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Off-axis sparse aperture imaging using phase optimization techniques for application in wide-area imaging systems.

Publication ,  Journal Article
Mahalanobis, A; Neifeld, M; Bhagavatula, VK; Haberfelde, T; Brady, D
Published in: Applied optics
October 2009

Sparse apertures find imaging applications in diverse fields such as astronomy and medicine. We are motivated by the design of a wide-area imaging system where sparse apertures can be used to construct novel and efficient optical designs. Specifically, we investigate the use of sparse apertures for off-axis imaging at infrared wavelengths while combating the effects of chromaticity to preserve resolution. In principle, several such sparse apertures can be interleaved within a common aperture to simultaneously image in multiple directions. This can ultimately lead to the design of wide-area imaging systems that require considerably less optical and electronic hardware. The resolution achievable using a sparse aperture is the same as that of a fully open aperture. In the case of off-axis imaging, however, the point spread function (PSF) introduces a blur due to chromaticity that degrades the resolution of the system. Of course, the blur can be eliminated by imaging at a single wavelength. However the signal-to-noise ratio (SNR) is poor, which ultimately degrades image quality. To improve SNR, it is necessary to widen the band of wavelengths, which of course degrades resolution due to chromaticity. Hence there is a fundamental trade between the SNR and the resolution as a function of bandwidth. We show that by using a combination of microprisms and phase optimized micropistons it is possible to reduce the chromatic blur over a band of wavelengths and improve the PSF considerably to restore the resolution of the image. The concepts are validated by means of simulations and verified with experimental data to demonstrate the advantages of phase optimized micropistons in off-axis sparse aperture imaging systems.

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Published In

Applied optics

DOI

EISSN

1539-4522

ISSN

1559-128X

Publication Date

October 2009

Volume

48

Issue

28

Start / End Page

5212 / 5224

Related Subject Headings

  • Optics
  • 5102 Atomic, molecular and optical physics
  • 4008 Electrical engineering
  • 0913 Mechanical Engineering
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics
 

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MLA
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Mahalanobis, A., Neifeld, M., Bhagavatula, V. K., Haberfelde, T., & Brady, D. (2009). Off-axis sparse aperture imaging using phase optimization techniques for application in wide-area imaging systems. Applied Optics, 48(28), 5212–5224. https://doi.org/10.1364/ao.48.005212
Mahalanobis, Abhijit, Mark Neifeld, Vijaya Kumar Bhagavatula, Thomas Haberfelde, and David Brady. “Off-axis sparse aperture imaging using phase optimization techniques for application in wide-area imaging systems.Applied Optics 48, no. 28 (October 2009): 5212–24. https://doi.org/10.1364/ao.48.005212.
Mahalanobis A, Neifeld M, Bhagavatula VK, Haberfelde T, Brady D. Off-axis sparse aperture imaging using phase optimization techniques for application in wide-area imaging systems. Applied optics. 2009 Oct;48(28):5212–24.
Mahalanobis, Abhijit, et al. “Off-axis sparse aperture imaging using phase optimization techniques for application in wide-area imaging systems.Applied Optics, vol. 48, no. 28, Oct. 2009, pp. 5212–24. Epmc, doi:10.1364/ao.48.005212.
Mahalanobis A, Neifeld M, Bhagavatula VK, Haberfelde T, Brady D. Off-axis sparse aperture imaging using phase optimization techniques for application in wide-area imaging systems. Applied optics. 2009 Oct;48(28):5212–5224.

Published In

Applied optics

DOI

EISSN

1539-4522

ISSN

1559-128X

Publication Date

October 2009

Volume

48

Issue

28

Start / End Page

5212 / 5224

Related Subject Headings

  • Optics
  • 5102 Atomic, molecular and optical physics
  • 4008 Electrical engineering
  • 0913 Mechanical Engineering
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics