Designed as a reverse Casegrain, Newport Reflective Microscope Objectives focus light using reflective surfaces that are broadband coated with a usable wavelength range from 200 nm to 20 µm.
- Wide spectral band
- Long working distances
- High numerical apertures
- Zero chromatic aberration
- Negligible coma, spherical, and astigmatic aberrations
- Single material construction for minimal thermal expansion effects See All Features
| Compare | Description | Drawings, CAD & Specs | Avail. | Price | ||
|---|---|---|---|---|---|---|
![]() | 50102-01 Reflective Microscope ObjectivesMicroscope Objective Lens, Reflective, 36x, 160 mm BFL | |||||
![]() | 50102-02 Reflective Microscope ObjectivesMicroscope Objective Lens, Reflective, 36x, Infinite BFL | |||||
![]() | 50105-01 Reflective Microscope ObjectivesMicroscope Objective Lens, Reflective, 15x, 160 mm BFL | |||||
![]() | 50105-02 Reflective Microscope ObjectivesMicroscope Objective Lens, Reflective, 15x, Infinite BFL |
Specifications
Features
Broad Bandwidth
Reflective optics do not experience chromatic effects associated with refractive optics, where refractive index varies with wavelength. Consequently reflective objectives can have excellent optical performance across an extremely broad wavelength range limited only by mirror reflectance. The reflective surfaces are broadband coated with aluminum and over-coated with magnesium fluoride (MgF2). They are usable from 200 nm to 20 µm. Average reflection per surface of each mirror is 85% in the UV-VIS, and 90% in the IR (with a dip to 76% near 820nm). Special coatings are available upon request including Gold for the visible to IR region.
Reflective Objective Construction
Reverse Cassegrain Design
In a typical focusing application, collimated light passes through the aperture hole in the primary mirror to the secondary mirror. The secondary mirror then reflects and diverges the beam to fill the primary mirror. Finally, the primary mirror focuses the beam to a small spot called the Object Plane or Focal Point. This dual mirror configuration is known as a reverse Cassegrain (primary mirror collects or focuses light from or to a point, and the secondary mirror interacts with collimated light, the opposite of a traditional Cassegrain telescope). These objectives follow the Schwarzschild design. Accordingly, they have zero chromatic aberration, and negligible coma, spherical, and astigmatic aberrations.
Infinite or Finite Back Focal Lengths
Newport Reflective Microscope Objectives are available with either an infinite back focal length (BFL) or finite BFL of 160 mm, a typical tube length of a microscope. Objectives with an infinite BFL – also known as infinity corrected reflective objectives – are useful for focusing applications as collimated light enters through the aperture hole in the primary mirror to be focused at the specified working distance. Objectives with a finite BFL – also known as finite conjugate reflective objectives – are ideal for imaging applications that do not require an additional lens for focusing.
Fourier Transform IR (FTIR) Spectroscopy Applications
Applications
- UV Metrology and Microscopy
- Spatial Filtering
- Photomicroscopy
- Laser Energy Delivery Systems
- FT-IR Spectroscopy
Accessories
RMS Threaded Adapters and Mounts
| Compare | Description | Drawings, CAD & Specs | Avail. | Price | ||
|---|---|---|---|---|---|---|
![]() | 561-OBJ Objective Lens Mount, 561 Series | |||||
![]() | LH-RMS Microscope Objective Mount, Fixed, A-LINE, 0.800-36 Thread, 8-32 | |||||
![]() | LPMH-05 Objective Lens Holder, RMS, 0.875-20 Thread, For LP-05A Series | |||||
![]() | LPMH-1 Objective Lens Holder, RMS, 1.438-20 Thread, For LP-1A Series | |||||
![]() | LT10-RMS-N Thread Adaptor, 1.0 in. Lens Tubes, 1.035-40 to 0.800-36 RMS Thread | |||||
![]() | OC1-RMS Objective Lens Mount, Insertable, RMS Thread, Optics Cage Plus | |||||
![]() | UPA-OM Objective Lens Adapter, RMS Thread, 1 inch Mount |






















