Keywords
discharge capacity
polyimide cathode
quantum-chemical modeling
SiO2
sodium battery
Abstract
The effect of the addition of SiO2 nanoparticles on the properties of a polyimide cathode was explored by CV, XPS, and galvanostatic cycling methods. The capacity and average cycling potential of the cell increased in the presence of SiO2. By quantum chemical modeling, it was shown that SiO2 nanoparticles served as a framework for polyimide, which retained its fixed structure upon metalation with sodium.
References
1.
Perveen T., Siddiq M., Shahzad N., Ihsan R., Ahmad A., Shahzad M.I.
Renewable and Sustainable Energy Reviews,
2020
2.
Skundin A.M., Kulova T.L., Yaroslavtsev A.B.
Russian Journal of Electrochemistry,
2018
3.
Sodium and lithium incorporated cathode materials for energy storage applications - A focused review
James Abraham J., Arro C.R., Tariq H.A., Kahraman R., Al-Qaradawi S., Al tahtamouni T.M., Shakoor R.A.
Journal of Power Sources,
2021
4.
Holguin K., Mohammadiroudbari M., Qin K., Luo C.
Journal of Materials Chemistry A,
2021
5.
Puttaswamy R., Kotrappanavar N.S., Ghosh D.
Materials Advances,
2021
6.
Usiskin R., Lu Y., Popovic J., Law M., Balaya P., Hu Y., Maier J.
Nature Reviews Materials,
2021
7.
Banda H., Damien D., Nagarajan K., Hariharan M., Shaijumon M.M.
Journal of Materials Chemistry A,
2015
8.
Yarmolenko O.V., Romanyuk O.E., Slesarenko A.A., Baymuratova G.R., Shuvalova N.I., Mumyatov A.V., Troshin P.A., Shestakov A.F.
Russian Journal of Electrochemistry,
2019
9.
Shestakov A.F., Romanyuk O.E., Mumyatov A.V., Luchkin S.Y., Slesarenko A.A., Yarmolenko O.V., Stevenson K.J., Troshin P.A.
Journal of Electroanalytical Chemistry,
2019
10.
The Effect of Electrolyte Composition on the Parameters of Batteries of the Polyimide–Lithium System
Baymuratova G.R., Mumyatov A.V., Kapaev R.R., Troshin P.A., Yarmolenko O.V.
Russian Journal of Electrochemistry,
2021
11.
Huang Y., Li K., Liu J., Zhong X., Duan X., Shakir I., Xu Y.
Journal of Materials Chemistry A,
2017
12.
Zhang Y., An Y., Dong S., Jiang J., Dou H., Zhang X.
Journal of Physical Chemistry C,
2018
13.
Kalita K.J., Giri I., Vijayaraghavan R.K.
RSC Advances,
2021
14.
Cheng Q., He W., Zhang X., Li M., Song X.
RSC Advances,
2016
15.
Wang Y., Wang S., Fang J., Ding L., Wang H.
Journal of Membrane Science,
2017
16.
Preparation of ultra-low dielectric constant silica/polyimide nanofiber membranes by electrospinning
Liu L., Lv F., Li P., Ding L., Tong W., Chu P.K., Zhang Y.
Composites - Part A: Applied Science and Manufacturing,
2016
17.
Liu S., Deng L., Guo W., Zhang C., Liu X., Luo J.
Advanced Materials,
2019
18.
Jiang F., Li T., Ju P., Sun J., Liu C., Li Y., Sun X., Chen C.
Nanoscale Advances,
2019
19.
Yudina A.V., Berezin M.P., Baymuratova G.R., Shuvalova N.I., Yarmolenko O.V.
Russian Chemical Bulletin,
2017
20.
Yarmolenko O.V., Khatmullina K.G., Baymuratova G.R., Tulibaeva G.Z., Bogdanova L.M., Shestakov A.F.
Mendeleev Communications,
2018
21.
Baskakov S.A., Manzhos R.A., Lobach A.S., Baskakova Y.V., Kulikov A.V., Martynenko V.M., Milovich F.O., Kumar Y., Michtchenko A., Kabachkov E.N., Krivenko A.G., Shulga Y.M.
Journal of Non-Crystalline Solids,
2018
22.
Golubev Y.A., Rozhkova N.N., Kabachkov E.N., Shul'ga Y.M., Natkaniec-Hołderna K., Natkaniec I., Antonets I.V., Makeev B.A., Popova N.A., Popova V.A., Sheka E.F.
Journal of Non-Crystalline Solids,
2019
23.
Perdew J.P., Burke K., Ernzerhof M.
Physical Review Letters,
1996
24.
Stevens W.J., Basch H., Krauss M.
Journal of Chemical Physics,
1984
25.
Laikov D.N.
Chemical Physics Letters,
1997
26.
Komissarova E.A., Zhulanov V.E., Mokrushin I.G., Vasyanin A.N., Shklyaeva E.V., Abashev G.G.
Russian Chemical Bulletin,
2020