Current relaxation due to hot carrier scattering in graphene

In this paper, we present direct time-domain investigations of the relaxation of electric currents in graphene due to hot carrier scattering. We use coherent control with ultrashort optical pulses to photoinject a current and detect the terahertz (THz) radiation emitted by the resulting current surg...

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Bibliographic Details
Published inNew journal of physics Vol. 14; no. 10; pp. 105012 - 105023
Main Authors Sun, Dong, Divin, Charles, Mihnev, Momchil, Winzer, Torben, Malic, Ermin, Knorr, Andreas, Sipe, John E, Berger, Claire, de Heer, Walt A, First, Phillip N, Norris, Theodore B
Format Journal Article
LanguageEnglish
Published IOP Publishing 10.10.2012
Institute of Physics: Open Access Journals
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Summary:In this paper, we present direct time-domain investigations of the relaxation of electric currents in graphene due to hot carrier scattering. We use coherent control with ultrashort optical pulses to photoinject a current and detect the terahertz (THz) radiation emitted by the resulting current surge. We pre-inject a background of hot carriers using a separate pump pulse, with a variable delay between the pump and current-injection pulses. We find the effect of the hot carrier background is to reduce the current and hence the emitted THz radiation. The current damping is determined simply by the density (or temperature) of the thermal carriers. The experimental behavior is accurately reproduced in a microscopic theory, which correctly incorporates the nonconservation of velocity in scattering between Dirac fermions. The results indicate that hot carriers are effective in damping the current, and are expected to be important for understanding the operation of high-speed graphene electronic devices.
ISSN:1367-2630
1367-2630
DOI:10.1088/1367-2630/14/10/105012