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Super-ionic nano-composite solid electrolytes prepared by laser ablation. / Tver’yanovich, Yury; Fokina, S.; Borisov, E.

Springer Series in Chemical Physics. Springer Nature, 2017. p. 253-261 (Springer Series in Chemical Physics; Vol. 115).

Research output: Chapter in Book/Report/Conference proceedingChapterResearchpeer-review

Harvard

Tver’yanovich, Y, Fokina, S & Borisov, E 2017, Super-ionic nano-composite solid electrolytes prepared by laser ablation. in Springer Series in Chemical Physics. Springer Series in Chemical Physics, vol. 115, Springer Nature, pp. 253-261. https://doi.org/10.1007/978-3-319-52431-3_25

APA

Tver’yanovich, Y., Fokina, S., & Borisov, E. (2017). Super-ionic nano-composite solid electrolytes prepared by laser ablation. In Springer Series in Chemical Physics (pp. 253-261). (Springer Series in Chemical Physics; Vol. 115). Springer Nature. https://doi.org/10.1007/978-3-319-52431-3_25

Vancouver

Tver’yanovich Y, Fokina S, Borisov E. Super-ionic nano-composite solid electrolytes prepared by laser ablation. In Springer Series in Chemical Physics. Springer Nature. 2017. p. 253-261. (Springer Series in Chemical Physics). https://doi.org/10.1007/978-3-319-52431-3_25

Author

Tver’yanovich, Yury ; Fokina, S. ; Borisov, E. / Super-ionic nano-composite solid electrolytes prepared by laser ablation. Springer Series in Chemical Physics. Springer Nature, 2017. pp. 253-261 (Springer Series in Chemical Physics).

BibTeX

@inbook{ae6a5879de2d4d889293a91fbeacc9f5,
title = "Super-ionic nano-composite solid electrolytes prepared by laser ablation",
abstract = "Using the laser ablation method, AgI stoichiometric compound films, (GeSe2)30(Sb2Se3)30(AgI)40 glass films, and films comprised of alternating layers of AgI and the glass were obtained. Individual layer thickness amounts to 10 nm, and the total number of layers is about 100. Film conductivity measurements were carried out during several cycles of heating up to 200 °C and cooling to room temperature. It was established that after three cycles of thermal processing specific lateral conductivity of the film is equal to 0.3 S cm-1 and conductivity activation energy is equal to 0.07 eV at room temperature.",
author = "Yury Tver{\textquoteright}yanovich and S. Fokina and E. Borisov",
year = "2017",
month = jan,
day = "1",
doi = "10.1007/978-3-319-52431-3_25",
language = "English",
series = "Springer Series in Chemical Physics",
publisher = "Springer Nature",
pages = "253--261",
booktitle = "Springer Series in Chemical Physics",
address = "Germany",

}

RIS

TY - CHAP

T1 - Super-ionic nano-composite solid electrolytes prepared by laser ablation

AU - Tver’yanovich, Yury

AU - Fokina, S.

AU - Borisov, E.

PY - 2017/1/1

Y1 - 2017/1/1

N2 - Using the laser ablation method, AgI stoichiometric compound films, (GeSe2)30(Sb2Se3)30(AgI)40 glass films, and films comprised of alternating layers of AgI and the glass were obtained. Individual layer thickness amounts to 10 nm, and the total number of layers is about 100. Film conductivity measurements were carried out during several cycles of heating up to 200 °C and cooling to room temperature. It was established that after three cycles of thermal processing specific lateral conductivity of the film is equal to 0.3 S cm-1 and conductivity activation energy is equal to 0.07 eV at room temperature.

AB - Using the laser ablation method, AgI stoichiometric compound films, (GeSe2)30(Sb2Se3)30(AgI)40 glass films, and films comprised of alternating layers of AgI and the glass were obtained. Individual layer thickness amounts to 10 nm, and the total number of layers is about 100. Film conductivity measurements were carried out during several cycles of heating up to 200 °C and cooling to room temperature. It was established that after three cycles of thermal processing specific lateral conductivity of the film is equal to 0.3 S cm-1 and conductivity activation energy is equal to 0.07 eV at room temperature.

UR - http://www.scopus.com/inward/record.url?scp=85020232456&partnerID=8YFLogxK

U2 - 10.1007/978-3-319-52431-3_25

DO - 10.1007/978-3-319-52431-3_25

M3 - Chapter

AN - SCOPUS:85020232456

T3 - Springer Series in Chemical Physics

SP - 253

EP - 261

BT - Springer Series in Chemical Physics

PB - Springer Nature

ER -

ID: 32917368