Microscope objective lens, microscope optical system, and microscope device
A microscope objective lens (OL) includes a first lens group (G 1 ) having positive refractive power, a second lens group (G 2 ) having a concave surface facing the image side, and a third lens group (G 3 ) having a concave surface facing the object side, which are arranged in order from the object side along an optical axis. The first lens group (G 1 ) includes one lens component having positive refractive power, the third lens group (G 3 ) includes three or more lenses including two negative lenses and one positive lens, and at least one predetermined negative lens in the two negative lenses satisfies the conditional expression “vdA<40”.
1 . A microscope objective lens, consisting of, in order from an object on an optical axis: a first lens group having a positive refractive power; a second lens group having a concave surface facing an image; and a third lens group having a concave surface facing the object,
wherein the first lens group consists of a lens component having a positive refractive power,
the third lens group consists of three or more lenses that include two negative lenses and one positive lens,
at least one predetermined negative lens in the two negative lenses satisfies the following conditional expression,
vdA< 40
where vdA: an Abbe number of the predetermined negative lens of the third lens group, and
the microscope objective lens satisfies the following conditional expression,
0<θ A −(0.6438−0.001682× vdA+ 0.007)
where θA: a partial dispersion ratio of the predetermined negative lens of the third lens group, defined by the following expression assuming that a refractive index of the
predetermined negative lens for g-line is ngA, a refractive index of the predetermined negative lens for F-line is nFA, and a refractive index of the predetermined negative lens for C-line is nCA,
θ A =( ngA−nFA )/( nFA−nCA ).
2 . The microscope objective lens according to claim 1 ,
wherein the predetermined negative lens of the third lens group is one negative lens in the two negative lenses of the third lens group, and
the following conditional expressions are satisfied,
0< vdX−vdA
0<(θ A−θX )/( vdA−vdX )×( vdP−vdX )+θ X−θP
where vdX: an Abbe number of another negative lens in the two negative lenses of the third lens group,
vdP: an Abbe number of the positive lens of the third lens group, and
θA: a partial dispersion ratio of the predetermined negative lens of the third lens group, defined by the following expression assuming that a refractive index of the predetermined negative lens for g-line is ngA, a refractive index of the predetermined negative lens for F-line is nFA, and a refractive index of the predetermined negative lens for C-line is nCA,
θ A =( ngA−nFA )/( nFA−nCA )
where θX: a partial dispersion ratio of the other negative lens of the third lens group, defined by the following expression assuming that a refractive index of the other negative lens for g-line is ngX, a refractive index of the other negative lens for F-line is nFX, and a refractive index of the other negative lens for C-line is nCX,
θ X =( ngX−nFX )/( nFX−nCX )
where θP: a partial dispersion ratio of the positive lens of the third lens group, defined by the following expression assuming that a refractive index of the positive lens for g-line is ngP, a refractive index of the positive lens for F-line is nFP, and a refractive index of the positive lens for C-line is nCP,
θ P =( ngP−nFP )/( nFP−nCP ).
3 . The microscope objective lens according to claim 2 ,
wherein the predetermined negative lens of the third lens group is one negative lens in the two negative lenses of the third lens group, and
the following conditional expressions are satisfied,
0< vdX−vdA
0<(θ A−θX )/( vdA−vdX )×( vdP−vdX )+θ X−θP− 0.015
where vdX: an abbe number Abbe number of another negative lens in the two negative lenses of the third lens group,
vdP: an Abbe number of the positive lens of the third lens group, and
θA: a partial dispersion ratio of the predetermined negative lens of the third lens group, defined by the following expression assuming that a refractive index of the predetermined negative lens for g-line is ngA, a refractive index of the predetermined negative lens for F-line is nFA, and a refractive index of the predetermined negative lens for C-line is nCA,
θ A =( ngA - nFA )/( nFA - nCA )
where θX: a partial dispersion ratio of the other negative lens of the third lens group, defined by the following expression assuming that a refractive index of the other negative lens for g-line is ngX, a refractive index of the other negative lens for F-line is nFX, and a refractive index of the other negative lens for C-line is nCX,
θ X =( ngX - nFX )/( nFX - nCX )
where θP: a partial dispersion ratio of the positive lens of the third lens group, defined by the following expression assuming that a refractive index of the positive lens for g-line is ngP, a refractive index of the positive lens for F-line is nFP, and a refractive index of the positive lens for C-line is nCP,
θ P =( ngP−nFP )/( nFP−nCP ).
4 . The microscope objective lens according to claim 1 ,
wherein the following conditional expression is satisfied,
0<θ A −(0.6438−0.001682× vdA+ 0.017)
where θA: a partial dispersion ratio of the predetermined negative lens of the third lens group, defined by the following expression assuming that a refractive index of the predetermined negative lens for g-line is ngA, a refractive index of the predetermined negative lens for F-line is nFA, and a refractive index of the predetermined negative lens for C-line is nCA,
θ A =( ngA−nFA )/( nFA−nCA ).
5 . The microscope objective lens according to claim 1 ,
wherein the predetermined negative lens of the third lens group is one negative lens in the two negative lenses of the third lens group, and
another negative lens in the two negative lenses is disposed closer to the object than the predetermined negative lens, and closest to the object in the third lens group.
6 . The microscope objective lens according to claim 5 ,
wherein the following conditional expression is satisfied,
1.68< ndX
where ndX: a refractive index of the other negative lens of the third lens group for d-line.
7 . The microscope objective lens according to claim 1 , wherein the second lens group has a positive refractive power.
8 . The microscope objective lens according to claim 1 ,
wherein the second lens group includes a predetermined positive lens which satisfies the following conditional expression,
vd 2 P< 35
where vd2P: an Abbe number of the predetermined positive lens of the second lens group.
9 . The microscope objective lens according to claim 1 ,
wherein the second lens group includes a predetermined positive lens through which a ray most distant from the optical axis in the second lens group passes, and
the predetermined positive lens satisfies the following conditional expressions,
vd 2 P< 35
0<θ2 P −(0.6438−0.001682× vd 2 P+ 0.008)
where vd2P: an Abbe number of the predetermined positive lens of the second lens group, and
θ2P: a partial dispersion ratio of the predetermined positive lens of the second lens group, defined by the following expression assuming that a refractive index of the predetermined positive lens for g-line is ng2P, a refractive index of the predetermined positive lens for F-line is nF2P, and a refractive index of the predetermined positive lens for C-line is nC2P,
θ2 P =( ng 2 P−nF 2 P )/( nF 2 P−nC 2 P ).
10 . The microscope objective lens according to claim 1 ,
wherein the second lens group includes:
a positive lens through which a ray most distant from the optical axis in the second lens group passes, and
a predetermined positive lens disposed closer to the object than the positive lens through which the ray most distant from the optical axis passes, and
the predetermined positive lens satisfies the following conditional expressions,
vd 2 P< 35
0<θ2 P −(0.6438−0.001682× vd 2 P+ 0.008)
where vd2P: an Abbe number of the predetermined positive lens of the second lens group, and
θ2P: a partial dispersion ratio of the predetermined positive lens of the second lens group, defined by the following expression assuming that a refractive index of the predetermined positive lens for g-line is ng2P, a refractive index of the predetermined positive lens for F-line is nF2P, and a refractive index of the predetermined positive lens for C-line is nC2P,
θ2 P =( ng 2 P−nF 2 P )/( nF 2 P−nC 2 P ).
11 . The microscope objective lens according to claim 1 ,
wherein the second lens group includes:
a positive lens through which a ray most distant from the optical axis in the second lens group passes, and
a predetermined positive lens disposed closer to the image than the positive lens through which the ray most distant from the optical axis passes, and
the predetermined positive lens satisfies the following conditional expressions,
vd 2 P< 35
0<θ2 P −(0.6438−0.001682× vd 2 P+ 0.008)
where vd2P: an Abbe number of the predetermined positive lens of the second lens group, and
θ2P: a partial dispersion ratio of the predetermined positive lens of the second lens group, defined by the following expression assuming that a refractive index of the predetermined positive lens for g-line is ng2P, a refractive index of the predetermined positive lens for F-line is nF2P, and a refractive index of the predetermined positive lens for C-line is nC2P,
θ2 P =( ng 2 P−nF 2 P )/( nF 2 P−nC 2 P ).
12 . The microscope objective lens according to claim 1 , wherein the lens component of the first lens group is a cemented lens that includes a plano-convex-shaped positive lens having a planar surface facing the object.
13 . A microscope optical system, comprising the microscope objective lens according to claim 1 ; and a second objective lens that collects light from the microscope objective lens.
14 . A microscope device, comprising the microscope objective lens according to claim 1 .
15 . A microscope objective lens, consisting of, in order from an object on an optical axis: a first lens group having a positive refractive power; a second lens group having a concave surface facing an image; and a third lens group having a concave surface facing the object,
wherein the first lens group consists of a lens component having a positive refractive power, and
the second lens group includes a predetermined positive lens which satisfies the following conditional expressions,
vd 2 P< 35
0<θ2 P −(0.6438−0.001682× vd 2 P+ 0.008)
where vd2P: an Abbe number of the predetermined positive lens of the second lens group, and
θ2P: a partial dispersion ratio of the predetermined positive lens of the second lens group, defined by the following expression assuming that a refractive index of the predetermined positive lens for g-line is ng2P, a refractive index of the predetermined positive lens for F-line is nF2P, and a refractive index of the predetermined positive lens for C-line is nC2P,
θ2 P =( ng 2 P−nF 2 P )/( nF 2 P−nC 2 P ).
16 . The microscope objective lens according to claim 15 ,
wherein the third lens group includes two negative lenses, and
at least one predetermined negative lens in the two negative lenses satisfies the following conditional expression,
vdA< 40
where vdA: an Abbe number of the predetermined negative lens of the third lens group.
17 . A microscope optical system, comprising the microscope objective lens according to claim 15 ; and a second objective lens that collects light from the microscope objective lens.
18 . A microscope device, comprising the microscope objective lens according to claim 15 .