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The bandwidth corresponding to the reflection loss below −10 dB is 13.1 GHz (4.9 18 GHz) with thickness in the range of 1.2 mm–4 mm.
By the properties of this transformation, the center (a_{b}(lambda)) of the disc (D_{b}(lambda)) corresponding to the reflection of the critical point in the imaginary axis.
It shows that the minimum reflection loss reached −17.8 dB (absorbing more than 98%) at 15 GHz and the frequency bandwidth corresponding to the reflection loss at −10 dB was 3 GHz (from 12 to 15 GHz).
With a thickness of 2.7 mm, the optimal absorption peak reached −48 dB at 13.4 GHz and the bandwidth corresponding to the reflection loss at −10 dB was 3.4 GHz (from 13.2 to 16.6 GHz).
Figure 3 Beams traced from the source location (a) and the corresponding beam-tree (b). Figure 4 (a) Beam subdivision performed in the (m,q domain for the bundle of rays corresponding to the reflection of the beam of Figure 3.
In addition to this diffraction peak, a minor diffraction peak at 2θ ≈ 61.2°, corresponding to the reflection (200) of the B2 phase, is also observed in the XRD pattern of the TiNi film deposited at 400°C in 200-mTorr Ar atmosphere.
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The diffractogram shows peaks at 2θ = 38.1°, 44.3°, and 64.5°, corresponding to the reflections of the silver crystalline planes (111), (200), and (220), respectively.
Besides, when the annealing temperature was equal to or greater than 70 °C, peaks at 14.02°, 28.32°, 31.76°, 40.46°, and 43.02°, corresponding to the reflections from (110), (220), (310), (224), and (314) crystal planes of the tetragonal perovskite structure, respectively [35, 36], were detected.
In the R1 (non-MPDO) hypothesis, the 001 reflection is highly asymmetrical when the calculations lie in the partial order range, and two peaks, corresponding to the 001 reflection from 11 and 14 Å species, are resolved when the calculations lie in the segregation range.
The c-axis-oriented ZnO film exhibit a sharp diffraction peak corresponding to the (0 0 2) reflection at 2θ=34.42.
Their XRD patterns exhibit higher preferential orientation at 2θ = 23.922° corresponding to the (111) reflection of the cubic CdTe.
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