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Pis'ma v Zh. Èksper. Teoret. Fiz., 2009, Volume 89, Issue 10, Pages 599–602 (Mi jetpl432)  

This article is cited in 15 scientific papers (total in 15 papers)

CONDENSED MATTER

Multiphonon mechanism of the ionization of traps in Al$_2$O$_3$Experiment and numerical simulation

Yu. N. Novikova, V. A. Gritsenkoa, K. A. Nasyrovb

a Institute of Semiconductor Physics of SB RAS
b Institute of Automation and Electrometry, Siberian Branch of Russian Academy of Sciences

Abstract: Charge transfer in Al2O3 has been investigated experimentally and theoretically. The experimental results are in qualitative agreement with the theory of the multiphonon ionization of deep centers. The thermal (W T = 1.5 eV) and optical (W opt = 3.0 eV) energies of the deep centers have been determined. It has been found that the experimental data are unsatisfactorily described by the Pool-Frenkel mechanism, which provides a non-physically small frequency factor and anomalously large effective tunneling mass.

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English version:
Journal of Experimental and Theoretical Physics Letters, 2009, 89:10, 506–509

Bibliographic databases:

PACS: 77.22.Jp, 77.55.+f, 77.84.Bw
Received: 08.04.2009

Citation: Yu. N. Novikov, V. A. Gritsenko, K. A. Nasyrov, “Multiphonon mechanism of the ionization of traps in Al$_2$O$_3$Experiment and numerical simulation”, Pis'ma v Zh. Èksper. Teoret. Fiz., 89:10 (2009), 599–602; JETP Letters, 89:10 (2009), 506–509

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    1. Pustovarov V.A., Aliev V.Sh., Perevalov T.V., Gritsenko V.A., Eliseev A.P., Zh Èksper Teoret Fiz, 111:6 (2011), 989–995  crossref  adsnasa  isi  scopus
    2. Ivanchenko M.V., Gritsenko V.A., Nepomnyashchii A.V., Saranin A.A., Tech. Phys., 57:5 (2012), 693–696  crossref  isi  elib  scopus
    3. Leonova T.M., Kastro ARata R. A., Izvestiya rossiiskogo gosudarstvennogo pedagogicheskogo universiteta im. A.I. Gertsena, 2012, no. 144, 45–51  elib
    4. Borisova T.M., Kastro Apata R. A., Izvestiya rossiiskogo gosudarstvennogo pedagogicheskogo universiteta im. A.I. Gertsena, 2013, no. 154, 53–64  elib
    5. Borisova T.M., Kastro Apata R. A., Trudy moskovskogo fiziko-tekhnicheskogo instituta, 5 (2013), 21–24  elib
    6. Nevshupa R.A., J. Phys. D-Appl. Phys., 46:18 (2013), 185501  crossref  adsnasa  isi  elib  scopus
    7. Novikov Yu.N., Phys. Solid State, 55:5 (2013), 966–969  crossref  adsnasa  isi  elib  scopus
    8. K. A. Nasyrov, V. A. Gritsenko, Phys. Usp., 56:10 (2013), 999–1012  mathnet  crossref  crossref  adsnasa  isi  elib
    9. Novikov Yu.N., Phys. Solid State, 56:6 (2014), 1087–1092  crossref  adsnasa  isi  elib  scopus
    10. Gritsenko V.A. Perevalov T.V. Islamov D.R., Phys. Rep.-Rev. Sec. Phys. Lett., 613 (2016), 1–20  crossref  mathscinet  isi  scopus
    11. I. G. Atabaev, M. S. Paizullakhanov, Sh. R. Nurmatov, High Temperature, 54:4 (2016), 503–509  mathnet  crossref  crossref  isi  elib
    12. Daus A., Vogt Ch., Munzenrieder N., Petti L., Knobelspies S., Cantarella G., Luisier M., Salvatore G.A., Troster G., J. Appl. Phys., 120:24 (2016), 244501  crossref  isi  scopus
    13. Yu. N. Novikov, JETP Letters, 105:10 (2017), 646–650  mathnet  crossref  crossref  isi  elib
    14. Daus A., Lenarczyk P., Petti L., Munzenrieder N., Knobelspies S., Cantarella G., Vogt Ch., Salvatore G.A., Luisier M., Troster G., Adv. Electron. Mater., 3:12 (2017), 1700309  crossref  isi  scopus
    15. Garibov A.A., Agayev T.N., Melikova S.Z., Imanova G.T., Faradjzade I.A., Nanotechnol. Russ., 12:5-6 (2017), 252–257  crossref  isi  scopus
  •       Pis'ma v Zhurnal ksperimental'noi i Teoreticheskoi Fiziki
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