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Electrochemical insertion of sodium into nanostructured materials based on germanium

Il'ya Mikhailovich Gavrilin 1
Il'ya Mikhailovich Gavrilin
Vladimir A Smolyaninov 1
Vladimir A Smolyaninov
Alexey Alekseevich Dronov 1
Alexey Alekseevich Dronov
Sergei Aleksandrovich Gavrilov 1
Sergei Aleksandrovich Gavrilov
Alexey Yur'evich Trifonov 1, 2
Alexey Yur'evich Trifonov
Tatiana L'vovna Kulova 3
Tatiana L'vovna Kulova
Anna Aleksandrovna Kuz'mina 3
Anna Aleksandrovna Kuz'mina
Alexandr Mordukhaevich Skundin
Published 2018-11-01
CommunicationVolume 28, Issue 6, 659-660
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Gavrilin I. M. et al. Electrochemical insertion of sodium into nanostructured materials based on germanium // Mendeleev Communications. 2018. Vol. 28. No. 6. pp. 659-660.
GOST all authors (up to 50) Copy
Gavrilin I. M., Smolyaninov V. A., Dronov A. A., Gavrilov S. A., Trifonov A. Y., Kulova T. L., Kuz'mina A. A., Skundin A. M. Electrochemical insertion of sodium into nanostructured materials based on germanium // Mendeleev Communications. 2018. Vol. 28. No. 6. pp. 659-660.
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TY - JOUR
DO - 10.1016/j.mencom.2018.11.034
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2018.11.034
TI - Electrochemical insertion of sodium into nanostructured materials based on germanium
T2 - Mendeleev Communications
AU - Gavrilin, Il'ya Mikhailovich
AU - Smolyaninov, Vladimir A
AU - Dronov, Alexey Alekseevich
AU - Gavrilov, Sergei Aleksandrovich
AU - Trifonov, Alexey Yur'evich
AU - Kulova, Tatiana L'vovna
AU - Kuz'mina, Anna Aleksandrovna
AU - Skundin, Alexandr Mordukhaevich
PY - 2018
DA - 2018/11/01
PB - Mendeleev Communications
SP - 659-660
IS - 6
VL - 28
ER -
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@article{2018_Gavrilin,
author = {Il'ya Mikhailovich Gavrilin and Vladimir A Smolyaninov and Alexey Alekseevich Dronov and Sergei Aleksandrovich Gavrilov and Alexey Yur'evich Trifonov and Tatiana L'vovna Kulova and Anna Aleksandrovna Kuz'mina and Alexandr Mordukhaevich Skundin},
title = {Electrochemical insertion of sodium into nanostructured materials based on germanium},
journal = {Mendeleev Communications},
year = {2018},
volume = {28},
publisher = {Mendeleev Communications},
month = {Nov},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2018.11.034},
number = {6},
pages = {659--660},
doi = {10.1016/j.mencom.2018.11.034}
}
MLA
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Gavrilin, Il'ya Mikhailovich, et al. “Electrochemical insertion of sodium into nanostructured materials based on germanium.” Mendeleev Communications, vol. 28, no. 6, Nov. 2018, pp. 659-660. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2018.11.034.

Abstract

The filamentary nanostructures of composition Ge0.91In0.09 were synthesized from the aqueous solution by electrolysis. It has been demonstrated that at the low current density, the reversible capacity of sodium insertion into the composition is about 590mAhg−1, which corresponds to Na1.73Ge0.91In0.09 alloy.

References

2.
Electrochemical properties of tin oxide anodes for sodium-ion batteries
Lu Y.C., Ma C., Alvarado J., Kidera T., Dimov N., Meng Y.S., Okada S.
Journal of Power Sources, 2015
3.
SnO2@MWCNT nanocomposite as a high capacity anode material for sodium-ion batteries
Wang Y., Su D., Wang C., Wang G.
Electrochemistry Communications, 2013
4.
Ultrafine SnO2nanoparticle loading onto reduced graphene oxide as anodes for sodium-ion batteries with superior rate and cycling performances
Wang Y., Lim Y., Park M., Chou S., Kim J.H., Liu H., Dou S., Kim Y.
Journal of Materials Chemistry A, 2014
8.
Nanocrystalline anatase TiO2: a new anode material for rechargeable sodium ion batteries
Xu Y., Memarzadeh Lotfabad E., Wang H., Farbod B., Xu Z., Kohandehghan A., Mitlin D.
Chemical Communications, 2013
9.
Anatase TiO2 nanoparticles for high power sodium-ion anodes
Wu L., Buchholz D., Bresser D., Gomes Chagas L., Passerini S.
Journal of Power Sources, 2014
11.
Nanocrystalline TiO2(B) as Anode Material for Sodium-Ion Batteries
Wu L., Bresser D., Buchholz D., Passerini S.
Journal of the Electrochemical Society, 2014
13.
High electrochemical performances of microsphere C-TiO₂ anode for sodium-ion battery.
Oh S., Hwang J., Yoon C.S., Lu J., Amine K., Belharouak I., Sun Y.
ACS applied materials & interfaces, 2014
15.
Thermodynamic description of the Ge–Na and Ge–K systems using the CALPHAD approach supported by first-principles calculations
Wang Y., Wang P., Zhao D., Hu B., Du Y., Xu H., Chang K.
Calphad: Computer Coupling of Phase Diagrams and Thermochemistry, 2012
16.
Germanium as a Sodium Ion Battery Material: In Situ TEM Reveals Fast Sodiation Kinetics with High Capacity
Lu X., Adkins E.R., He Y., Zhong L., Luo L., Mao S.X., Wang C., Korgel B.A.
Chemistry of Materials, 2016
17.
Activation with Li Enables Facile Sodium Storage in Germanium
Kohandehghan A., Cui K., Kupsta M., Ding J., Memarzadeh Lotfabad E., Kalisvaart W.P., Mitlin D.
Nano Letters, 2014
18.
Germanium as negative electrode material for sodium-ion batteries
Baggetto L., Keum J.K., Browning J.F., Veith G.M.
Electrochemistry Communications, 2013
19.
Nanocolumnar Germanium Thin Films as a High-Rate Sodium-Ion Battery Anode Material
Abel P.R., Lin Y., de Souza T., Chou C., Gupta A., Goodenough J.B., Hwang G.S., Heller A., Mullins C.B.
Journal of Physical Chemistry C, 2013
20.
Effect of electrolyte temperature on the cathodic deposition of Ge nanowires on in and Sn particles in aqueous solutions
Gavrilin I.M., Gromov D.G., Dronov A.A., Dubkov S.V., Volkov R.L., Trifonov A.Y., Borgardt N.I., Gavrilov S.A.
Semiconductors, 2017