Quantum theory of the effect of increasing weak electromagnetic wave by a strong laser radiation in 2D Graphene
Anh-Tuan Tran, Nguyen Dinh Nama, Nguyen Thi Thanh Nhan, and Nguyen, Quang Bau

TL;DR
This paper derives analytic expressions for the absorption coefficient of weak electromagnetic waves in 2D graphene under strong laser radiation, revealing conditions for amplification and resonance effects influenced by temperature and magnetic fields.
Contribution
It introduces a quantum kinetic equation approach to analyze electromagnetic absorption in graphene, extending beyond high-temperature limits and exploring magnetic field effects.
Findings
Negative absorption coefficients indicating wave amplification.
Resonance peaks obeying magneto-phonon resonance conditions.
Dependence of absorption features on temperature and magnetic field.
Abstract
Analytic expressions for the absorption coefficient (AC) of a weak electromagnetic wave (EMW) in 2D Graphene under influence of strong laser radiation are calculated using the quantum kinetic equation (QKE) in the case of electron-optical phonon scattering in both the absence and presence of a magnetic field perpendicular to the graphene sheet. The dependence of the AC on the intensity and the frequency of a weak EMW, on the intensity and the frequency of a strong laser radiation, on the temperature T of the system is obtained. These results are investigated from low temperature to high temperature. These results are obtained from the QKE method, which broke the limit of the Boltzmann kinetic equations (only investigated in the high-temperature domain). Besides, the numerical results show that the AC of a weak EMW in 2D Graphene can have negative…
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