EP1530207A2

Optical pickup device with correcting element

Abstract

An optical pickup device wherein at least a high density disc such as HD-DVD is compatible with DVD, and securing an amount of light is compatible with correction of chromatic aberration. And a correcting element representing an optical system used for the aforementioned optical pickup device.

EP1530207A2, drawing sheet 1
Sheet 1 of 13

Term

Term ended

Projected expiry passed 1 November 2024, 1.9 years ago.

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34 claims: 19 independent, 15 dependent

  1. 1
    An optical pickup device comprising:a first light source emitting a light flux with wavelength λ1 (380 nm ≤ λ1 ≤ 450 nm);a second light source emitting a light flux with wavelength λ2 (600 nm ≤ λ2 ≤ 700 nm);a light-converging optical element having a diffractive structure through which the light flux with wavelength λ1 and the light flux with wavelength λ2 pass;a first correcting element having a diffractive structure through which at least the light flux with wavelength λ1 passes;a second correcting element having a diffractive structure through which at least the light flux with wavelength λ2 passes;and a beam splitter that makes an optical path for the light flux with wavelength λ1 and that for the light flux with wavelength λ2 to agree with each other in terms of their positions;wherein reproducing and/or recording of information is conducted on the first optical information recording medium having protective substrate thickness t1 (0 mm t1 ≤ 0.7 mm), by the use of the light flux with wavelength λ1,    reproducing and/or recording of information is conducted on the second optical information recording medium having protective substrate thickness t2 (0.5 mm ≤ t2 ≤ 0.7 mm), by the use of the light flux with wavelength λ2,    at least one of the first correcting element and the second correcting element is arranged between the beam splitter and the first light source or between the beam splitter and the second light source,    the first light-converging spot formed on the first optical information recording medium by n1 th diffracted light (n1 is a natural number) of the light flux with wavelength λ1 generated by diffractive effects of the light-converging optical element and the second light-converging spot formed on the second optical information recording medium by n2 th diffracted light (n2 is a natural number satisfying n1 ≠ n2) of the light flux with wavelength λ2 generated by diffractive effects of the light-converging optical element are controlled to be within a range necessary for reproducing and/or recording of information in terms of chromatic aberration,    an absolute value of chromatic aberration owned by the light-converging optical element itself is controlled to be 0.15 µm/nm or less for the light flux emitted from the first light source, and    an absolute value of chromatic aberration owned by the first correcting element itself is controlled to be 2.1 µm/nm or less for the light flux emitted from the first light source.
  2. 5
    The optical pickup device according to any one of the preceding claims, wherein focal length f of the light-converging optical element for the light flux with wavelength λ1 is made to satisfy 1 mm ≤ f ≤ 4 mm.
  3. 6
    The optical pickup device according to any one of the preceding claims, wherein focal length f1 of the first correcting element for the light flux with wavelength λ1 is made to satisfy 5.5 mm ≤ f1 ≤ 32 mm.
  4. 7
    The optical pickup device according to any one of the preceding claims, wherein focal length f2 of the second correcting element for the light flux with wavelength λ2 is made to satisfy 5.5 mm ≤ f12 ≤ 32 mm.
  5. 8
    The optical pickup device according to any one of the preceding claims, wherein magnification m1 of the optical system including the first light source up to the first optical information recording medium for the light flux with wavelength λ1 is made to satisfy -1/3 ≤ m1 ≤ -1/10.
  6. 9
    The optical pickup device according to any one of the preceding claims, wherein magnification m2 of the optical system including the second light source up to the second optical information recording medium is made to satisfy -1/3 ≤ m2 ≤ -1/10.
  7. 10
    The optical pickup device according to any one of the preceding claims, wherein image-surface-side numerical aperture NA1 of the light-converging optical element for the light flux with wavelength λ1 in the case of using the optical pickup device is made to satisfy 0.63 ≤ NA1 ≤ 0.67.
  8. 11
    The optical pickup device according to any one of the preceding claims, wherein image-surface-side numerical aperture NA2 of the light-converging optical element for the light flux with wavelength λ2 in the case of using the optical pickup device is made to satisfy 0.59 ≤ NA2 ≤ 0.67.
  9. 12
    The optical pickup device according to any one of the preceding claims, wherein at least one of the first correcting element and the second correcting element is made to be a collimator.
  10. 13
    The optical pickup device according to any one of the preceding claims, wherein a combination of the n1 and n2 is made to be any one of (n1, n2) = (0, 1), (2, 1), (3, 2), (5, 3) and (8, 5).
  11. 14
    The optical pickup device according to any one of the preceding claims, further comprising:a third light source emitting a light flux with wavelength λ3 (750 nm ≤ λ3 ≤ 800 nm),    wherein reproducing and/or recording of information is conducted on the third optical information recording medium having protective substrate thickness t3 (1.1 mm ≤ t3 ≤ 1.3 mm) by using n3 th (n3 is a natural number) diffracted light of the light flux with wavelength λ3 generated by diffractive effects of the light-converging optical element in the case of using the optical pickup device.
  12. 19
    The optical pickup device according to any one of the preceding claims, wherein a diffractive structure is provided on the second correcting. element, and    the diffractive structure is provided on a plane of incidence and on a plane of emergence of the second correcting element.
  13. 20
    The optical pickup device according to any one of the preceding claims, wherein the chromatic aberration of the first light-converging spot and the chromatic aberration of the second light-converging spot to be controlled within a range necessary for reproducing and/or recording of information, by controlling an absolute value of the chromatic aberration of the first light-converging spot to be 0.15 µm/nm or less and by controlling an absolute value of the chromatic aberration of the second light-converging spot to be 0.25 µm/nm or less.
  14. 21
    An optical pickup device comprising:a first light source emitting a light flux with wavelength λ1 (380 nm ≤ λ1 ≤ 450 nm);a second light source emitting a light flux with wavelength λ2 (600 nm ≤ λ2 ≤ 700 nm);a light-converging optical element having a diffractive structure through which the light flux with wavelength λ1 and the light flux with wavelength λ2 pass;a first correcting element having a diffractive structure through which at least the light flux with wavelength λ1 passes;a second correcting element through which at least the light flux with wavelength λ2 passes;and a beam splitter that makes an optical path for the light flux with wavelength λ1 and that for the light flux with wavelength λ2 to agree with each other in terms of their positions;wherein reproducing and/or recording of information is conducted on the first optical information recording medium having protective substrate thickness t1 (0 mm t1 ≤ 0.7 mm), by the use of the light flux with wavelength λ1,    reproducing and/or recording of information is conducted on the second optical information recording medium having protective substrate thickness t2 (0.5 mm ≤ t2 ≤ 0.7 mm), by the use of the light flux with wavelength λ2,    at least one of the first correcting element and the second correcting element is arranged between the beam splitter and the first light source or between the beam splitter and the second light source,    the first light-converging spot formed on the first optical information recording medium by n1 th diffracted light (n1 is a natural number) of the light flux with wavelength λ1 generated by diffractive effects of the light-converging optical element and the second light-converging spot formed on the second optical information recording medium by n2 th diffracted light (n2 is a natural number satisfying n1 ≠ n2) of the light flux with wavelength λ2 generated by diffractive effects of the light-converging optical element are controlled to be within a range necessary for reproducing and/or recording of information in terms of chromatic aberration, and    an absolute value of chromatic aberration owned by the light-converging optical element itself is controlled to be 0.25 µm/nm or less for the light flux emitted from the second light source.
  15. 23
    An optical pickup device comprising:a first light source emitting a light flux with wavelength λ1 (380 nm ≤ λ1 ≤ 450 nm);a second light source emitting a light flux with wavelength λ2 (600 nm ≤ λ2 ≤ 700 nm);a light-converging optical element having a diffractive structure through which the light flux with wavelength λ1 and the light flux with wavelength λ2 pass;a first correcting element having a diffractive structure through which at least the light flux with wavelength λ1 passes;a second correcting element through which at least the light flux with wavelength λ2 passes;and a beam splitter that makes an optical path for the light flux with wavelength λ1 and that for the light flux with wavelength λ2 to agree with each other in terms of their positions;wherein reproducing and/or recording of information is conducted on the first optical information recording medium having protective substrate thickness t1 (0 mm t1 ≤ 0.7 mm), by the use of the light flux with wavelength λ1, reproducing and/or recording of information is conducted on the second optical information recording medium having protective substrate thickness t2 (0.5 mm ≤ t2 ≤ 0.7 mm), by the use of the light flux with wavelength λ2,    at least one of the first correcting element and the second correcting element is arranged between the beam splitter and the first light source or between the beam splitter and the second light source,    the first light-converging spot formed on the first optical information recording medium by n1 th diffracted light (n1 is a natural number) of the light flux with wavelength λ1 generated by diffractive effects of the light-converging optical element and the second light-converging spot formed on the second optical information recording medium by n2 th diffracted light (n2 is a natural number satisfying n1 ≠ n2) of the light flux with wavelength λ2 generated by diffractive effects of the light-converging optical element are controlled to be within a range necessary for reproducing and/or recording of information in terms of chromatic aberration, and    a sign for a value of chromatic aberration owned by the light-converging optical element for the light flux emitted from the first light source and a sign for a value of chromatic aberration owned by the light-converging optical element for the light flux emitted from the second light source are the same.
  16. 28
    An optical pickup device comprising:a first light source emitting a light flux with wavelength λ1 (380 nm ≤ λ1 ≤ 450 nm);a second light source emitting a light flux with wavelength λ2 (600 nm ≤ λ2 ≤ 700 nm);a light-converging optical element having a diffractive structure through which the light flux with wavelength λ1 and the light flux with wavelength λ2 pass;a first correcting element through which at least the light flux with wavelength λ1 passes;a second correcting element having a diffractive structure through which at least the light flux with wavelength λ2 passes;and a beam splitter that makes an optical path for the light flux with wavelength λ1 and that for the light flux with wavelength λ2 to agree with each other in terms of their positions;wherein reproducing and/or recording of information is conducted on the first optical information recording medium having protective substrate thickness t1 (0 mm t1 ≤ 0.7 mm), by the use of the light flux with wavelength λ1,    reproducing and/or recording of information is conducted on the second optical information recording medium having protective substrate thickness t2 (0.5 mm ≤ t2 ≤ 0.7 mm), by the use of the light flux with wavelength λ2,    at least one of the first correcting element and the second correcting element is arranged between the beam splitter and the first light source or between the beam splitter and the second light source,    the first light-converging spot formed on the first optical information recording medium by n1 th diffracted light (n1 is a natural number) of the light flux with wavelength λ1 generated by diffractive effects of the light-converging optical element and the second light-converging spot formed on the second optical information recording medium by n2 th diffracted light (n2 is a natural number satisfying n1 ≠ n2) of the light flux with wavelength λ2 generated by diffractive effects of the light-converging optical element are controlled to be within a range necessary for reproducing and/or recording of information in terms of chromatic aberration, and    a sign for a value of chromatic aberration owned by the light-converging optical element for the light flux emitted from the first light source is different from a sign for a value of chromatic aberration owned by the light-converging optical element for the light flux emitted from the second light source.
  17. 31
    A correcting element used as a first correcting element in an optical pickup device according to any one of the preceding claims.
  18. 32
    A correcting element used in an optical pickup device as a first correcting element, wherein    the optical pickup device has       a first light source emitting a light flux with wavelength λ1 (380 nm ≤ λ1 ≤ 450 nm),       a second light source emitting a light flux with wavelength λ2 (600 nm ≤ λ2 ≤ 700 nm),       a light-converging optical element having a diffractive structure through which the light flux with wavelength λ1 and the light flux with wavelength λ2 pass,       the first correcting element having a diffractive structure through which at least the light flux with wavelength λ1 passes,       a second correcting element through which at least the light flux with wavelength λ2 passes, and       a beam splitter that makes an optical path for the light flux with wavelength λ1 and that for the light flux with wavelength λ2 to agree with each other in terms of their positions,    wherein reproducing and/or recording of information is conducted on the first optical information recording medium having protective substrate thickness t1 (0 mm t1 ≤ 0.7 mm), by the use of the light flux with wavelength λ1,    reproducing and/or recording of information is conducted on the second optical information recording medium having protective substrate thickness t2 (0.5 mm ≤ t2 ≤ 0.7 mm), by the use of the light flux with wavelength λ2,    at least one of the first correcting element and the second correcting element is arranged between the beam splitter and the first light source or between the beam splitter and the second light source,    the first light-converging spot formed on the first optical information recording medium by n1 th diffracted light (n1 is a natural number) of the light flux with wavelength λ1 generated by diffractive effects of the light-converging optical element and the second light-converging spot formed on the second optical information recording medium by n2 th diffracted light (n2 is a natural number satisfying n1 ≠ n2) of the light flux with wavelength λ2 generated by diffractive effects of the light-converging optical element are controlled to be within a range necessary for reproducing and/or recording of information in terms of chromatic aberration,    an absolute value of chromatic aberration owned by the light-converging optical element itself is controlled to be 0.15 µm/nm or less for the light flux emitted from the first light source, and    an absolute value of chromatic aberration owned by the light-converging optical element itself is controlled to be 0.25 µm/nm or less for the light flux emitted from the second light source.
  19. 34
    A correcting element used in an optical pickup device as a second correcting element, wherein    the optical pickup device has       a first light source emitting a light flux with wavelength λ1 (380 nm ≤ λ1 ≤ 450 nm),       a second light source emitting a light flux with wavelength λ2 (600 nm ≤ λ2 ≤ 700 nm),       a light-converging optical element having a diffractive structure through which the light flux with wavelength λ1 and the light flux with wavelength λ2 pass,       a first correcting element having a diffractive structure through which at least the light flux with wavelength λ1 passes,       the second correcting element through which at least the light flux with wavelength λ2 passes, and       a beam splitter that makes an optical path for the light flux with wavelength λ1 and that for the light flux with wavelength λ2 to agree with each other in terms of their positions,    wherein reproducing and/or recording of information is conducted on the first optical information recording medium having protective substrate thickness t1 (0 mm t1 ≤ 0.7 mm), by the use of the light flux with wavelength λ1,    reproducing and/or recording of information is conducted on the second optical information recording medium having protective substrate thickness t2 (0.5 mm ≤ t2 ≤ 0.7 mm), by the use of the light flux with wavelength λ2,    at least one of the first correcting element and the second correcting element is arranged between the beam splitter and the first light source or between the beam splitter and the second light source,    the first light-converging spot formed on the first optical information recording medium by n1 th diffracted light (n1 is a natural number) of the light flux with wavelength λ1 generated by diffractive effects of the light-converging optical element and the second light-converging spot formed on the second optical information recording medium by n2 th diffracted light (n2 is a natural number satisfying n1 ≠ n2) of the light flux with wavelength λ2 generated by diffractive effects of the light-converging optical element are controlled to be within a range necessary for reproducing and/or recording of information in terms of chromatic aberration,    an absolute value of chromatic aberration owned by the light-converging optical element itself is controlled to be 0.15 µm/nm or less for the light flux emitted from the first light source, and    an absolute value of chromatic aberration owned by the light-converging optical element itself is controlled to be 0.25 µm/nm or less for the light flux emitted from the second light source.
Independent claims19