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This Defense Intelligence Reference Document, dated 2 March 2010 and produced by the Defense Intelligence Agency under its Advanced Aerospace Weapon System Applications (AAWSA) Program, is a technical survey of invisibility. It covers camouflage, including stealth aircraft and optical camouflage, then transparency, cloaking by coordinate transformation, metamaterials and non-Euclidean broadband cloaking. It concludes that perfect cloaking is impossible but imperfect microwave cloaks are within reach of present technology. Whether cloaking will work at visible wavelengths remains unclear.
“King”1 page
UNCLASSIFIED/ ,'F811. 8FFll!l*L 1!1!11! t!IIU:!Y The split-ring resonators are electromagnetic circuits; they respond to the electromagnetic field of microwave radiation. Their response depends on their shapes. For example, in the cloaking device shown in Figure 11, the double stripes in the middle of the split- ring resonators vary from ring to ring. As these stripes form an electric capacitor, the capacitance of the resonators also varies. The colored curves show how the electromagnetic functions change over the distance from the center of the cloaking device as a result of the varied capacitance. As they are always positive, negative refraction is not required for cloaking. At the inner ring, the red curve reaches zero, defining the boundary of the cloaking device. The rings with their split-ring structures are designed to perform an approximation of the Figure 11. Cloaking Device for Microwaves 14 coordinate transformation shown and explained in the previous section. How is this possible? The split-ring resonators act like the atoms or molecules of a normal optical -• or electromagnetic material: they absorb electromagnetic waves and re-emit them with a phase delay or advance that depends on their electromagnetic response. Like atoms or molecules, they are much smaller than the electromagnetic wavelength-3-mm cell size versus 3-cm wavelength in the case of the microwave cloaking device 15-such that the waves cannot resolve them individually but, rather, react to them as if they were a bulk material with electromagnetic properties that may differ from point to point. Unlike atoms or molecules, the electromagnetic response of each split-ring resonator is tailor- made because it depends on the shape of the resonator that can be easily modified. For example, in the case of the microwave-cloaking device, 16 the electromagnetic response depends on the capacitance that is varied by changing the length of the double stripes in the resonators. An unstructured circuit board reacts completely differently to the microwave radiation: it would simply reflect it like the mesh in the window of a microwave oven. A material with electromagnetic or optical properties that depends on structures much smaller than the wavelength is called a meta material. Metamaterials per se are nothing new; the ancient Romans invented the first optical metamaterial: ruby glass. The Romans probably did not know it, but their recipe for ruby glass contained one crucial ingredient: 17 tiny gold droplets, typically 5-60 nanometers (nm) in size. These gold particles color the glass in an extraordinary way, as demonstrated by the exquisite Lycurgus Cup shown in Figure 12. In daylight, the cup appears a greenish color, but illuminate it from the inside, and it glows ruby. The gold particles act like the split-ring resonators of the microwave-cloaking device, 18 but here on light, not on microwave radiation. Light consists of electromagnetic waves as well, but with significantly smaller wavelengths of around 500 nm. The gold particles are thus much smaller than the wavelength of light, and they turn out to be resonators as well: in them, electric currents flow in a way that is dictated by their shapes and sizes. When the light wave hits the resonance of the gold particle, most of its energy is 10 UNCLASSIFIED/;«F81it 8FFIIIAI!: 1!181! &••1::Y
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Report, from the dia collection. The PDF is mirrored here; the original link is above. 29 pages are in the text index: search them above, or from the library's search.