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Pregled bibliografske jedinice broj: 722437

Damping effects in doped graphene: The relaxation-time approximation


Kupčić, Ivan
Damping effects in doped graphene: The relaxation-time approximation // Physical Review B - Condensed Matter and Materials Physics, 90 (2014), 205426-1 doi:10.1103/PhysRevB.90.205426 (međunarodna recenzija, članak, znanstveni)


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Naslov
Damping effects in doped graphene: The relaxation-time approximation

Autori
Kupčić, Ivan

Izvornik
Physical Review B - Condensed Matter and Materials Physics (1098-0121) 90 (2014); 205426-1

Vrsta, podvrsta i kategorija rada
Radovi u časopisima, članak, znanstveni

Ključne riječi
doped graphene; electrodynamic properties; Ward identity; energy loss spectroscopy

Sažetak
The dynamical conductivity of interacting multiband electronic systems derived in Ref.[1] is shown to be consistent with the general form of the Ward identity. Using the semiphenomenological form of this conductivity formula, we have demonstrated that the relaxation-time approximation can be used to describe the damping effects in weakly interacting multiband systems only if local charge conservation in the system and gauge invariance of the response theory are properly treated. Such a gauge-invariant response theory is illustrated on the common tight-binding model for conduction electrons in doped graphene. The model predicts two distinctly resolved maxima in the energy-loss-function spectra. The first one corresponds to the intraband plasmons (usually called the Dirac plasmons). On the other hand, the second maximum ($\pi$ plasmon structure) is simply a consequence of the van Hove singularity in the single-electron density of states. The dc resistivity and the real part of the dynamical conductivity are found to be well described by the relaxation-time approximation, but only in the parametric space in which the damping is dominated by the direct scattering processes. The ballistic transport and the damping of Dirac plasmons are thus the questions that require abandoning the relaxation-time approximation.

Izvorni jezik
Engleski

Znanstvena područja
Fizika



POVEZANOST RADA


Projekti:
119-1191458-0512 - Niskodimenzionalni jako korelirani vodljivi sustavi (Barišić, Slaven, MZOS ) ( CroRIS)

Ustanove:
Prirodoslovno-matematički fakultet, Zagreb

Profili:

Avatar Url Ivan Kupčić (autor)

Poveznice na cjeloviti tekst rada:

doi journals.aps.org

Citiraj ovu publikaciju:

Kupčić, Ivan
Damping effects in doped graphene: The relaxation-time approximation // Physical Review B - Condensed Matter and Materials Physics, 90 (2014), 205426-1 doi:10.1103/PhysRevB.90.205426 (međunarodna recenzija, članak, znanstveni)
Kupčić, I. (2014) Damping effects in doped graphene: The relaxation-time approximation. Physical Review B - Condensed Matter and Materials Physics, 90, 205426-1 doi:10.1103/PhysRevB.90.205426.
@article{article, author = {Kup\v{c}i\'{c}, Ivan}, year = {2014}, pages = {205426-1-205426-15}, DOI = {10.1103/PhysRevB.90.205426}, keywords = {doped graphene, electrodynamic properties, Ward identity, energy loss spectroscopy}, journal = {Physical Review B - Condensed Matter and Materials Physics}, doi = {10.1103/PhysRevB.90.205426}, volume = {90}, issn = {1098-0121}, title = {Damping effects in doped graphene: The relaxation-time approximation}, keyword = {doped graphene, electrodynamic properties, Ward identity, energy loss spectroscopy} }
@article{article, author = {Kup\v{c}i\'{c}, Ivan}, year = {2014}, pages = {205426-1-205426-15}, DOI = {10.1103/PhysRevB.90.205426}, keywords = {doped graphene, electrodynamic properties, Ward identity, energy loss spectroscopy}, journal = {Physical Review B - Condensed Matter and Materials Physics}, doi = {10.1103/PhysRevB.90.205426}, volume = {90}, issn = {1098-0121}, title = {Damping effects in doped graphene: The relaxation-time approximation}, keyword = {doped graphene, electrodynamic properties, Ward identity, energy loss spectroscopy} }

Časopis indeksira:


  • Current Contents Connect (CCC)
  • Web of Science Core Collection (WoSCC)
    • SCI-EXP, SSCI i/ili A&HCI
  • Scopus


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