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Theoretical investigation of hot electron cooling process in GaAs/AlAs cylindrical quantum wire under the influence of an intense electromagnetic wave

Pham, K.D. and Nguyen, C.V. and Hieu, N.N. and Phuc, H.V. and Hoi, B.D. and Hoa, B.M.H. and Phuong, L.T.T. (2018) Theoretical investigation of hot electron cooling process in GaAs/AlAs cylindrical quantum wire under the influence of an intense electromagnetic wave. Optical and Quantum Electronics, 50 (9): 342. ISSN 3068919

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Abstract

Hot electrons cooling by phonons in GaAs/AlAs cylindrical quantum wire (CQW), under the influence of an intense electromagnetic wave (EMW), is studied theoretically. Analytic expression for the electron cooling power (CP) is derived from the quantum transport equation for phonons, using the Hamiltonian of interacting electron–optical phonon system. Both photon absorption and emission processes are considered. Numerical results show that the CP reaches maximum when the energy difference between electronic subbands equals the energy of an optical phonon plus the photon energy. Under the influence of the EMW, the negative CP is observed showing that electrons gain energy from phonon and photon instead of losing their energy. Also, the CP increases with increasing the EMW amplitude. Our results theoretically clarify the mechanism of the electron cooling process by phonons in the GaAs/AlAs CQW under the EMW, which is of significance for designing and fabricating high-speed nanoelectronic devices based on this material. © 2018, Springer Science+Business Media, LLC, part of Springer Nature.

Item Type: Article
Divisions: Faculties > Faculty of Mechanical Engineering
Identification Number: 10.1007/s11082-018-1606-x
Uncontrolled Keywords: Circular waveguides; Cooling; Electromagnetic waves; Electrons; Gallium arsenide; Hamiltonians; III-V semiconductors; Meteorology; Nanowires; Phonons; Photons; Quantum chemistry; Quantum electronics; Semiconducting gallium; Semiconductor quantum wires; Wire; Cooling power; Cylindrical quantum wires; Electron cooling; Intense electromagnetic waves; Nanoelectronic devices; Phonon interactions; Quantum transport equations; Theoretical investigations; Hot electrons
Additional Information: Language of original document: English.
URI: http://eprints.lqdtu.edu.vn/id/eprint/9530

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