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August 26, 2004Science919 citations

Nanoribbon Waveguides for Subwavelength Photonics Integration

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MLMatt LawUniversity of California, IrvineDSDonald J. SirbulyUniversity of California, San DiegoJJJustin C. JohnsonNational Renewable Energy Laboratory

Key Points

  • This research aims to explore the optical integration of crystalline oxide nanoribbons as subwavelength waveguides for photonic applications.
  • Evaluated the properties of individually synthesized crystalline oxide nanoribbons as waveguides.
  • Assessed their capability to form networks with nanowires and other optical components.
  • Demonstrated the assembly of waveguides with nanowire light sources and detectors.
  • Successfully integrated nanoribbon waveguides with nanowire light sources and detectors.
  • Facilitated the manipulation of structures due to their length, flexibility, and strength.
  • Achieved initial assembly towards creating a functional nanowire photonic circuitry.

Abstract

Although the electrical integration of chemically synthesized nanowires has been achieved with lithography, optical integration, which promises high speeds and greater device versatility, remains unexplored. We describe the properties and functions of individual crystalline oxide nanoribbons that act as subwavelength optical waveguides and assess their applicability as nanoscale photonic elements. The length, flexibility, and strength of these structures enable their manipulation on surfaces, including the optical linking of nanoribbon waveguides and other nanowire elements to form networks and device components. We demonstrate the assembly of ribbon waveguides with nanowire light sources and detectors as a first step toward building nanowire photonic circuitry.

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Cite This Study

Law et al. (2004) studied this question.

synapsesocial.com/papers/6a0f3ae6f27f69a1d3426865https://doi.org/10.1126/science.1100999
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