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Compact Integrated Magneto-Optical Trap System
The MP-CMOT-149-119-298 is a self-contained, compact ultra-high-vacuum magneto-optical trap platform that integrates an UHV glass cell, alkali-metal atom source, ion pump, getter pump, magnetic-field coil driver, and touch-screen control system. When combined with an external laser system, it can be used to create a three-dimensional magneto-optical trap for rubidium or caesium atoms, making it suitable for cold-atom research, quantum technology education, and prototyping of quantum sensors and quantum computing systems.
Product features:Compact, integrated ultra‑high‑vacuum system;Supports rubidium (Rb) or caesium (Cs) atom sources;Designed for background‑vapour‑loaded magneto‑optical traps;Integrated active ion pump and passive getter pump;Integrated alkali‑metal vapour‑pressure control circuitry;Integrated anti‑Helmholtz coils and coil driver;Touch‑screen user interface;Real‑time display of ion‑pump, atom‑source, and coil operating status;Adjustable coil current and magnetic‑field polarity;Supports various UHV glass‑cell and anti‑reflection coating configurations
Part Number:MP-CMOT-149-119-298
Application area:Rubidium or caesium magneto-optical trap experiments Cold-atom trapping and laser cooling Atomic physics teaching laboratories | Quantum technology training | Quantum sensor prototyping | Atom interferometry research | Atomic clock experiments | Optical tweezer and optical lattice experiments | Rydberg atom experiments
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Overall Dimensions
Approx. 149.1 × 119.4 × 298.5 mm

System Components
Component | Description |
miniMOT V2 main unit | Integrated vacuum system, glass cell, and electronic control unit |
UHV glass cell | Provides coldatom trapping region and optical access |
Alkali metal atom source | Rubidium or caesium option |
Ion pump | Maintains ultrahigh vacuum |
Passive getter pump | Supplementary vacuum quality maintenance |
MOT magnetic field coils | AntiHelmholtz coil pair |
AC/DC power adapter | Provides 12 V DC power to the device |
Power cord | Mates with the power adapter |
Technical Specifications
Parameter | Specification |
Overall Dimensions | Approx. 149.1 × 119.4 × 298.5 mm |
Nominal Catalogue Dimensions | 149 × 119 × 298 mm |
MOT Centre Height | Approx. 88.9 mm |
Typical Weight | Approx. 3.2–3.3 kg |
Maximum Weight | 5 kg |
Mounting Method | Standard optical table mounting |
Mounting Threads | Metric and imperial threads |
Vacuum and Atom Source Parameters
Parameter | Specification |
Base Vacuum Pressure | <1×10⁻⁸ Torr |
UserManual Base Vacuum Specification | <10 nTorr |
Ion Pump Operating Voltage | 3.6 kV |
Normal Ion Pump Current | Typically <200 nA |
Ion Pump Residual Magnetic Field | <0.5 G at the glasscell centre |
Atom Species | Rubidium or caesium |
Atom Source Operating Current | Typical 2.75–3.75 A |
Maximum Atom Source Current | 4 A |
Atom Temperature | Millikelvin range, typically about 100–200 µK |
Magnetic Field Parameters
Parameter | Specification |
Coil Configuration | AntiHelmholtz coil pair |
Coil Current Range | −1 to +1 A |
Magnetic Field Gradient | 13–14 G/(A·cm) |
Recommended Starting Current | 0.5 A |
Common Operating Range | 0.2–1.0 A |
Magnetic Field Polarity | Switchable positive/negative |
Electrical Parameters
Parameter | Specification |
AC Input Voltage | 100–240 V AC |
Input Frequency | 50–60 Hz |
Input Power | <60 W |
DC Output Voltage | 12 V (allowable range 11.8–12.6 V) |
DC Output Current | 5 A maximum |
Typical Standby Load Current | Approx. 0.6 A |
Typical Load with Atom Source and Coils Operating | Approx. 1.7 A |
Optical Access
Position | Clear Aperture |
Glass cell side | Max. approx. 54 × 19 mm |
Glass cell side (minimum) | Approx. 45 × 10 mm |
Glass cell end face | Diameter 8–10 mm |
Glass cell centre height | Approx. 89 mm |
Laser Requirements
The product does not include a laser; the user must provide an external laser system matched to the atomic transition:
Atom Species | Typical D2 Line Wavelength |
Rb | Approx. 780.2 nm |
Cs | Approx. 852 nm |
For MOT operation:
Minimum recommended power per beam: approx. 10 mW
Recommended power per beam: approx. 20 mW
Requires appropriate cooling and repumping light
Laser polarisation must be correctly matched to the magnetic field direction
Must form a three-dimensional counter‑propagating beam configuration at the cell centre
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