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Pregled bibliografske jedinice broj: 853879

Intraband memory function and memory-function conductivity formula in doped graphene


Kupčić, Ivan
Intraband memory function and memory-function conductivity formula in doped graphene // Physical review. B, 95 (2017), 3; 035403, 13 doi:10.1103/PhysRevB.95.035403 (međunarodna recenzija, članak, znanstveni)


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Naslov
Intraband memory function and memory-function conductivity formula in doped graphene

Autori
Kupčić, Ivan

Izvornik
Physical review. B (2469-9950) 95 (2017), 3; 035403, 13

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

Ključne riječi
memory functions ; optical conductivity ; quantum kinetic equations ; self-consistent RPA equations ; doped graphene

Sažetak
The generalized self-consistent field method is used to describe intraband relaxation processes in a general multiband electronic system with presumably weak residual electron-electron interactions. The resulting memory-function conductivity formula is shown to have the same structure as the result of a more accurate approach based on the quantum kinetic equation. The results are applied to heavily doped and lightly doped graphene. It is shown that the scattering of conduction electron by phonons leads to the redistribution of the intraband conductivity spectral weight over a wide frequency range, however, in a way consistent with the partial transverse conductivity sum rule. The present form of the intraband memory function is found to describe correctly the scattering by quantum fluctuations of the lattice, at variance with the semiclassical Boltzmann transport equations, where this scattering channel is absent. This is shown to be of fundamental importance in quantitative understanding of the reflectivity data measured in lightly doped graphene as well as in different low-dimensional strongly correlated electronic systems, such as the cuprate superconductors.

Izvorni jezik
Engleski

Znanstvena područja
Fizika



POVEZANOST RADA


Projekti:
MZOS-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 arxiv.org journals.aps.org

Citiraj ovu publikaciju:

Kupčić, Ivan
Intraband memory function and memory-function conductivity formula in doped graphene // Physical review. B, 95 (2017), 3; 035403, 13 doi:10.1103/PhysRevB.95.035403 (međunarodna recenzija, članak, znanstveni)
Kupčić, I. (2017) Intraband memory function and memory-function conductivity formula in doped graphene. Physical review. B, 95 (3), 035403, 13 doi:10.1103/PhysRevB.95.035403.
@article{article, author = {Kup\v{c}i\'{c}, Ivan}, year = {2017}, pages = {13}, DOI = {10.1103/PhysRevB.95.035403}, chapter = {035403}, keywords = {memory functions, optical conductivity, quantum kinetic equations, self-consistent RPA equations, doped graphene}, journal = {Physical review. B}, doi = {10.1103/PhysRevB.95.035403}, volume = {95}, number = {3}, issn = {2469-9950}, title = {Intraband memory function and memory-function conductivity formula in doped graphene}, keyword = {memory functions, optical conductivity, quantum kinetic equations, self-consistent RPA equations, doped graphene}, chapternumber = {035403} }
@article{article, author = {Kup\v{c}i\'{c}, Ivan}, year = {2017}, pages = {13}, DOI = {10.1103/PhysRevB.95.035403}, chapter = {035403}, keywords = {memory functions, optical conductivity, quantum kinetic equations, self-consistent RPA equations, doped graphene}, journal = {Physical review. B}, doi = {10.1103/PhysRevB.95.035403}, volume = {95}, number = {3}, issn = {2469-9950}, title = {Intraband memory function and memory-function conductivity formula in doped graphene}, keyword = {memory functions, optical conductivity, quantum kinetic equations, self-consistent RPA equations, doped graphene}, chapternumber = {035403} }

Časopis indeksira:


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


Citati:





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