Spinning disk microscope device with potentially enhanced image resolution
Disclosed herein is a device for enabling observation of a fluorescent sample with a microscope, the device including a disk-shaped body rotatable around a central axis of the disk-shaped body, including microoptical elements or microlenses for spot-generation, and, optionally, microoptical elements or microlenses for condensing emission-spots and enabling super resolution imaging of the sample. The device may further include additional pinholes for spatial filtering of the emission light, but not affecting the excitation light.
1 . A device for enabling observation of a fluorescent sample with a microscope, the device comprising:
a first disk-shaped body rotatable around a central axis of the first disk-shaped body, the first disk-shaped body including
a first plurality of microoptical elements having a first focal-length (f 31 ), and being located at a first radial distance (r 2 ), and
an at least partially light transmitting area located at a second radial distance (r 1 ), the first radial distance (r 2 ) being different from the second radial distance (r 1 );
a first tube lens positioned between the first disk-shaped body and an objective of the microscope;
a second tube lens positioned between the first disk-shaped body and the objective of the microscope, wherein a focal length of the first tube lens is r 2 /r 1 times a focal length of the second tube lens;
a dichroic beam splitter positioned between the first disk-shaped body and the objective of the microscope; and
a reflective element positioned between the first disk-shaped body and the objective of the microscope, wherein
a collimated excitation beam intersects the first disk-shaped body through the first plurality of microoptical elements at the first radial distance (r 2 ), resulting in a rotating excitation spot-pattern in a focal plane of the first plurality of microoptical elements, which is imaged into infinity by the first tube lens, thus forming an excitation beam,
the excitation beam, after being reflected by the reflective element and by the dichroic beam splitter, is transformed into an excitation pattern on the fluorescent sample by the objective of the microscope, and
a resulting emission spot-pattern is transformed into an emission beam by the objective of the microscope, is transmitted by the dichroic beam splitter, and is transformed by the second tube lens into an emission spot-pattern passing the at least partially light transmitting area on the first disk-shaped body.
2 . The device of claim 1 , further comprising:
a second plurality of microoptical elements having a second focal length (f 41 ) and being located at the second radial distance (r 1 ) so as to be aligned with the emission spot-pattern.
3 . The device of claim 1 , wherein the at least partially light transmitting area is configured as a plurality of confocal pinholes that provide spatial filtering of the emission spot-pattern.
4 . The device of claim 3 , wherein the plurality of confocal pinholes is arranged on a second disk-shaped body.
5 . The device of claim 1 , wherein the emission spot-pattern is imaged onto a detector through a projective lens system, to form a desired image when the first disk-shaped body is rotated.
6 . The device of claim 4 , wherein the emission spot-pattern is imaged onto a detector through a projective lens system, to form a desired image when the first disk-shaped body and the second disk-shaped body are rotated.