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We designed a near-unity transmittance dielectric/Ag/ITO electrode for high-efficiency GaN-based light-emitting diodes by using the scattering matrix method.
By using the scattering matrix formalism, it is studied the optical properties of one dimensional photonic crystals made of multiple layers of dielectric and uniaxial anisotropic single negative electric metamaterial with Drude type responses, with inclusions of graphene in between the dielectric-dielectric interfaces (DGMPC).
Because the CD data suggested a change in the secondary structure content of Skp1, we decided that it was not appropriate to use multiphase bead modeling by using the scattering data simultaneously from Skp1 and GGFGGn-Skp1.
This phenomenon is a scattering-related effect of large particles that can be accounted for by using the scattering theory and is classified under a novel category of observed hypochromism designated as macroscopic hypochromism (see Theory section for formal definition).
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However, the estimation accuracy of CFR matrix by using the scattered pilot subcarriers would be degraded due to the occurrence of ICI for the received pilot subcarriers in higher time-varying fading channels [12].
The relationships are explained by using the Mie scattering theory, model prediction and observed microstructural characteristics.
The ionospheric electron density isolines looked as series of random surfaces can be reconstructed from the HF-SAR echoes by using the inverse scattering technique for layered rough surfaces and the method of moment (MoM).
We have demonstrated that this can be mitigated by using the forward scattering signal to calculate the FPD values, as is shown by our Supporting Information cell data.
We calculated spatially-resolved reflectance spectra of the calibration phantom by using the reduced scattering coefficients predicted with Mie theory in the scaling MC code.
Measurements were carried out by using the same scattering coefficient of the background and an absorption coefficient of μ a = 0.24 mm-1 (contrast of 20 1 with respect to the background).
In the result section, we present a new method to differentiate DNAs by their lengths using the scattering signals.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com