Transformational Optics MURI

Abstract

The Transformation Optics MURI team has continued to develop the theory, modeling and application of Transformation Optical (TO) media, as well as investigating related fabrication and materials issues necessary for implementing metamaterial based TO designs at infrared and visible wavelengths. Device concepts include ultra widefield-of-view lenses; near-field magnifiers (or hyper-lenses); integrated photonic TO devices; plasmonic TO structures; and tapered waveguide analog TO devices. Of particular relevance is the development of quasi-conformal (QC) optimization techniques that lead to more realizable TO designs, appropriate for the shorter wavelengths of interest.The QCTO approach has been demonstrated in the design of a flattened Luneburg lens, which can be realized using dielectric-only media,and has also been applied in the optimization of a multi-functional Janus element that integrates simultaneous beam shifting and focusing operations within the same chip-scale footprint. Material and fabrication efforts have included the integration of gain media into metamaterial elements to offset absorptive losses, as well as a number of lithographic patterning techniques to achieve planar and bulk gradient and TO media operational at near- and mid-infrared wavelengths.

Open PDF

Document Details

Document Type
Technical Report
Publication Date
Dec 19, 2016
Accession Number
AD1060108

Entities

People

  • Alexandra Boltasseva
  • David R. Smith
  • David Schurig
  • Nan Jokerst
  • Shalaev Vladimir
  • Stephane Larouche
  • Steven A. Cummer
  • Xiang Zhang

Organizations

  • Duke University

Tags

Communities of Interest

  • Advanced Electronics

DTIC Thesaurus Topics

  • Electrical Engineering
  • Electromagnetic Metamaterials
  • Laser Science
  • Materials Laboratories
  • Materials Processing
  • Materials Science
  • Materials Testing
  • Metamaterials
  • Negative Index Metamaterials
  • Optical Phenomena
  • Optical Properties
  • Optics
  • Plasmonic Metamaterials
  • Standing Waves
  • Surface Plasmon Polaritons
  • Surface Plasmon Resonance

Fields of Study

  • Physics

Readers

  • Distributed Systems and Data Platform Development
  • Microwave Engineering.
  • Nanofabrication and Microfabrication.

Technology Areas

  • Microelectronics