Zhang, C., Wei, Y.-L., Cao, P.-F. & Lin, M.-C. Energy storage system: current studies on batteries and power condition system. Renew. Sustain. Energy Rev. 82, 3091–3106 (2018).
Bolsen, T. Framing renewable energy. Nat. Energy 7, 1003–1004 (2022).
Larcher, D. & Tarascon, J.-M. Towards greener and more sustainable batteries for electrical energy storage. Nat. Chem. 7, 19–29 (2015).
Article CAS PubMed Google Scholar
Frondel, M., Ritter, N., Schmidt, C. M. & Vance, C. Economic impacts from the promotion of renewable energy technologies: the German experience. Energy Policy 38, 4048–4056 (2010).
Goodenough, J. B. Rechargeable batteries: challenges old and new. J. Solid State Electrochem. 16, 2019–2029 (2012).
Liang, Y. et al. A review of rechargeable batteries for portable electronic devices. InfoMat 1, 6–32 (2019).
Whittingham, M. S. Lithium batteries and cathode materials. Chem. Rev. 104, 4271 (2004).
Article CAS PubMed Google Scholar
Tarascon, J. M. & Armand, M. Issues and challenges facing rechargeable lithium batteries. Nature 414, 359 (2001).
Article CAS PubMed Google Scholar
Liu, M. et al. Aqueous rechargeable sodium ion batteries: developments and prospects. Mater. Today Energy 17, 100432 (2020).
Liang, Y., Lai, W.-H., Miao, Z. & Chou, S.-L. Nanocomposite materials for the sodium-ion battery: a review. Small 14, 1702514 (2018).
Zhang, Y., Liu, S., Ji, Y., Ma, J. & Yu, H. Emerging nonaqueous aluminum-ion batteries: challenges, status, and perspectives. Adv. Mater. 30, 1706310 (2018).
Yang, H. et al. The rechargeable aluminum battery: opportunities and challenges. Angew. Chem. Int. Ed. 58, 11978–11996 (2019).
Ma, L. et al. Realizing high zinc reversibility in rechargeable batteries. Nat. Energy 5, 743–749 (2020).
Lavine, M. S. Zinc can compete with lithium. Science 356, 392 (2017).
Aravindan, V., Gnanaraj, J., Lee, Y.-S. & Madhavi, S. Insertion-type electrodes for nonaqueous Li-ion capacitors. Chem. Rev. 114, 11619–11635 (2014).
Article CAS PubMed Google Scholar
Manthiram, A. A reflection on lithium-ion battery cathode chemistry. Nat. Commun. 11, 1550 (2020).
Article CAS PubMed PubMed Central Google Scholar
Liang, G., Mo, F., Ji, X. & Zhi, C. Non-metallic charge carriers for aqueous batteries. Nat. Rev. Mater. 6, 109–123 (2021).
Wang, H. et al. Recent advances in conversion-type electrode materials for post lithium-ion batteries. ACS Mater. Lett. 3, 956–977 (2021).
Yu, S.-H., Feng, X., Zhang, N., Seok, J. & Abruña, H. D. Understanding conversion-type electrodes for lithium rechargeable batteries. Acc. Chem. Res. 51, 273–281 (2018).
Article CAS PubMed Google Scholar
Boyjoo, Y. et al. Engineering nanoreactors for metal–chalcogen batteries. Energy Environ. Sci. 14, 540–575 (2021).
Wang, Y.-H. et al. Chalcogen cathode and its conversion electrochemistry in rechargeable Li/Na batteries. Sci. China Chem. 63, 1402–1415 (2020).
Zhou, G., Chen, H. & Cui, Y. Formulating energy density for designing practical lithium–sulfur batteries. Nat. Energy 7, 312–319 (2022).
Yu, X. & Manthiram, A. A progress report on metal–sulfur batteries. Adv. Funct. Mater. 30, 2004084 (2020).
Zhang, L. High-performance metal–chalcogen batteries. Batteries 9, 35 (2023).
Mu, P. et al. Crucial challenges and recent optimization progress of metal–sulfur battery electrolytes. Energy Fuels 35, 1966–1988 (2021).
Shi, F. et al. Advances in understanding and regulation of sulfur conversion processes in metal–sulfur batteries. J. Mater. Chem. A 10, 19412–19443 (2022).
Samsonov, G. V. Handbook of the Physicochemical Properties of the Elements (Springer, 2012).
Sudworth, J. & Tiley, A. Sodium Sulphur Battery (Springer, 1985).
Eftekhari, A. The rise of lithium–selenium batteries. Sustain. Energy Fuels 1, 14–29 (2017).
Mamantov, G. & Hvistendahl, J. Rechargeable high voltage low temperature molten, salt cell Na/β″-alumina/SCl3+ in AlCl3–NaCl. J. Electroanal. Chem. Interfacial Electrochem. 168, 451–466 (1984).
Peramunage, D. & Licht, S. A solid sulfur cathode for aqueous batteries. Science 261, 1029–1032 (1993).
Article CAS PubMed Google Scholar
Liu, Y. et al. Lithium–tellurium batteries based on tellurium/porous carbon composite. J. Mater. Chem. A 2, 12201–12207 (2014).
Wei, X. et al. An aqueous redox flow battery based on neutral alkali metal ferri/ferrocyanide and polysulfide electrolytes. J. Electrochem. Soc. 163, A5150 (2015).
Huang, X. et al. Rechargeable aluminum–selenium batteries with high capacity. Chem. Sci. 9, 5178–5182 (2018).
Article CAS PubMed PubMed Central Google Scholar
Zhang, X. F. et al. Rechargeable ultrahigh-capacity tellurium–aluminum batteries. Energy Environ. Sci. 12, 1918–1927 (2019).
Li, H. et al. Reversible electrochemical oxidation of sulfur in ionic liquid for high-voltage Al−S batteries. Nat. Commun. 12, 5714 (2021).
Article CAS PubMed PubMed Central Google Scholar
Chen, Z. et al. Tellurium with reversible six-electron transfer chemistry for high-performance zinc batteries. J. Am. Chem. Soc. 145, 20521–20529 (2023).
Article CAS PubMed Google Scholar
Chen, Z. et al. Zinc/selenium conversion battery: a system highly compatible with both organic and aqueous electrolytes. Energy Environ. Sci. 14, 2441–2450 (2021).
Si, J. et al. Deep multiphase conversion derived from NiTe2 nanosheets with preferred kinetics for highly reversible mild aqueous zinc–tellurium batteries. Adv. Energy Mater. 14, 2303982 (2024).
Li, H. et al. Superhalide-anion-motivator reforming-enabled bipolar manipulation toward longevous energy-type Zn||chalcogen batteries. Nano Lett. 24, 6465–6473 (2024).
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