The DLP650LNIR digital micromirror device (DMD) operates as a spatial light modulator (SLM) to steer near-infrared (NIR) light and generate high speed patterns for advanced imaging in industrial equipment. The thermally efficient package allows customers to combine the DMD with high-power NIR laser illumination for dynamic digital printing, sintering and marking solutions. The DLP650LNIR, DLPC410, DLPR410 and DLPA200 chipset provides 1-bit pattern rates up to 12,500 Hz with pixel-accurate control so engineers can design more innovative and precise optical systems than traditional steering lasers allow.
- 1280 × 800 (WXGA) Array with >1 Million Micromirrors
- 10.8 µm Micromirror Pitch
- ±12° Micromirror Tilt Angle (Relative to Flat State)
- 0.65-Inch Diagonal Array Designed for Corner Illumination
- 0.5 °C/W Thermal Resistance High Efficiency Package
- Efficient Steering of NIR Light ( 800 nm to 2000 nm)
- Up to 160-W Incident on DMD
- Window Transmission Efficiency >98% (950 nm to 1150 nm, Single Pass, Two Window Surfaces)
- Window Transmission Efficiency >93% (850 nm to 2000 nm, Single Pass, Two Window Surfaces)
- Polarization Independent Aluminum Micromirrors
- 16-Bit, 2xLVDS, 400-MHz Input Data Bus
- Dedicated DLPC410 Controller, DLPR410 PROM, and DLPA200 Micromirror Driver for Reliable High Speed Operation
- Binary Pattern Rates up to 12,500 Hz
- Global, Single, Dual, and Quad Block Mirror Clocking Pulse (Reset) Operational Modes
| Illumination wavelength (min) (nm) | 800 |
| Illumination wavelength (max) (nm) | 2000 |
| Micromirror array size | 1280 x 800 |
| Chipset family | DLP650LNIR, DLPA200, DLPC410, DLPLCR65NEVM, DLPLCRC410EVM, DLPR410 |
| Component type | DMD |
| Micromirror array orientation | Orthogonal |
| Pattern rate, binary (max) (Hz) | 12500 |
| Array diagonal (in) | 0.65 |
| Display resolution (max) | 1280 x 800 (WXGA) |
| Rating | Catalog |
| Operating temperature range (°C) | 0 to 70 |
| Pattern rate, 8-bit (max) (Hz) | 1563 |
| Micromirror driver support | External |
| Thermal dissipation (°C/W) | 0.5 |