Electrolyte in Sodium-Ion Battery-Modelling and Simulation

Jump To References Section

Authors

  • Department of Chemistry, Manipal University, Jaipur ,IN
  • Department of Electronics and Communication Engineering, Manipal University Jaipur ,IN
  • Department of Chemistry, Manipal University, Jaipur ,IN
  • Skill Faculty of Engineering and Technology, Shri Vishwakarma Skill University, Gurugram, Haryana ,IN
  • Department of Electrical Engineering, Manipal University Jaipur ,IN

DOI:

https://doi.org/10.18311/jmmf/2023/33919

Keywords:

Energy, Batteries, Sodium, Supercapacitors, Development, Electrochemical.

Abstract

The design and manufacturing of energy storage system (ESS) are essential for human society development. India has made significant efforts to improve its energy storage infrastructure. The main elements for energy storage development are batteries i.e., lithium-ion batteries (LIB), lithium air batteries, etc. and supercapacitors. As the lithium resources are specifically located in China, Japan, USA, and Chile, to reduce the dependency on these countries for lithium-ion battery, India must think about alternative material. Sodium-ion battery (SIB) is at the forefront of the development, and it aims at providing low-cost devices less affected to resources. This review paper addresses the fundamental principles, structure and focused on the components of sodium-ion battery. This paper also helps to address the electrolytes used in sodium-ion battery with their design and modelling. Current research and future directions has been discussed in this article for sodium-ion batteries.

Downloads

Download data is not yet available.

Metrics

Metrics Loading ...

Downloads

Published

2023-06-01

How to Cite

Goyal, M., Singh, K., Bhatnagar, N., Shrivastava, A., & Agarwal, S. N. (2023). Electrolyte in Sodium-Ion Battery-Modelling and Simulation. Journal of Mines, Metals and Fuels, 71(4), 493–501. https://doi.org/10.18311/jmmf/2023/33919

Issue

Section

Articles

 

References

P. K. Nayak, L. Yang, W. Brehm and P. Adelhelm, (2018): Angewandte Chemie International Edition, 57, 102-120.

N. Altin, (2016): International Smart Grid Workshop and Certificate Program (ISGWCP) 2016, pp. 1-7.

L. Brandeis, D. Sprake, Y. Vagapov and H. Tun, (2016): IEEE NW Russia Young Researchers in Electrical and Electronic Engineering Conference (EIConRusNW) 2016, pp. 513-518.

B. Shyam and P. Kanakasabapathy, (2018): Journal of Energy Storage, 18, 112-120.

X. Luo, J. Wang, M. Dooner and J. Clarke, (2015): Applied energy, 137, 511-536.

M. G. Molina, (2017): Proceedings of the IEEE, 105, 2191-2219.

X. Zhou, Z. Fan, Y. Ma and Z. Gao, (2017): 36th Chinese Control Conference (CCC), pp. 10674-10678.

N. R. a. I. Davidson, (2017): Proceedings of the IEEE PES-IAS Power Africa Conference, Accra, Ghana, pp. 121 – 125.

A. Lachuriya and R. Kulkarni, (2017): International Conference on Nascent Technologies in Engineering (ICNTE), pp. 1-6.

M. D. Slater, D. Kim, E. Lee and C. S. Johnson, (2013):Advanced Functional Materials, 23, 947-958.

G. Survey, Mineral Commodity Summaries: (2012): Government Printing Office, p.

B. Kale and S. Chatterjee, (2020): Bulletin of materials science, 43, 1-15.

In Vol. China Energy Storage Allliance (CNESA). CNESA Global Energy Storage Market Analysis—2019, 2020.

S. S. Zhang, (2013): Frontiers in Energy Research, 1, 8.

In India Consumer Electronics Market Size, Share & Trends Analysis Report By Product (Mobile Phones, Televisions, Refrigerators, Digital Cameras, Air Conditioners, Washing Machines), And Segment Forecasts, 2022-2030, Vol. 2022.

D. Howell, (2012): EV everywhere grand challenge battery workshop.

S. A. Khan and M. Kushler, 2013.

E. de la Llave, V. Borgel, K.-J. Park, J.-Y. Hwang, Y.-K. Sun, P. Hartmann, F.-F. Chesneau and D. Aurbach, (2016): ACS applied materials & interfaces, 8, 1867-1875.

D. Linden, (2010): Linden’s handbook of batteries, McGraw-Hill.

P. Adelhelm, P. Hartmann, C. L. Bender, M. Busche, C. Eufinger and J. Janek, (2015): Beilstein Journal of nanotechnology, 6, 1016-1055.

K. Mizushima, P. Jones, P. Wiseman and J. B. Goodenough, (1980): Materials Research Bulletin, 15, 783-789.

A. S. Nagelberg and W. L. Worrell, (1979): Journal of Solid State Chemistry, 29, 345-354.

J.-P. Parant, R. Olazcuaga, M. Devalette, C. Fouassier and P. Hagenmuller, (1971): Journal of Solid State Chemistry, 3, 1-11.

C. Delmas, C. Fouassier and P. Hagenmuller, (1980): Physica B+ c, 99, 81-85.

J. Braconnier, C. Delmas, C. Fouassier and P. Hagenmuller, (1980): Materials Research Bulletin, 15, 1797-1804.

M. S. Whittingham, (1978): Progress in Solid State Chemistry, 12, 41-99.

J.-Y. Hwang, S.-T. Myung and Y.-K. Sun, (2017): Chemical Society Reviews, 46, 3529-3614.

S. Komaba, N. Yabuuchi, T. Nakayama, A. Ogata, T. Ishikawa and I. Nakai, (2012): Inorganic Chemistry, 51, 6211-6220.

In Reliance takes over Faradion for £100 million, Vol. 2022.

In Sodium-Ion Battery Market - Growth, Trends, Covid-19 Impact, And Forecasts (2022-2027), Vol. Mordor Intelligence.

L. Wang, J. Shang, Q. Huang, H. Hu, Y. Zhang, C. Xie, Y. Luo, Y. Gao, H. Wang and Z. Zheng, (2021):Advanced Materials, 33, 2102802.

N. Lavars, New Atlas 2021.

N. Yabuuchi, M. Kajiyama, J. Iwatate, H. Nishikawa, S. Hitomi, R. Okuyama, R. Usui, Y. Yamada and S. Komaba, (2012): Nature materials, 11, 512-517.

Y. Uebou, T. Kiyabu, S. Okada and J.-I. Yamaki, 2002.

A. Rudola, A. J. Rennie, R. Heap, S. S. Meysami, A. Lowbridge, F. Mazzali, R. Sayers, C. J. Wright and J. Barker, Journal of Materials Chemistry A 2021, 9, 8279-8302.

R. Shakoor, D.-H. Seo, H. Kim, Y.-U. Park, J. Kim, S.-W. Kim, H. Gwon, S. Lee and K. Kang, (2012): Journal of Materials Chemistry, 22, 20535-20541.

P. Thomas, J. Ghanbaja and D. Billaud, (1999): Electrochimica acta, 45, 423-430.

G. Åvall, J. Mindemark, D. Brandell and P. Johansson, (2018): Advanced Energy Materials, 8, 1703036.

Q. Liu, D. Mu, B. Wu, L. Wang, L. Gai and F. Wu, (2017): ChemSusChem, 10, 786-796.

H. Ota, Y. Sakata, Y. Otake, K. Shima, M. Ue and J.-I. Yamaki, (2004): Journal of The Electrochemical Society, 151, A1778.

Q. Liu, D. Mu, B. Wu, H. Xu, L. Wang, L. Gai, L. Shi and F. Wu, (2017): Journal of The Electrochemical Society, 164, A3144.

J. Barthel, H. Gores, R. Neueder and A. Schmid, (1999): Pure and Applied Chemistry, 71, 1705-1715.

E. Jónsson and P. Johansson, (2012): Physical Chemistry Chemical Physics, 14, 10774-10779.

A. Eilmes and P. Kubisiak, (2013): The Journal of Physical Chemistry B, 117, 12583-12592.

A. Bitner-Michalska, G. M. Nolis, G. ¯ukowska, A. Zalewska, M. Potera³a, T. Trzeciak, M. Dranka, M. Kalita, P. Jankowski and L. Niedzicki, (2017): Scientific reports, 7, 1-10.

M. Okoshi, Y. Yamada, A. Yamada and H. Nakai, (2013): Journal of the Electrochemical Society, 160, A2160.

M. Okoshi, C.-P. Chou and H. Nakai, (2018): The Journal of Physical Chemistry B, 122, 2600-2609.

M. Shakourian-Fard, G. Kamath, K. Smith, H. Xiong and S. K. Sankaranarayanan, (2015): The Journal of Physical Chemistry C, 119, 22747-22759.

S. De, A. Boda and S. M. Ali, (2010): Journal of Molecular Structure: THEOCHEM, 941, 90-101.

F. Bella, F. Colò, J. R. Nair and C. Gerbaldi, (2015): ChemSusChem, 8, 3668-3676.

Y. Yang, Z. Chang, M. Li, X. Wang and Y. Wu, (2015): Solid State Ionics, 269, 1-7.

D. Kumar and S. Hashmi, (2010): Journal of Power Sources, 195, 5101-5108.

D. Fenton, (1973): Polymer, 14, 589.

P. V. Wright, (1975): British polymer journal, 7, 319-327.

J. Muldoon, C. B. Bucur, N. Boaretto, T. Gregory and V. Di Noto, (2015): Polymer Reviews, 55, 208-246.

[56] Z. Xue, D. He and X. Xie, (2015): Journal of Materials Chemistry A, 3, 19218-19253.

A. Ponrouch, D. Monti, A. Boschin, B. Steen, P. Johansson and M. R. Palacín, (2015): Journal of Materials Chemistry A, 3, 22-42.

J. Mindemark, R. Mogensen, M. J. Smith, M. M. Silva and D. Brandell, (2017): Electrochemistry Communications, 77, 58-61.

Z. Osman, K. B. Md Isa, A. Ahmad and L. Othman, Ionics 2010, 16, 431-435.

O. Dürr, W. Dieterich and A. Nitzan, (2004): The Journal of chemical physics, 121, 12732-12739.

D. Devaux, R. Bouchet, D. Glé and R. Denoyel, (2012): Solid State Ionics, 227, 119-127.

A. Memboeuf, K. Vékey and G. Lendvay, (2011): European journal of mass spectrometry, 17, 33-46.

J. Beckers, K. Van Der Bent and S. De Leeuw, (2000): Solid State Ionics, 133, 217-231.

J. O. Thomas and M. A. Zendejas, (1989): Journal of Computer-Aided Molecular Design, 3, 311-325.

M. Zendejas and J. Thomas, CrossRef| Web of Science® Times Cited 12.

M. Wolf, J. Walker and C. Catlow, (1984): Solid State Ionics, 13, 33-38.

M. A. Zendejas and J. O. Thomas, (1990): Physica Scripta, 235.

[O. Ito, M. Mukaide and M. Yoshikawa, (1995): Solid state ionics, 80, 181-187.

W. Smith, G. Greaves and M. Gillan, (1995): Journal of non-crystalline solids, 192, 267-271.

B. Vessal, G. Greaves, P. Marten, A. V. Chadwick, R. Mole and S. Houde-Walter, (1992): Nature, 356, 504-506.

A. Bunde, M. D. Ingram, P. Maass and K. Ngai, (1991): Journal of non-crystalline solids, 131, 1109-1112.

P. P. Kumar and S. Yashonath, (2002): Journal of the American Chemical Society, 124, 3828-3829.

[73] S. Roy and P. Padma Kumar, (2012): Journal of Materials Science, 47, 4946-4954.

S. Roy and P. P. Kumar, (2013): Physical Chemistry Chemical Physics, 15, 4965-4969.

K. E. Kweon, J. B. Varley, P. Shea, N. Adelstein, P. Mehta, T. W. Heo, T. J. Udovic, V. Stavila and B. C. Wood, (2017): Chemistry of Materials, 29, 9142-9153.

Y. Sadikin, P. Schouwink, M. Brighi, Z. £odziana and R. Cerny, (2017): Inorganic chemistry, 56, 5006-5016.

Z. Zhu, I.-H. Chu, Z. Deng and S. P. Ong, (2015): Chemistry of Materials, 27, 8318-8325.

N. J. De Klerk and M. Wagemaker, (2016): Chemistry of Materials, 28, 3122-3130.

W. Smith and M. Gillan, (1992): Journal of Physics: Condensed Matter, 4, 3215.