Abstract:
An apparatus (1) for processing specimens (15), comprising an observation device (2), a specimen holder (3) for receiving the specimen (15) to be processed, and a tool holder (6), the tool holder (6) being pivotable in a plane normal to its longitudinal axis (L′) by means of a pivot arm (22), and being rotatable about its longitudinal axis (L′); furthermore a drive system for selectable execution of the pivoting of the pivot arm (22) is provided.
Abstract:
A microtome system has a cryomicrotome with a sectioning device in which is provided a preparation holder and a knife edge that are guided past one another inside a working space during a sectioning operation, in order to produce thin sections of a preparation retained in the preparation holder. A micromanipulator is operable outside the working space. With the micromanipulator, a tool for retention of a specimen support is positioned proximate the knife edge during a sectioning operation in order to receive the sections that are produced, preferably for substantially stationary retention of the specimen support.
Abstract:
A Dewar vessel (1) for automated cryosubstitution or low-temperature substitution is disclosed. The invention further discloses an apparatus (10) for automated liquid transfer for cryosubstitution or low-temperature substitution. The apparatus (10) encompasses a container (50) that encompasses at least one specimen holder (2) and at least one reservoir holder (20); and wherein a movable transfer container (35) for automated exchange of at least one liquid (42) between the at least one specimen holder (2) and the at least one reservoir holder (20) is provided.
Abstract:
The present invention relates to a cryopreparation chamber (100) for preparing and manipulating a sample for electron microscopy, the cryopreparation chamber (100) being cooled by a primary cryogen, the cryopreparation chamber (100) including a first and a second chamber portion (101,102), the second chamber portion (102) being detachably placeable (101) on the first chamber portion (101), and moreover, the second chamber portion (102) being provided, in its outer wall (106), with an access port (107) through which a specimen holder (108) for an electron microscope can be inserted into the cryopreparation chamber (100). The present invention also relates to a cryopreparation device (200) which is suitable for cryopreparing a sample for an electron microscope and includes such a cryopreparation chamber (100).
Abstract:
An apparatus (1) for processing specimens (15), comprising an observation device (2), a specimen holder (3) for receiving the specimen (15) to be processed, and a tool holder (6), the tool holder (6) being pivotable in a plane normal to its longitudinal axis (L′) by a pivot arm (22), and being rotatable about its longitudinal axis (L′); furthermore a drive system for selectable execution of the pivoting of the pivot arm (22) is provided.
Abstract:
An apparatus (1) for tissue preparation for the tissue embedding, having a transport plate (15) that is surrounded by a housing (5). The housing defines an inner upper side (8a), a heating and cooling device (3), that is provided on the inner upper side (8a) of the housing (5) and a mechanic module (24) for turning the transport plate (15) and for raising and lowering the transport plate (15). The mechanic module (24) comprises a first motor (42) exclusively for turning the transport plate (15) around an axle (18) and a second motor (44) exclusively for raising and lowering the transport plate (15) in the direction of the axle (18).
Abstract:
A Dewar vessel (1) for automated cryosubstitution or low-temperature substitution is disclosed. The invention further discloses an apparatus (10) for automated liquid transfer for cryosubstitution or low-temperature substitution. The apparatus (10) encompasses a container (50) that encompasses at least one specimen holder (2) and at least one reservoir holder (20); and wherein a movable transfer container (35) for automated exchange of at least one liquid (42) between the at least one specimen holder (2) and the at least one reservoir holder (20) is provided.
Abstract:
A cooling chamber 10 for a microtome 1 is disclosed. A knife 2 having a cutting edge 16 is arranged in the cooling chamber 10 opposite a sample holder 4 having a sample 4a retained therein. The microtome 1 further possesses a stereomicroscope 12 having an optical system 14, the optical system 14 defining an optical axis 11. The region of the sample 4a and of the cutting edge 16 of the knife 2 is observable with the stereomicroscope 12. There is mounted in the cooling chamber 10 an illumination system 20 that emits light 20a and is directed onto a surface 2a of the knife 2 in such a way that the light 20a reflects from the surface 2a parallel to the optical axis 11.
Abstract:
A device (1) for sectioning specimens comprises a microtome or an ultramicrotome (3) for generating thin specimen pieces. A table (5) for placement of the microtome or ultramicrotome (3) is provided, a cold chamber (30) being provided that surrounds a region of the microtome or ultramicrotome (3) for generating thin specimen pieces. A glovebox (42) surrounds the microtome or ultramicrotome (3) and the cold chamber (30). The glovebox (30) stands on the table (5), and a coolant hose (37) connects a reservoir vessel (35) with coolant to the cold chamber (30). The coolant evaporating out of the cold chamber (30) fills the glovebox (42).
Abstract:
A cooling chamber 10 for a microtome 1 is disclosed. A knife 2 having a cutting edge 16 is arranged in the cooling chamber 10 opposite a sample holder 4 having a sample 4a retained therein. The microtome 1 further possesses a stereomicroscope 12 having an optical system 14, the optical system 14 defining an optical axis 11. The region of the sample 4a and of the cutting edge 16 of the knife 2 is observable with the stereomicroscope 12. There is mounted in the cooling chamber 10 an illumination system 20 that emits light 20a and is directed onto a surface 2a of the knife 2 in such a way that the light 20a reflects from the surface 2a parallel to the optical axis 11.