IP Library Granted Patent US 7,639,591
Granted Patent B2
US 7,639,591 · App. 11/617,624 · Granted Dec 29, 2009

Photodetector and optical pickup apparatus

Assignees: Sanyo Electric Co., Ltd.; Sanyo Optec Design Co., Ltd.
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Quick Facts
Patent No.
US 7,639,591
App. No.
11/617,624
Granted
Dec 29, 2009
Kind
B2
Abstract

A light detecting apparatus includes a first photodetector for receiving 0 th reflected light from a first information surface, a second photodetector proximate to the first photodetector for receiving the reflected light of a positive higher-order diffracted light from the first information surface, and a third photodetector proximate to the first photodetector for receiving the reflected light of a negative higher-order diffracted light from the first information surface. Light-receiving areas of the second and the third photodetectors include other-order light receiving areas that receive reflected light of the 0 th order light from a second information surface where the 0 th order light is not be focused, and wherein portions of the other-order light receiving areas of the second and the third photodetectors include light reception prohibited areas that prohibit the reception of the reflected light of the 0 th order light from the second information surface.

Claims (43)

1. A light detecting apparatus using a differential astigmatic method to focus 0th order light on any information surfaces of a multilayer optical disc medium, the 0th order light being among 0th order light, positive higher-order diffracted light of 1st or higher order, and negative higher-order diffracted light of 1st or higher order, all of which are generated by diffracting a laser beam, the apparatus comprising:

a first photodetector that includes a light-receiving area for receiving the reflected light of the 0th order light from an information surface where the 0th order light should be focused on;

a second photodetector that is adjacent to the first photodetector leaving a predetermined space therebetween, the second photodetector including a light-receiving area for receiving the reflected light of the positive higher-order diffracted light from the information surface where the 0th order light should be focused on; and

a third photodetector that is adjacent to the first photodetector leaving a predetermined space therebetween, the third photodetector including a light-receiving area for receiving the reflected light of the negative higher-order diffracted light from the information surface where the 0th order light should be focused on, wherein

the light-receiving areas of the second and the third photodetectors include other-order light receiving areas that

receive the reflected light of the 0th order light from an information surface where the 0th order light should not be focused on,

when the focal point of the 0th order light is moved from one information surface to the other information surface, and wherein

portions of the other-order light receiving areas of the second and the third photodetectors include light reception prohibited areas that prohibit the reception of the reflected light of the 0th order light from the information surface where the 0th order light should not be focused on.

2. The light detecting apparatus of claim 1 , wherein

the light reception prohibited area is formed by masking a portion of the other-order light receiving area.

3. The light detecting apparatus of claim 2 , wherein

the shape of the light-receiving areas of the second and the third photodetectors is square, and wherein

the light reception prohibited areas are disposed on areas except areas where the reflected light of the positive and negative higher-order diffracted light from the information surface for focusing the 0th order light is changed with each of diagonal lines of the light-receiving areas of the second and the third photodetectors being a center of changing as well as being of a maximum length.

4. The light detecting apparatus of claim 1 , wherein

the light reception prohibited area is formed by cutting out a portion of the other-order light receiving area.

5. The light detecting apparatus of claim 3 , wherein

the shape of the light-receiving areas of the second and third photodetectors is square, and wherein

the light reception prohibited areas are disposed on areas except areas where the reflected light of the positive and negative higher-order diffracted light from the information surface for focusing the 0th order light is changed with each of diagonal lines of the light-receiving areas of the second and the third photodetectors being a center of changing as well as being of a maximum length.

6. The light detecting apparatus of claim 1 , wherein

the shape of the light-receiving areas of the second and the third photodetectors is square, and wherein

the light reception prohibited areas are disposed on areas except areas where the reflected light of the positive and negative higher-order diffracted light from the information surface for focusing the 0th order light is changed with each of diagonal lines of the light-receiving areas of the second and the third photodetectors being a center of changing as well as being of a maximum length.

7. An optical pickup apparatus comprising the light detecting apparatus of claim 1 .

8. A light detecting apparatus using a differential astigmatic method to focus 0th order light on any information surfaces of a multilayer optical disc medium, the 0th order light being among 0th order light, positive higher-order diffracted light of 1st or higher order, and negative higher-order diffracted light of 1st or higher order, all of which are generated by diffracting a laser beam, the apparatus comprising:

a first photodetector that includes a light-receiving area for receiving the reflected light of the 0th order light from an information surface where the 0th order light should be focused on;

a second photodetector that is adjacent to the first photodetector leaving a predetermined space therebetween, the second photodetector including a light-receiving area for receiving the reflected light of the positive higher-order diffracted light from the information surface where the 0th order light should be focused on; and

a third photodetector that is adjacent to the first photodetector leaving a predetermined space therebetween, the third photodetector including a light-receiving area for receiving the reflected light of the negative higher-order diffracted light from the information surface where the 0th order light should be focused on, wherein

the light-receiving areas of the first, the second, and the third photodetectors include stray light receiving areas that

receive stray light, which is the reflected light of the 0th order light from the other information surface where the 0th order light should not be focused on,

when the 0th order light is focused on one information surface, and wherein

portions of the stray light receiving areas of the first, the second, and the third photodetectors include light reception prohibited areas that prohibit the reception of the stray light.

9. The light detecting apparatus of claim 8 , wherein

the light reception prohibited area is formed by masking a portion of the stray light receiving area.

10. The light detecting apparatus of claim 9 , wherein

the shape of the light-receiving areas of the first, the second, and the third photodetectors is square, and wherein

the light reception prohibited areas are disposed on areas except areas where the reflected light of the 0th order light and the positive and the negative higher-order diffracted light from the information surface for focusing the 0th order light is changed with each of diagonal lines of the light-receiving areas of the first, the second, and the third photodetectors being a center of changing as well as being of a maximum length.

11. The light detecting apparatus of claim 8 , wherein

the light reception prohibited area is formed by cutting out a portion of the stray light receiving area.

12. The light detecting apparatus of claim 11 , wherein

the shape of the light-receiving areas of the first, the second, and the third photodetectors is square, and wherein

the light reception prohibited areas are disposed on areas except areas where the reflected light of the 0th order light and the positive and the negative higher-order diffracted light from the information surface for focusing the 0th order light is changed with each of diagonal lines of the light-receiving areas of the first, the second, and the third photodetectors being a center of changing as well as being of a maximum length.

13. The light detecting apparatus of claim 8 , wherein

the shape of the light-receiving areas of the first, the second, and the third photodetectors is square, and wherein

the light reception prohibited areas are disposed on areas except areas where the reflected light of the 0th order light and the positive and the negative higher-order diffracted light from the information surface for focusing the 0th order light is changed with each of diagonal lines of the light-receiving areas of the first, the second, and the third photodetectors being a center of changing as well as being of a maximum length.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 6, 2015
From: SANYO ELECTRONIC DEVICE SALES CO.,LTD.
To: SANYO ELECTRIC CO., LTD.
Reel/Frame 035098/0706 →
MERGER Recorded Mar 6, 2015
From: SANYO OPTEC DESIGN CO., LTD.
To: SANYO ELECTRONIC DEVICE SALES CO.,LTD.
Reel/Frame 035098/0711 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 9, 2007
From: SHINDO, HIROYUKI
To: SANYO ELECTRIC CO., LTD.; SANYO OPTEC DESIGN CO., LTD.
Reel/Frame 018990/0325 →
Continuity (1)
Related Publication 20080158571A1 · Jul 3, 2008