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The scattering rates couple initial and final k states, eliminating the need for final-state calculations.
Hence, the joint action of the energy conservation law and the decoupling greatly reduces the scattering rates.
Using the calculated scattering rates as input data, rate equations can be solved and population inversion and the optical gain obtained.
The ultrafast scattering rates between Γ- and X-valley states is used to depopulate the lower laser level in a modified GaAs/AlGaAs THz QCL structure.
It was observed that the phase coherence and intervalley scattering rates are enhanced with the deposition of Al2O3 on graphene film compared to uncovered graphene.
The EPW v4 program can be used to compute electron and phonon self-energies, linewidths, electron phonon scattering rates, electron phonon coupling strengths, transport spectral functions, electronic velocities, resistivity, anisotropic superconducting gaps and spectral functions within the Migdal Eliashberg theory.
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Tan, Y.-W. et al. Measurement of Scattering Rate and Minimum Conductivity in Graphene.
We assign the intervalley scattering rate τs−1 to be proportional to the phonon population and substitute kT with (∆E − ћωq).
The model is based on the self-consistent solution of the Schrödinger and Poisson equations using a one-dimensional scattering rate approach, which includes the laser rate equations.
A heterostructure made with two laterally coupled QDs, in the presence of an external magnetic field, has been employed in order to study the electron scattering rate due to two-phonon processes.
The measured λ of this graphitized carbon fiber decreases from 372.4 to 330.1 W/(m·K) as T increases from 338 to 496 K, indicating the three-phonon Umklapp scattering rate increases with temperature.
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