LEED 600  | © Scienta Omicron
LEED 600 optics with retraction and shutter.
Scienta Omicron's LEED 600 Product with specific components labelled  | © Scienta Omicron
LEED 600 optics with retraction and shutter.
Digital LEED AES Controller Display Model LPS075-D | © Scienta Omicron
Model LPS075-D power supply for LEED operation.
Display of the LPS300 and LOA10-AES systems  | © Scienta Omicron
Model LPS300-D and LOA10-AES power supply for LEED and AES operation.
Screenshot showing an example display of the LIM12 software that is compatible with the LEED 600 | © Scienta Omicron
LIM12 Software.
Display of AES software graph output  | © Scienta Omicron
AES Software Images.
Display of example AES Software  | © Scienta Omicron
AES Software Images.

LEED 600

Compact LEED to fit smaller UHV Systems

LEED

  • High energy & image resolution for LEED and AES with no Moire pattern interference
  • Large Angle (90°) Fluorescent LEED Display and superior magnetic shielding
  • Miniature electron gun with large coherence width double focusing
  • Suitable for In Situ Film Growth Monitoring
  • Low outgassing rate
  • Convenient LEED Image Capture with External CCD Camera
  • Simple and Powerful Operation with Digital Controller

The LEED 600 with integral shutter has LEED and AES capabilities using a miniature electron gun, set of concentric grids and a conductive, phosphor coated screen. It is an extremely reliable high-performance LEED instrument which operates with up to date digital power supply. The retraction mechanism has outstanding mechanical properties ensuring smooth day-to-day operation as experienced by our large user base over decades. The wide viewing angle (90° at 51 mm sample distance) and minimal shadowing of the screen by the miniature electron gun give a maximum visible LEED pattern.

More Information

Applications

Display of the LEED pattern of Komori Si(111) t51 sample. | © Scienta Omicron
LEED pattern of Komori Si(111) t51 sample.

The LEED 600 is capable of providing LEED and AES data for a wide range of samples.  The compact size allows for easy installation to smaller UHV systems.

LEED Data Sheet shoqing Ni (100) at 110 eV, O2 reconstruction, and H2 reconstruction | © Scienta Omicron
Ni (100): a) 110 eV b) O2 reconstruction c) H2 reconstruction.
Graph showing the auger spectrum of Iron (thick layer) on Magnesium Oxide. | © Scienta Omicron
Auger spectrum of Iron (thick layer) on Magnesium Oxide.
Graph showing the Auger Spectrum of Si(111)  | © Scienta Omicron
Auger spectrum of Silicon (111).

Drawings

Technical drawing of the LEED 600 including back, side and front views  | © Scienta Omicron
Side view of LEED 600 (model BDL600IR) Optic.

For seamless integration, 3D step files are available for all models. 

Technical drawing of the LEED 600 front view  | © Scienta Omicron
Front view of the LEED 600 (model BDL600IR) Optic

LMX length calculation for LEED 600 (model BDL600IR):

FS = 135.5 mm + 2LMX – OV + WD; where FS is the flange to sample distance, LMX is the retraction distance, OV is the overlapping distance, WD is the working distance and the 135.5 mm value is a constant related to this optic model.

If the calculated FS value is longer than the actual port length a nipple adapter can be added as a spacer between the LEED optics and the UHV chamber. The nipple length can be calculated as follows:

NL = FS – PL; where NL is nipple length and PL is port length. 

Technical drawing of the rear view of the LEED 600 (model BDL600IR) Optic. | © Scienta Omicron
Rear view of the LEED 600 (model BDL600IR) Optic.
BDL600IR Model Side View  | © Scienta Omicron
Side view of the LEED 600 (model BDL600IR) Optic.

Configuration Guide and Specifications

The LEED 600 optics is controlled using either a LPS075-D or LPS300-D power supply. The LPS075-D is used to operate the optic in LEED mode only whereas the LPS300-D in conjunction with the LOA10-AES lock-in controller and AUS30 input coupler is used to operate the optics in LEED and AES modes. Integral shutter (model ISH-6) and LaB6 filament (model LaB6) are further options.

Specifications

Glass-display

Fused silica coated with indium-tin oxide conductive layer and P31 phosphor (ZnS:Ag:Cu-green, 525 nm wavelength)

Acceptance angle

90° angle of acceptance from sample at a distance of 51 mm

Retarding Field Analyser

Concentric assembly of hemispherical grids

Working distance

15 mm from sample

Grid material

Gold coated tungsten wire mesh (100 mesh, 81 % transparency)

Energy Resolution

0.2 % - 0.5 % at low modulation voltages

Monitoring

6" standard viewport

Linear motion

Up to 150 mm retraction from sample (100 mm standard); linear ball bearing and acme thread with all spring electr. connections

Integral Shutter

Manual shutter driven by a rotary feedthrough

Magnetic shielding

Mu-metal cylinder with front cover for maximum attenuation

Assembly

Extreme-high-vacuum compatibility with stainless steel, high alumina and Au-plated copper alloy materials

Mounting

6"(CF100) double sided conflat flange with sample distance 145 mm – 500 mm

Bakeability

Under vacuum, 250 °C maximum

Integral Miniature Electron Gun

Beam energy system

LEED – 2 µA at 100 eV and 0.5 mm beam size, AES - up to 100 µA at 3 keV

Beam size

From 1 mm to 250 µm - adjusted by Wehnelt potential, limited by exchangeable aperture down to 50 µm

Electron source

Tungsten-2 % thoriated filament standard, single crystal LaB6 filament optional

Energy spread

0.45 eV (thoriated - tungsten filament)

Overall size

10 mm lens diameter and 80 mm length

For full specifications and more information about product options, please do not hesitate to contact your local sales representative.