4.6 Article

Hybrid optical antenna with high directivity gain

Journal

OPTICS LETTERS
Volume 38, Issue 15, Pages 2726-2728

Publisher

OPTICAL SOC AMER
DOI: 10.1364/OL.38.002726

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Funding

  1. NSF [EECS-1206155]
  2. ARO [W911NF-1-0390, W911-NF-12-1-0324]
  3. high performance computational center (QUEST) at Northwestern University
  4. Div Of Electrical, Commun & Cyber Sys
  5. Directorate For Engineering [1206155, 1310620] Funding Source: National Science Foundation

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Coupling of a far-field optical mode to electronic states of a quantum absorber or emitter is a crucial process in many applications, including infrared sensors, single molecule spectroscopy, and quantum metrology. In particular, achieving high quantum efficiency for a system with a deep subwavelength quantum absorber/emitter has remained desirable. In this Letter, a hybrid optical antenna based on coupling of a photonic nanojet to a metallo-dielectric antenna is proposed, which allows such efficient coupling. A quantum efficiency of about 50% is predicted for a semiconductor with volume of similar to lambda(3)/170. Despite the weak optical absorption coefficient of 2000 cm(-1) in the long infrared wavelength of similar to 8 mu m, very strong far-field coupling has been achieved, as evidenced by an axial directivity gain of 16 dB, which is only 3 dB below of theoretical limit. Unlike the common phased array antenna, this structure does not require coherent sources to achieve a high directivity. The quantum efficiency and directivity gain are more than an order of magnitude higher than existing metallic, dielectric, or metallo-dielectric optical antenna. (C) 2013 Optical Society of America

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