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This Defense Intelligence Reference Document from the Defense Intelligence Agency is dated 11 January 2011. It was produced in FY 2010 under the Advanced Aerospace Weapons System Applications (AAWSA) Program. It reviews negative, or sub-vacuum, energy found in squeezed light and the Casimir effect, and explains quantum optical homodyne tomography as a way to measure and map that energy in the lab. It proposes balanced homodyne detector arrays that could help detect anomalous aerospace platforms using engineered spacetime propulsion.
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41 UNCLASSIFIED//FIHl 8FFHil.t.k Wfili IH.k\f LO '+; ' ' le, V "" ••• '" lo cs lo ~ ' / l ' l s " s s ' "' , / - . " '' ' ' '' 4 / ' lo lo ' lo i::/ "PDx i:f ·, '~ PBS1 HWP PBS2 Figure 18. Detailed Schematic of Experimental BHD Apparatus. (courtesy of P. Marecki) Note that point V corresponds to point Pin Figure 15. f. ' 1(1 !1 FrPquency Figure 19. Predicted Casimir Spectral Density urr• (courtesy of P. Marecki) crvv is related to the expected output of a BHD with the LD polarized along they-direction (parallel to the plates) for the ground state in the Casimir cavity. This is plotted as a function of the position x E [O, a] between the plates (separation a = 1 μm is assumed) and the frequency w E [O, 4nc/a]. Negative values (suppression of fluctuations) are shown in deep purple. UNCLASSIFIED//FIUl 8FFHiiI.«1k W&liii SUlklf
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