Optical device with increased depth of field
View Patent ↗An optical device for imaging a specimen ( 16 ) has a main objective ( 2 ) and a device ( 120 ) for modifying depth of field, the device ( 120 ) representing a micromirror array ( 5 ′) having micromirrors ( 50 ) that are individually controllable and adjustable as to their spatial orientation. In addition to the increase in depth of field, a variable objective can also be produced. The invention is particularly suitable for use in a microscope where deflection of the observation beam path is present.
1. An optical device for imaging a specimen, the optical device comprising:
a main objective having a focal plane intended to intersect a specimen and an optical axis; and
a device for modifying a depth of field, wherein the device for modifying the depth of field includes a micromirror array having micromirrors that are individually controllable and adjustable as to their spatial orientation,
wherein at least a portion of the micromirrors of the micromirror array are adjusted in a substantially spherical spatial orientation such that an observation ray bundle of a specimen point located on the optical axis outside the focal plane of the main objective is imaged substantially as sharply as an observation ray bundle of a specimen point located on the optical axis in the focal plane of the main objective.
2. The optical device according to claim 1 , wherein the micromirror array is arranged after the main objective along an observation beam path coming from a specimen.
3. The optical device according to claim 1 , wherein the micromirrors of the micromirror array are adjusted in such a way that at least two different specimen points located along the optical axis of the main objective are simultaneously sharply imaged.
4. The optical device according to claim 1 , wherein the micromirrors of the micromirror array are adjusted in such a way that at least two different specimen points located along the optical axis of the main objective are sharply imaged in chronological sequence.
5. The optical device according to claim 4 , wherein the micromirrors of the micromirror array are adjusted periodically at a frequency that is greater than or equal to a flicker fusion frequency of an observer using the optical device.
6. The optical device according to claim 1 , wherein the optical device is a microscope further comprising a zoom system arranged after the micromirror array along an observation beam path coming from a specimen.
7. The optical device according to claim 6 , wherein the microscope is a stereomicroscope.
8. A microscope for imaging a specimen, the microscope comprising:
a main objective having a focal plane intended to intersect a specimen and an optical axis;
a device for modifying a depth of field, wherein the device for modifying the depth of field includes a micromirror array having micromirrors that are individually controllable and adjustable as to their spatial orientation, wherein at least a portion of the micromirrors of the micromirror array are adjusted in a substantially spherical spatial orientation such that an observation ray bundle of a specimen point located on the optical axis outside the focal plane of the main objective is imaged substantially as sharply as an observation ray bundle of a specimen point located on the optical axis in the focal plane of the main objective; and
a zoom system arranged after the micromirror array along an observation beam path coming from the specimen, wherein the zoom system is adjusted to provide a magnification that counteracts change in microscope magnification caused by adjustment of the micromirrors of the micromirror array.
9. A method of modifying a depth of field of an optical device for imaging a specimen, the optical device having a focal plane intersecting the specimen and an optical axis intersecting the focal plane, the method comprising the steps of:
providing a micromirror array in an observation beam path of the optical device, the micromirror array having a plurality of micromirrors individually controllable and adjustable as to their spatial orientation; and
adjusting at least a portion of the plurality of micromirrors to a substantially spherical spatial orientation such that an observation ray bundle of a specimen point located on the optical axis outside the focal plane of the optical device is imaged substantially as sharply as an observation ray bundle of a specimen point located on the optical axis in the focal plane of the optical device.
10. The method according to claim 9 , further comprising the step of adjusting a zoom system of the optical device to provide a magnification that counteracts change in magnification caused by adjustment of the micromirrors of the micromirror array.