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Review of Materials for Electrodes and Electrolytes of Lithium Batteries
Authors
E. Podlesnov 1 , M.G. Nigamatdianov 1 , M.V. Dorogov 11 Institute of Advanced Data Transfer Systems, ITMO University, Kronverksky Pr. 49, bldg. A, St. Petersburg, 197101, Russia
Abstract
Lithium-ion batteries are still efficient and reliable energy storage systems and are widely used in portable electronics and electric vehicles. This review describes the types of currently existing lithium batteries, systems with anodes, cathodes and electrolytes made of various materials, and methods for their study. Specifically, it begins with a brief introduction to the principles of lithium-ion batteries operation and cell structure, followed by an overview of battery research methods. Particular attention is paid to the use of nanosized particles for the modification of electrodes and electrolytes, as well as the copolymerization of individual polymers of the gel-polymer electrolyte. The review analyzes possible future developments and prospects for post-lithium batteries.
Keywords
Lithium-ion batteries; Gel-polymer electrolytes; Solid-state electrolytes; Electrodes; NanoparticlesFoundings
Ministry of Science and Higher Education of the Russian Federation: agreement No. 075-15-2021-1349
- O. Javed, R.B. Abd Aziz, Review: Two-Dimensional Layered Material Based Electrodes for Lithium Ion and Sodium Ion Batteries, in: Technological Advancement in Instrumentation & Human Engineering. ICMER 2021. Lecture Notes in Electrical Engineering, vol. 882, ed. by M.H.A. Hassan, M.H. Zohari, K. Kadirgama, N.A.N. Mohamed, A. Aziz, Springer, Singapore, 2023, pp. 399–418.
- J. Libicha, M. Sedlaříkováa, J. Vondráka, J. Mácaa, O. Čecha, Lithiated natural graphite in lithium-ion cell, ECS Trans., 2017, vol. 81, no. 1, pp. 87–95.
- X.-B. Cheng, R. Zhang, C.-Z. Zhao, Q. Zhang, Toward safe lithium metal anode in rechargeable batteries: a review, Chem. Rev., 2017, vol. 117, no. 15, pp. 10403–10473.
- M.S. Whittingham, Electrical energy storage and intercalation chemistry, Science, 1976, vol. 192, no. 4244, pp. 1126–1127.
- R.R. Kapaeva, S.A. Novikova, T.L. Kulovab, A.M. Skundinb, A.B. Yaroslavtseva, Synthesis of LiFePO4 nanoplatelets as cathode materials for Li-ion batteries, Nanotechnol. Russ., 2016, vol. 11, no. 11–12, pp. 757–760.
- D. Rehnlund, F. Lindgren, S. Bohme, T. Nordth, Y. Zou, J. Petterson, U. Bexell, M. Bomas, K. Edstrom, L. Nyholm, Lithium trapping in alloy forming electrodes and current collectors for lithium based batteries, Energy Environ. Sci., 2017, vol. 10, no. 6, pp. 1350–1357.
- J.-J. Yuan, C.-C. Sun, L.-F. Fang, Y.-Z. Song, Y. Yan, Z.-L. Qiu, Y.-J. Shen, H.-Y. Li, B.-K. Zhu, A lithiated gel polymer electrolyte with superior interfacial performance for safe and long-life lithium metal battery, J. Energy Chem., 2021, vol. 55, pp. 313–322.
- C. Vincent, Lithium batteries: a 50-year perspective, 1959–2009, Solid State Ionics, 2000, vol. 134, no. 1–2, pp. 159–167.
- Y. Lim, H.-A. Jung, H. Hwang, Fabrication of PEO-PMMA-LiClO4-based solid polymer electrolytes containing silica aerogel particles for all-solid-state lithium batteries, Energies, 2018, vol. 11, no. 10, art. no. 2559.
- H.T.T. Le, D.T. Ngo, R.S. Kalubarme, G. Cao, C.-N. Park, C.-J. Park, Composite gel polymer electrolyte based on poly(vinylidene fluoride-hexafluoropropylene) (PVDF-HFP) with modified aluminum-doped lithium lanthanum titanate (A-LLTO) for high-performance lithium rechargeable batteries, ACS Appl. Mater. Interfaces, 2016, vol. 8, no. 32, pp. 20710–20719.
- L. Liu, P. Yang, L. Li, Y. Cui, M. An, Application of bis(trifluoromethanesulfonyl)imide lithium-N-methyl-N-butylpiperidinium-bis(trifluoromethanesulfonyl)imide-poly(vinylidene difluoride-co-hexafluoropropylene) ionic liquid gel polymer electrolytes in Li/LiFePO4 batteries at different temperatures, Electrochim. Acta, 2012, vol. 85, pp. 49–56.
- J. Liu, M. Liu, Ch. He, J. Li, Q. Li, Ch. Wang, Ya. Xi, Blending-based poly(vinylidene fluoride)/polymethyl methacrylate membrane for rechargeable lithium-ion batteries, Ionics, 2019, vol. 25, no. 11, pp. 5201–5211.
- H.-Y. Chen, C.-Y. Wu, Y.-T. Hsueh, H.-H. Huang, Electromechanical properties of embedded multifunctional energy storage composite with activated carbon fiber/PVDF gel electrolyte, J. Chinese Inst. Eng., 2021, vol. 44, no. 3, pp. 252–260.
- M. Fujimoto, N. Yoshinaga, K. Ueno, Li-ion secondary battery, 1991, Japan Patent No. JP3229635B2.
- M.V. Reddy, A. Mauger, C.M. Julien, A. Paolella. K. Zaghib, Brief history of early lithium-battery development, Materials, 2020, vol. 13, no. 8, art. no. 1884.
- A. Valavanidis, Nobel Prize of Chemistry 2019 for lithium-ion batteries that revolutionised lives of humankind, Scientific Reviews, 2019, pp. 1–29.
- T. Sasaki, Y. Ukyo, P. Novák, Memory effect in a lithium-ion battery, Nat. Mater., 2013, vol. 12, no. 6, pp. 569–575.
- X. Huang, Z. Wang, R. Knibble, B. Luo, S.A. Ahad, D. Sun, L. Wang, Cyclic voltammetry in lithium-sulfur batteries—challenges and opportunities, Energy Technol., 2019, vol. 7, no. 8, art. no. 1801001.
- [T. Kim, W. Chois, H.-C. Shin, J.-Y. Chois, J. M. Kim, M.-S. Park, W.-S. Yoon, Applications of voltammetry in lithium ion battery research, J. Electrochem. Sci. Technol., 2020, vol. 11, no. 1, pp. 14–25.
- X. Gao, H. Zhu, G. Pan, S. Ye, Y. Lan, F. Wu, Preparation and electrochemical characterization of anatase nanorods for lithium-inserting electrode material, J. Phys. Chem. B., 2004, vol. 108, no. 9, pp. 2868–2872.
- V. Etacheri, R. Marom, R. Elazari, G. Salitra, D. Aurbach, Challenges in the development of advanced Li-ion batteries: a review, Energy Environ. Sci., 2011, vol. 4, no. 9, pp. 3243–3262.
- F. Zhang, L. Qi, Recent progress in self-supported metal oxide nanoarray electrodes for advanced lithium-ion batteries, Adv. Sci., 2016, vol. 3, no. 9, art. no. 1600049.
- R. Tian, N. Alcala, S.J.K. O’Neill, D.V. Horvath, J. Coelho, A.J. Griffin, Y. Zhang, V. Nicolosi, C. O’Dwyer, J.N. Colema, Quantifying the effect of electronic conductivity on the rate performance of nanocomposite battery electrodes, ACS Appl. Energy Mater., 2020, vol. 3, no. 3, pp. 2966–2974.
- S. Akhtar, W. Lee, M. Kim, M.-S. Park, W.-S. Yoon, Conduction mechanism of charge carriers in electrodes and design factors for the improvement of charge conduction in Li-ion batteries,” J. Electrochem. Sci. Technol., 2021, vol. 12, no. 1, pp. 1–20.
- M. Gaberšček, Understanding Li-based battery materials via electrochemical impedance spectroscopy, Nat. Commun., 2021, vol. 12, no. 1, art. no. 6513.
- N. Meddings, M. Heinrich, F. Overney, J.-S. Lee, V. Ruiz, E. Napolitano, S. Seitz, G. Hinds, R. Raccichini, M. Gaberšček, J. Park, Application of electrochemical impedance spectroscopy to commercial Li-ion cells: A review, J. Power Sources, 2020, vol. 480, art. no. 228742.
- B. Aziz, T.J. Woo, M.F.Z. Kadir, H.M. Ahmed, A conceptual review on polymer electrolytes and ion transport models, J. Sci. Adv. Mater. Devices, 2018, vol. 3, no. 1, pp. 1–17.
- D. Chen, M. Zhu, P. Kang, T. Zhu, H. Yuan, J. Lan, X. Yang, G. Su, Self‐enhancing gel polymer electrolyte by in situ construction for enabling safe lithium metal battery, Adv. Sci., 2022, vol. 9, no. 4, art. no. 2103663.
- M. Musil, J. Vondrák, Transference number measurements on gel polymer electrolytes for lithium-ion batteries, ECS Trans., 2014, vol. 63, no 1, pp. 315–319.
- C.J. Wen, B.A. Boukamp, R.A. Huggins, W. Weppner, Thermodynamic and mass transport properties of “LiAl”, J. Electrochem. Soc., 1979, vol. 126, no. 12, pp. 2258–2266.
- J. Li, X. Xiao, F. Yang, M.W. Verbrugge, Y.-T. Cheng, Potentiostatic intermittent titration technique for electrodes governed by diffusion and interfacial reaction, J. Phys. Chem. C, 2012, vol. 116, no. 1, pp. 1472–1478.
- A. Nickol, T. Schied, C. Heubner, M. Schneider, A. Michaelis, M. Bobeth, G. Cuniberti, GITT analysis of lithium insertion cathodes for determining the lithium diffusion coefficient at low temperature: challenges and pitfalls, J. Electrochem. Soc., 2020, vol. 167, no 9, art. no. 090546.
- H. Li, S. Guo, H. Zhou, In-situ/operando characterization techniques in lithium-ion batteries and beyond, J. Energy Chem., 2021, vol. 59, pp. 191–211.
- P. Guan, Y. Zhu, M. Li, T. Zeng, X. Li, R. Tian, N. Sharma, Z. Xu, T. Wan, L. Hu, Y. Liu, C. Cazorla, D. Chu, Enhancing cyclic and in-air stability of Ni-rich cathodes through perovskite oxide surface coating, J. Colloid Interface Sci., 2022, vol. 628, pp. 407–418.
- S.-M. Bak, E. Hu, Y. Zhou, X. Yu, S.D. Senanayake, S.-J. Cho, K.-B. Kim, K.Y. Chung, X.-Q. Yang, K.-W. Nam, Structural changes and thermal stability of charged LiNixMnyCozO2 cathode materials studied by combined in situ time-resolved XRD and mass spectroscopy, ACS Appl. Mater. Interfaces, 2014, vol. 6, no. 24, pp. 22594–22601.
- Lithium-ion batteries need to be greener and more ethical, Nature, 2021, vol. 595, no. 7.
- D. Gryzlov, S. Novikova, T. Kulova, A. Skundin, A. Yaroslavtsev, Behavior of LiFePO4/CPVDF/Ag-based cathode materials obtained using polyvinylidene fluoride as the carbon source, Materials and Design, 2016, vol. 104, pp. 95–101.
- Y. Wang, E. Wang, X. Zhang, H. Yu, High-voltage “single-crystal” cathode materials for lithium-ion batteries, Energy & Fuels, 2021, vol. 35, no. 3, pp. 1918–1932.
- W. Li, B. Song, A. Manthiram, High-voltage positive electrode materials for lithium-ion batteries, Chem. Soc. Rev., 2017, vol. 46, no. 10, pp. 3006–3059.
- T.L. Kulova, A.M. Skundin, Electrode materials for lithium-ion batteries of new generation, Russ. J. Electrochem., 2012, vol. 48, no. 3, pp. 330–335.
- V.C. Amanchukwu, J.R. Harding, Y. Shao-Horn, P.T. Hammond, Understanding the chemical stability of polymers for lithium-air batteries, Chem. Mater., 2015, vol. 27, no. 2, pp. 550–561.
- G. Girishkumar, B. McCloskey, A.C. Luntz, S. Swanson, W. Wilcke, Lithium-air battery: promise and challenges, J. Phys. Chem. Lett., 2010, vol. 1, no. 14, pp. 2193–2203.
- Y. Xie, J. Ao, L. Zhang, Y. Shao, H. Zhang, S. Cheng, X. Wang, Multi-functional bilayer carbon structures with micrometer-level physical encapsulation as a flexible cathode host for high-performance lithium-sulfur batteries, Chem. Eng. J., 2023, vol. 451, art. no. 139017.
- M. Wang, X. Zhou, X. Cai, H. Wang, Y. Fang, X. Zhong, Hierarchically porous, ultrathin N-doped carbon nanosheets embedded with highly dispersed cobalt nanoparticles as efficient sulfur host for stable lithium-sulfur batteries, J. Energy Chem., 2020, vol. 50, pp. 106–114.
- H. Chang, Y.-R. Wu, X. Han, T.-F. Yi, Recent developments in advanced anode materials for lithium-ion batteries, Energy Mater., 2022, vol. 1, no. 1, art. no. 100003.
- D. Puthusseri, M. Wahid, S. Ogale, Conversion-type anode materials for alkali-ion batteries: state of the art and possible research directions, ACS Omega, 2018, vol. 3, no. 4, pp. 4591–4601.
- G. Wang, X. Shen, J. Yao, One-dimensional nanostructures as electrode materials for lithium-ion batteries with improved electrochemical performance, J. Power Sources, 2009, vol. 189, no. 1, pp. 543–546.
- S. Handaja, H. Susanto, H. Hermawan, Electrical conductivity of carbon electrodes by mixing carbon rod and electrolyte paste of spent battery, Int. J. Renew. Energy Dev., 2021, vol. 10, no. 2, pp. 221–227.
- B. Campbell, R. Ionescu, Z. Favors, C.S. Ozkan, M. Ozkan, Bio-derived, binderless, hierarchically porous carbon anodes for Li-ion batteries, Sci. Rep., 2015, vol. 5, no. 1, art. no. 14575.
- K.V. Mironovich, S.A. Evlashin, S.A. Bocharova, M.S. Yerdauletov, S.A. Dagesyan, A.V. Egorov, N.V. Suetin, D.M. Itkisab, V.A. Krivchenko, Gaining cycling stability of Si- and Ge-based negative Li-ion high areal capacity electrodes by using carbon nanowall scaffolds, J. Mater. Chem. A., 2017, vol. 5, no. 34, pp. 18095–18100.
- R.M. Humana, M.G. Ortiz, J.E. Thomas, S.G. Real, M. Sedlarikova, J. Vondrak, A. Visintin, Characterization of anodes for lithium-ion batteries, J. Solid State Electrochem., 2016, vol. 20, no. 4, pp. 1053–1058.
- K. Liu, D. Zhuo, H.-W. Lee, W. Liu, D. Lin, Y. Lu, Y. Cui, Extending the life of lithium-based rechargeable batteries by reaction of lithium dendrites with a novel silica nanoparticle sandwiched separator, Adv. Mater., 2017, vol. 29, no. 4, pp. 1603987.
- K.K. Kudasheva, I.S. Yasnikov, M.V. Dorogov, Peculiarities of morphology of tin microcrystals electroplated under galvanostatic conditions, Russ. J. Electrochem., 2020, vol. 56, no. 12, pp. 1051–1056.
- M. Nigamatdianov, N. Chirkunova, M. Dorogov, Belt-like SnO2 structures for lithium batteries, AIP Conference Proceedings, 2022, vol. 2533, art. no. 020010.
- Z. Ying, Q. Wan, H. Cao, Z.T. Song, S.L. Feng, Characterization of SnO2 nanowires as an anode material for Li-ion batteries, Appl. Phys. Lett., 2005, vol. 87, no. 11, art. no. 113108.
- Y.V. Lim, X.L. Li, H.Y. Yang, Recent tactics and advances in the application of metal sulfides as high‐performance anode materials for rechargeable sodium‐ion batteries, Adv. Funct. Mater., 2021, vol. 31, no. 10, art. no. 2006761.
- Z. Hu, Z. Zhu, F. Cheng, K. Zhang, J. Wang, Ch. Chena, J. Chen, Pyrite FeS2 for high-rate and long-life rechargeable sodium batteries, Energy Environ. Sci., 2015, vol. 8, no. 4, pp. 1309–1316.
- S. Peng, L. Li, S.G. Mhaisalkar, M. Srinivasan, S. Ramakrishna, Q. Yan, Hollow nanospheres constructed by CoS2 nanosheets with a nitrogen-doped-carbon coating for energy-storage and photocatalysis, ChemSusChem, 2014, vol. 7, no. 8, pp. 2212–2220.
- F. Bozheyev, A. Zhexembekova, S. Zhumagali, A. Molkenova, Z. Bakenov, MoS2 nanopowder as anode material for lithium-ion batteries produced by self-propagating high-temperature synthesis, Mater. Today Proc., 2017, vol. 4, no. 3, pp. 4567–4571.
- S. Ramesh, G.P. Ang, Impedance and FTIR studies on plasticized PMMA–LiN(CF3SO2)2 nanocomposite polymer electrolytes, Ionics, 2010, vol. 16, no. 5, pp. 465–473.
- H. Wang, Q. Pan, J. Zhao, G. Yin, P. Zuo, Fabrication of CuO film with network-like architectures through solution-immersion and their application in lithium ion batteries, J. Power Sources, 2007, vol. 167, no. 1, pp. 206–211.
- L.M. Dorogin, M.V. Dorogov, S. Vlassov, A.A. Vikarchuk, A.E. Romanov, Whisker growth and cavity formation at the microscale,” Rev. Adv. Mater. Technol., 2020, vol. 2, no. 1, pp. 1–31.
- M. Dorogov, A. Kalmykov, L. Sorokin, A. Kozlov, A. Myasoedov, D. Kirilenko, N. Chirkunova, A. Priezzheva, A. Romanov, E.C. Aifantis, CuO nanowhiskers: preparation, structure features, properties, and applications, Mater. Sci. Technol., 2018, vol. 34, no. 17, pp. 2126–2135.
- M.S. Berminova, A.E. Kalmykov, A.V. Myasoedov, L.M. Sorokin, M.V. Dorogov, Incoherent grain boundaries in CuO nanowhiskers, J. Phys.: Conf. Ser., 2020, vol. 1697, art. no. 012097.
- H. Zhang, G. Zhang, Z. Li, K. Qu, L. Wang, W. Zeng, Q. Zhang, H. Duan, Ultra-uniform CuO/Cu in nitrogen-doped carbon nanofibers as a stable anode for Li-ion batteries, J. Mater. Chem. A., 2016. vol. 4, no. 27, pp. 10585–10592.
- L.B. Chen, N. Lu, C.M. Xu, H.C. Yu, T.H. Wang, Electrochemical performance of polycrystalline CuO nanowires as anode material for Li ion batteries, Electrochim. Acta, 2009, vol. 54, no. 17, pp. 4198–4201.
- P. Hu, M. Dorogov, Y. Xin, K.E. Aifantis, Transforming single‐crystal CuO/Cu2O nanorods into nano‐polycrystalline Cu/Cu2O through lithiation, ChemElectroChem., 2019, vol. 6, no. 12, pp. 3139–3144.
- X. Tang, Q. Pan, J. Liu, Enhancing lithium storage capacity of ZnO anodes through Ni3ZnC0.7 incorporation, J. Electrochem. Soc., 2010, vol. 157, no. 1, pp. A55–A59.
- N.V. Chirkunova, M.M. Skryabina, M.V. Dorogov, Sol-gel prepared TiO2 photocatalyst, Rev. Adv. Mater. Technol., 2020, vol. 2, no. 3, pp. 44–50.
- H. Kleykamp, Phase equilibria in the Li–Ti–O system and physical properties of Li2TiO3, Fusion Eng. Des., 2002, vol. 61–62, pp. 361–366.
- E. Podlesnov, N.V. Churkunova, M.V. Dorogov, Copper oxide nanowhiskers: Structure, growth mechanisms, and associated stresses, IOP Conf. Ser.: Mater. Sci. Eng., 2020, vol. 1008, art. no. 012044.
- E. Podlesnov, M.V. Dorogov, Nanowhiskers for lithium battery anode, IOP Conf. Ser.: Mater. Sci. Eng., 2020, vol. 1008, art. no. 012043.
- Z. Xue, D. He, X. Xie, Poly(ethylene oxide)-based electrolytes for lithium-ion batteries, J. Mater. Chem. A., 2015, vol. 3, no. 38, pp. 19218–19253.
- Y. Wu, Y. Li, Y. Wang, Q. Liu, Q. Chen, M. Chen, Advances and prospects of PVDF based polymer electrolytes, J. Energy Chem., 2022, vol. 64, pp. 62–84.
- M. Armand, M. Duclot, Electrochemical generators for producing current and new materials for their manufacture, 1978, France Patent No. FR2442512B1.
- J. Vondrák, J. Reiter, J. Velická, M. Sedlařı́ková, PMMA-based aprotic gel electrolytes, Solid State Ionics, 2004, vol. 170, no. 1–2, pp. 79–82.
- C. He, J. Liu, J. Cui, J. Li, X. Wu, A gel polymer electrolyte based on Polyacrylonitrile/organic montmorillonite membrane exhibiting dense structure for lithium ion battery, Solid State Ionics, 2018, vol. 315, pp. 102–110.
- J. Bao, G. Shi, C. Tao, C. Wang, C. Zhu, L. Cheng, G. Qian, C. Chen, Polycarbonate-based polyurethane as a polymer electrolyte matrix for all-solid-state lithium batteries, J. Power Sources, 2018, vol. 389, pp. 84–92.
- S.A. Hashmi, A. Kumar, S.K. Tripathi, Experimental studies on poly methyl methacrylate based gel polymer electrolytes for application in electrical double layer capacitors, J. Phys. D: Appl. Phys., 2007, vol. 40, no. 21, pp. 6527–6534.
- L. Zhao, Y. Huang, B. Liu, Y. Huang, A. Song, Y. Lin, M. Wang, X. Li, H. Cao, Gel polymer electrolyte based on polymethyl methacrylate matrix composited with methacrylisobutyl-polyhedral oligomeric silsesquioxane by phase inversion method, Electrochim. Acta, 2018, vol. 278, pp. 1–12.
- D. Mouraliraman, N. Shaji, S. Praveen, M. Nanthagopal, C.W. Ho, M.V. Karthik, T. Kim, C.W. Lee, Thermally Stable PVDF-HFP-Based Gel Polymer Electrolytes for High-Performance Lithium-Ion Batteries, Nanomaterials, 2022, vol. 12, no. 7, art. no. 1056.
- P.X. Yang, L. Liu, L.B. Li, J. Hou, Y.P. Xu, X. Ren, M.Z. An, N. Li, Gel polymer electrolyte based on polyvinylidenefluoride-co-hexafluoropropylene and ionic liquid for lithium ion battery, Electrochim. Acta, 2014, vol. 115, pp. 454–460.
- K. Luo, D. Shao, L. Yang, L. Liu, X. Chen, C. Zou, D. Wang, Z. Luo, X. Wang, Semi‐interpenetrating gel polymer electrolyte based on PVDF‐HFP for lithium ion batteries, J. Appl. Polym. Sci., 2021, vol. 138, no. 11, art. no. 49993.
- P. Yao, B. Zhu, H. Zhai, X. Liao, Y. Zhu, W. Xu, Q. Cheng, C. Jayyosi, Z. Li, J. Zhu, K. M. Myers, X. Chen, Y. Yang, PVDF/Palygorskite Nanowire Composite Electrolyte for Rechargeable Lithium Batteries with High Energy Density, Nano Lett., 2018, vol. 18, no. 10, pp. 6113–6120.
- K. Matsubara, R. Kaneuchi, N. Maekita, 13C NMR estimation of preferential solvation of lithium ions in non-aqueous mixed solvents, J. Chem. Soc. Faraday Trans., 1998, vol. 94, no. 24, pp. 3601–3605.
- K. Xu, Electrolytes and Interphases in Li-Ion Batteries and Beyond, Chem. Rev., 2014, vol. 114, no. 23, pp. 11503–11618.
- P.X. Yang, W.Y. Cui, L.B. Li, L. Liu, M. Zhong, Characterization and properties of ternary P(VdF-HFP)-LiTFSI-EMITFSI ionic liquid polymer electrolytes, Solid State Sci., 2012, vol. 14, no. 5, pp. 598–606.
- M. Madian, A. Eychmüller, L. Giebeler, Current Advances in TiO2-Based Nanostructure Electrodes for High Performance Lithium Ion Batteries, Batteries, 2018, vol. 4, no. 1, art.no. 7.
- E. Podlesnov, M.G. Nigamatdianov, A.O. Safronova, M.V. Dorogov, Lithium polymer battery with PVDF-based electrolyte doped with copper oxide nanoparticles: manufacturing technology and properties, Rev. Adv. Mater. Technol., 2021, vol. 3, no. 3, pp. 27–31.
- V. Aravindan, P. Vickraman, Lithium fluoroalkylphosphate based novel composite polymer electrolytes (NCPE) incorporated with nanosized SiO2 filler, Mater. Chem. Phys., 2009, vol. 115, no 1, pp. 251–257.
- V. Aravindan, P. Vickraman, T.P. Kumar, ZrO2 nanofiller incorporated PVC/PVdF blend-based composite polymer electrolytes (CPE) complexed with LiBOB, J. Memb. Sci., 2007, vol. 305, no. 1–2, pp. 146–151.
- R.-J. Pei, T. Song, L. Sun, Y.-F. Li, R. Yang, Stable composite electrolytes of PVDF modified by inorganic particles for solid‐state lithium batteries, J. Am. Ceram. Soc., 2022, vol. 105, no. 8, pp. 5262–5273.
- X.-X. Zeng, Y.-X. Yin, Y. Shi, X.-D. Zhang, H.-R. Yao, R. Wen, X.-W. Wu, Y.-G. Guo Lithiation-derived repellent toward lithium anode safeguard in quasi-solid batteries, Chem, 2018, vol. 4, no. 2, pp. 298–307.
- H. Zhao, J. Yan, N. Deng, W. Kang, B. Cheng, A versatile nano-TiO2 decorated gel separator with derived multi-scale nanofibers towards dendrite-blocking and polysulfide-inhibiting lithium-metal batteries, J. Energy Chem., 2021, vol. 55, pp. 190–201.
- N. Angulakhsmi, S. Thomas, J. R. Nair, R. Bongiovanni, C. Gerbaldi, A.M. Stephan, Cycling profile of innovative nanochitin-incorporated poly (ethylene oxide) based electrolytes for lithium batteries, J. Power Sources, 2013, vol. 228, pp. 294–299.
- B. Commarieu, A. Paolella, J.-C. Daigle, K. Zaghib, Toward high lithium conduction in solid polymer and polymer-ceramic batteries,” Curr. Opin. Electrochem., 2018, vol. 9, pp. 56–63.
- Y. Horowitz, M. Lifshitz, A. Greenbaum, Yu. Feldman, S. Greenbaum, A.P. Sokolov, D. Golodnitsky, Review—polymer/ceramic interface barriers: the fundamental challenge for advancing composite solid electrolytes for Li-ion batteries, J. Electrochem. Soc., 2020, vol. 167, no. 16, art. no. 160514.
- F. Ye, X. Zhang, K. Liao, Q. Lu, X. Zou, R. Ran, W. Zhou, Y. Zhong, Z. Shao, A smart lithiophilic polymer filler in gel polymer electrolyte enables stable and dendrite-free Li metal anode, J. Mater. Chem. A, 2020, vol. 8, no. 19, pp. 9733–9742.
- V.I. Volkov, O.V. Yarmolenko, A.V. Chernyak, N.A. Slesarenko, I.A. Avilova, G.R. Baymuratova, A.V. Yudina, Polymer Electrolytes for Lithium-Ion Batteries Studied by NMR Techniques, Membranes, 2022, vol. 12, no. 4, art. no. 416.
- J.Y. Han, S. Jung, Thermal stability and the effect of water on hydrogen fluoride generation in lithium-ion battery electrolytes containing LiPF6, Batteries, 2022, vol. 8, no. 7, art. no. 61.
- X.N. Pan, J. Hou, L. Liu, P.X. Yang, J.Q. Zhang, M.Z. An, N. Li, A piperidinium-based ester-functionalized ionic liquid as electrolytes in Li/LiFePO4 batteries, Ionics, 2017, vol. 23, no. 11, pp. 3151–3161.
- R. Gonçalves, D. Miranda, A.M. Almeida, M.M. Silva, J.M. Meseguer-Dueñas, J.L. Gomez Ribelles, S. Lanceros-Méndez, C.M. Costa, Solid polymer electrolytes based on lithium bis(trifluoromethanesulfonyl)imide/poly(vinylidene fluoride-co-hexafluoropropylene) for safer rechargeable lithium-ion batteries, Sustain. Mater. Technol., 2019, vol. 21, art. no. e00104.
- G.A. Giffin, The role of concentration in electrolyte solutions for non-aqueous lithium-based batteries, Nat. Commun., 2022, vol. 13, no. 1, art. no. 5250.
- Y. Wang, S. Song, C. Xu, N. Hu, J. Molenda, L. Lu, Development of solid-state electrolytes for sodium-ion battery–A short review, Nano Mater. Sci., 2019, vol. 1, no. 2, pp. 91–100.
- O.V. Yarmolenko, K.G. Khatmullina, G.Z. Tulibaeva, L.M. Bogdanova, A.F. Shestakov, Towards the mechanism of Li+ ion transfer in the net solid polymer electrolyte based on polyethylene glycol diacrylate–LiClO4, J. Solid State Electrochem., 2012, vol. 16, no. 10, pp. 3371–3381.
- D. Liu, Q. Wang, X. Ma, Q. Liu, X. Zhou, Z. Lei, Li10Sn0.95P2S11.9−xOx: A new sulfide solid electrolyte for all-solid-state batteries, J. Alloys Compd., 2022, vol. 926, art. no. 166731.
- V.E. Volkovitskiy, V.A. Spiridonov, L.V. Azina, D.I. Panov, Design and analysis of the electrical properties of a solid-state lithium-boron-phosphate electrolyte, Rev. Adv. Mater. Technol., 2021, vol. 3, no. 4, pp. 47–51.
- I.L. Shukaev, V.V. Butova, New P2 Compound with brucite-like layers: potassium lithiostannate, Inorg. Chem., 2012, vol. 51, no. 9, pp. 4931–4937.
- M.Y. Veliz-Enriquez, G. Gonzalez, H. Pfeiffer, Synthesis and CO2 capture evaluation of Li2−xKxZrO3 solid solutions and crystal structure of a new lithium–potassium zirconate phase, J. Solid State Chem., 2007, vol. 180, no. 9, pp. 2485–2492.
- M. Chordia, S. Wickerts, A. Nordelöf, R. Arvidsson, Life cycle environmental impacts of current and future battery-grade lithium supply from brine and spodumene, Resour. Conserv. Recycl., 2022, vol. 187, art. no. 106634.
- X. Fan, M. Tebyetekerwa, Y. Wu, R. R. Gaddam, X. S. Zhao, Origin of excellent charge storage properties of defective tin disulphide in magnesium/lithium-ion hybrid batteries, Nano-Micro Lett., 2022, vol. 14, no. 1, art. no. 177.
- R.D. Shannon, Revised effective ionic radii and systematic studies of interatomic distances in halides and chalcogenides, Acta Crystallogr. Sect. A, 1976, vol. 32, no. 5, pp. 751–767.
- B. Sayahpour, H. Hirsh, S. Parab, L.H.B. Nguyen, M. Zhang, Y.S. Meng, Perspective: Design of cathode materials for sustainable sodium-ion batteries, MRS Energy Sustain., 2022, vol. 9, no. 2, pp. 183–197.
- A. Bauer, J. Song, S. Vail, W. Pan, J. Barker, Y. Lu, The scale‐up and commercialization of nonaqueous na‐ion battery technologies, Adv. Energy Mater., 2018, vol. 8, no. 17, art. no. 1702869.
- A.M. Skundin, T.L. Kulova, A.B. Yaroslavtsev, Sodium-ion batteries (a review), Russ. J. Electrochem., 2018, vol. 54, no. 2, pp. 113–152.
- L. Liu, Y. Tian, A. Abdussalam, M.R.H.S. Gilani, W. Zhang, G. Xu, Hard carbons as anodes in sodium-ion batteries: sodium storage mechanism and optimization strategies, Molecules, 2022, vol. 27, no. 19, art. no. 6516.
- D.A. Stevens, J.R. Dahn, High capacity anode materials for rechargeable sodium-ion batteries, J. Electrochem. Soc., 2000, vol. 147, no. 4, art. no. 1271.
- T. Yang, T. Qian, M. Wang, X. Shen, N. Xu, Z. Sun, C. Yan, A sustainable route from biomass byproduct okara to high content nitrogen-doped carbon sheets for efficient sodium ion batteries, Adv. Mater., 2016, vol. 28, no. 3, pp. 539–545.
- R. Hao, Y. Yang, H. Wang, B. Jia, G. Ma, D. Yu, L. Guo, S. Yang, Direct chitin conversion to N-doped amorphous carbon nanofibers for high-performing full sodium-ion batteries, Nano Energy, 2018, vol. 45, pp. 220–228.
- T. Hosaka, K. Kubota, A. S. Hameed, S. Komaba, Research development on K‑ion batteries, Chem. Rev., 2020, vol. 120, pp. 6358−6466.
- X. Min, J. Xiao, M. Fang, W. Wang, Y. Zhao, Y. Liu, A. M. Abdelkader, K. Xi, R.V. Kumar, Z. Huang, Potassium-ion batteries: outlook on present and future technologies, Energy Environ. Sci., 2021, vol. 14, pp. 2186–2243.
- S. Li, H. Zhu, Y. Liu, Z. Han, L. Peng, S. Li, C. Yu, S. Cheng, J. Xie, Codoped porous carbon nanofibres as a potassium metal host for nonaqueous K-ion batteries, Nat. Commun., 2022, vol. 13, no. 1, pp. 4911.
- K. Lei, C. Wang, L. Liu, Y. Luo, C. Mu, F. Li, J. Chen, A porous network of bismuth used as the anode material for high‐energy‐density potassium‐ion batteries, Angewandte Chemie Int. Ed., 2018, vol. 57, no. 17, pp. 4687–4691.
- L. Hu, I.D. Johnson, S. Kim, G.M. Nolis, J.W. Freeland, H.D. Yoo, T.T. Fister, L. McCafferty, T.E. Ashton, J.A. Darr, J. Cabana, Tailoring the electrochemical activity of magnesium chromium oxide towards Mg batteries through control of size and crystal structure, Nanoscale, 2019, vol. 11, no. 2, pp. 639–646.
- D. Aurbach, I. Weissman, Y. Cofer, E.Levi, Nonaqueous magnesium electrochemistry and its application in secondary batteries, Chem. Rec., 2003, vol. 3, no. 1, pp. 61–73.
- F. Bella, S. De Luca, L. Fagiolari, D. Versaci, J. Amici, C. Francia, S. Bodoardo, An Overview on Anodes for Magnesium Batteries: Challenges towards a Promising Storage Solution for Renewables, Nanomaterials, 2021, vol. 11, no. 3, art. no. 810.
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