ various modes other than the above embodiment. For instance, an example of integrally arranging the diffraction grating 7 on the reflecting surface of the beam shaping element 6 has been described in the above embodiment, but the present invention is not limited thereto. The beam shaping element and the light reflective diffraction grating may be separately manufactured and the diffraction grating may be attached to the beam shaping element. The diffraction grating may be electrically or mechanically driven.
In the above embodiment, an example of applying the present invention to the optical pickup device 10 capable of reproducing and recording data with respect to the optical disc 11 has been described, but the present invention is also applicable to an optical pickup device capable of only reproducing data with respect to the optical disc.
Number | Date | Country | Kind |
---|---|---|---|
2006-310748 | Nov 2006 | JP | national |