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Broadband phase and intensity compensation with a deformable mirror for an interferometric nuller
Robert D Peters1, Oliver P Lay, Muthu Jeganathan
1Jet Propulsion Laboratory, California Institute of Technology, 4800 Oak Grove Drive, Pasadena, California 91109, USA. Robert.D.Peters@jpl.nasa.gov
Nulling interferometry can detect Earth-like planets by precisely controlling light beams. A new Adaptive Nuller device uses a deformable mirror to correct intensity and phase, achieving high rejection ratios for exoplanet detection.
Area of Science:
- Astronomy and Astrophysics
- Optical Engineering
Background:
- Nulling interferometry is a technique for direct exoplanet detection.
- Achieving deep, stable nulls necessitates precise control over beam intensity and phase.
Purpose of the Study:
- To introduce a novel compensator, the Adaptive Nuller, for nulling interferometry.
- To demonstrate the compensator's ability to correct intensity and phase across a specific wavelength range.
Main Methods:
- Utilized a deformable mirror within the Adaptive Nuller.
- Operated the compensator over a wavelength range of 8 to 12 micrometers.
- Measured the performance in terms of rejection ratios and operational bandwidth.
Main Results:
- The Adaptive Nuller successfully corrected intensity and phase as a function of wavelength.
- Achieved a rejection ratio of 82,000:1.
- Demonstrated effectiveness over a bandwidth of 3.2 micrometers centered at 10 micrometers.
Conclusions:
- The Adaptive Nuller is a viable tool for achieving deep, stable nulls in interferometry.
- This technology advances the direct detection of Earth-like exoplanets.
- The compensator's performance validates its potential for astronomical applications.
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