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Defense Intelligence Reference Document Metamaterials For Aerospace Applications

Defense Intelligence Agency · 27 pages · text from the file's own layer

This Defense Intelligence Reference Document from the Defense Intelligence Agency, dated 6 April 2010, reviews electromagnetic and optical metamaterials for aerospace use. It was produced in FY 2009 under the Advanced Aerospace Weapon System Applications (AAWSA) Program. The report covers super-lenses and hyper-lenses for imaging objects smaller than the diffraction limit, slowing light to shrink components, energy-harvesting absorbers, and one-way chiral devices. It concludes that metamaterials matter for aerospace because they allow smaller, lighter components.

  • p. 2 …a series of advanced technology reports produced in FY 2009 under the Defense Intelligence Agency, ffbl…
  • p. 3 …Schematic of the SIC-based Super-lens Which Is Imaging Sub-wavelength Holes Buried Under the…
  • p. 9 …Applications ofmetamaterials to photon harvesting is especially fitting for advanced aerospace platforms because of the necessity…
  • p. 10 UNCLASSIFIED/ JFQA 8FFl81alft U!II! GIit i • Far Field Super-Lens Based on the Interferometry of…
  • p. 13 …Within the confines of an advanced aerospace platform such device (with its necessary auxiliaries) may not…
  • p. 16 …To advance this goal, and to develop a tool sometimes referred to as the FSL, we…
  • p. 19 …Figure 10 demonstrates this interference pattern which reveals the phase advance of the sub-diffraction waves…
  • p. 20 …Slowing Down and Manipulating Electromagnetic Pulses (EMP) Using Advanced Metamaterials Given the space constraints of an…
  • p. 23 …These frequency domains are likely to be of greater use for advanced aerospace platforms than the…
  • p. 26 …If the wavelength falls inside the transparency window of the atmosphere (between 3 and 4 μm…
  • p. 27 …Some type of thermophotovoltaic converter will almost undoubtedly be installed on the advanced aerospace platforms of…
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The electric response of such (or similar) metamaterial is given by
ai
&(Ill)= f - l l' .
or-m; +10Jy (2)
where ma is the resonant frequency and r is the loss coefficient.
Negative index metamaterials are by no means the only potentially useful metamedia.
Several new concepts such as Indefinite Permittivity Metamaterials (IPM) (References
3, 4) and Epsilon-Near-Zero (ENZ) metamaterials (Reference 5) have recently emerged
and found some exciting applications that will be reviewed below. IPMs can be used as
ultra-compact spatial filters (both high-pass and low-pass) whereas ENR metamaterials
can be·used for making sub-wavelength waveguides capable of coupling close to 100
percent of the incident radiation (Reference 8), as well as directing it around tight
bends with negligible bending losses. Yet another class of planar metamaterials,
complementary metamaterials (CMMs), has recently emerged (Reference 7). Instead of
using metallic structures deposited on a substrate (left panel of Figure 3), CMMs consist
of slits in the continuous metal screen (right panel of Figure 3). The shape of the slits
coincides with that of the materials themselves. Such complementary metamaterials
have been recently used for making epsilon-near zero waveguides (Reference 8).
CE4
CE5
CE3 CE6
Figure 3. Geometry of Orlglnal Planar Metamaterlal Unit Cells (OE1-0E6) and Their Complements
(CE1-CE6). The polarization of normally Incident electromagnetlc radiation ls configured as shown ln OEl
and CEl for the original and complementary metamaterials, respectively, (Reference 9)
3
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Report, from the dia collection. The PDF is mirrored here; the original link is above. 27 pages are in the text index: search them above, or from the library's search.