Gschwind, F., Rodriguez-Garcia, G., Sandbeck, D. J. S., Gross, A., Wiel, M., Fichtner, M., Hörmann, N. (2016). Fluoride ion batteries: theoretical performance, safety, toxicity, and a combinatorial screening of new electrodes. J. Fluor. Chem., 182, 76–90. https://doi.org/10.1016/j.jfluchem.2015.12.002
Xiao, A., Galatolo, G., Pasta, M. (2021). The case for fluoride-ion batteries. Joule, 5, 2823–2844. https://doi.org/10.1016/j.joule.2021.09.016
Nowroozi, M. A., Mohammad, I., Molaiyan, P., Wissel, K., Reddy, A. M., Clemens, O. (2021). Fluoride ion batteries – past, present, and future. J. Mater. Chem., 9, 5980–6012. https://doi.org/10.1039/D0TA11656D
Patro, L. N., Hariharan, K. (2013). Fast fluoride ion conducting materials in solid state ionics: An overview. Solid State Ionics, 239, 41–49. https://doi.org/10.1016/j.ssi.2013.03.009
Tingting, L., Na, P., Xikun, Z., Runtian, Z., Maoting, X., Jundong, Z., Haoxiang, Y., Liyuan, Z., Jie, S. (2021). Insight into anion storage batteries: Materials, properties and challenges. Energy Storage Materials, 42, 42–67. https://doi.org/10.1016/j.ensm.2021.07.011
Mohammad, I., Chable, J., Witter, R., Fichtner, M., Reddy, M. A. (2018). Synthesis of Fast Fluoride-Ion-Conductive Fluorite-Type Ba1−xSbxF2+x (0.1 ≤ x ≤ 0.4): A Potential Solid Electrolyte for Fluoride-Ion Batteries. ACS Appl. Mater. Interfaces, 10(20), 17249–17256. https://doi.org/10.1021/acsami.8b04108
Zhang, L., Reddy, M. A., Fichtner, M. (2015). Development of tysonite-type fluoride conducting thin film electrolytes for fluoride ion batteries. Solid State Ionics, 272, 39–44. https://doi.org/10.1016/j.ssi.2014.12.010
Mori, K., Morita, Y., Saito, T., Kamiyama, T., Otomo, T., Abe, T., Fukunaga, T. (2020). Structural and Electrochemical Properties of Tysonite Ce0.95A0.05F2.95 (A = Mg, Ca, Sr, and Ba): Fast-Fluoride-Ion-Conducting Solid Electrolytes. J. Phys. Chem., 124(34), 18452–18461. https://doi.org/10.1021/acs.jpcc.0c05217
Qianlong, J., Melnikova, N. A., Glumov, O. V., Trefilov, I. O., Eliseeva, S. N., Murin, I. V. (2023). Mechanochemical synthesis, microstructure and electrochemical properties of solid electrolytes with stabilized fluorite-type structure in the PbF2-SrF2-KF system for solid-state fluoride-ion batteries. Ceramics International, 49(11), 16901–16908. https://doi.org/10.1016/j.ceramint.2023.02.051
Ahmad, M. M., Yamane, Y., Yamada, K. (2013). The ionic conductivity and dielectric properties of Ba1-xSnxF2 solid solutions prepared by mechanochemical milling. Materials Science and Engineering B, 178, 965–970. https://doi.org/10.1016/j.mseb.2013.05.011
Molaiyan, P., Witter, R. (2019). Crystal phase and surface defect driven synthesis of Pb1−xSnxF2 solid solution electrolyte for fluoride ion batteries. Journal of Electroanalytical Chemistry, 845, 154–159. https://doi.org/10.1016/j.jelechem.2019.04.063
Pogorenko, Yu. V, Nahornyi, A. A., Pshenichnyi, R. M., Omelchuk, A. O. (2019). Synthesis and electrical conductivity of solid solutions of the RbF–PbF2–SnF2 system. Ukrainian Chemistry Journal, 85(7), 60-68. https://doi.org/10.33609/0041-6045.85.5.2019.60-68
Callanan, J. E., Wesrum, R. S., Wesrum, E. F., Weirs, R. D. (1989). The Thermodynamics of the Divalent Metal Fluorides. Ill. Heat Capacity of the Fast Ion Conductor SrSnF4, from 6 to 344 K. Journal of Solid State Chemistry, 81, 51–57. https://doi.org/10.1016/0022-4596(89)90200-4
Katapalli, R. A., Yenduri, B. R., Ramesh, K. K., Laxmi, N. P. (2023). Mechanochemical Synthesis and Fluoride Ion Conductivity Studies in SrSnF4 Polymorphs. J. Phys. Chem. C., 127(16), 7816–7822. https://doi.org/10.1021/acs.jpcc.3c00056
Hull, S. (2004). Superionics: crystal structures and conduction. Rep. Prog. Phys., 67, 1233–1314. https://doi.org/10.1088/0034-4885/67/7/R05
Lei, L., Li, Y., Dingsheng, S., Kaili, L., Changfei, Z., Zhigao, L., Xianyou, W. (2020). Nd3+ doped BaSnF4 solid electrolyte for advanced room-temperature solid-state fluoride ion batteries. Ceramics International, 46(12), 20521–20528. https://doi.org/10.1016/j.ceramint.2020.05.161
Nahornyi, A. A., Voloshanovska, Yu. V., Omelchuk, A. O. (2022). Electrical conductivity of solid fluoride phases composition BaxPb0.86‐xSn1.14F4. Ukrainian Chemistry Journal, 88(11), 39–54. https://doi.org/10.33609/2708-129X.88.11.2022.39-54
Lei, L., Li, Y., Min, L., Xiaolong, L., Dingsheng, S., Kaili, L., Xianyou, W., Zhigao, L. (2020). SnF2-based fluoride ion electrolytes MSnF4 (M = Ba, Pb) for the application of room temperature solid-state fluoride ion batteries. Journal of Alloys and Compounds, 819, 152983. https://doi.org/10.1016/j.jallcom.2019.152983
Mohammad, I., Witter, R., Fichtner, M., Reddy, M. A. (2019). Introducing Interlayer Electrolytes: Toward Room-Temperature High-Potential Solid-State Rechargeable Fluoride Ion Batteries. ACS Appl. Energy Mater., 2(2), 1553–1562. https://doi.org/10.1021/acsaem.8b02166
Mercadier, B., Coles, S. W., Duttine, M., Legein, C., Body, M., Borkiewicz, O. J., Lebedev, O., Morgan, B. J., Masquelier, C., Dambournet, D. (2023). Dynamic Lone Pairs and Fluoride-Ion Disorder in Cubic-BaSnF4. J. Am. Chem. Soc., 145(43), 23739–23754. https://doi.org/10.1021/jacs.3c08232
Qiaoju, N.,Yaowei, H., Lin, Ch., Yudong, F., Gang, W., Ming, Z., Zhongrong, S. (2024). Effect of moisture on the phase transition of β-PbSnF4 at ambient temperature as the fast fluoride ion conductor. Solid State Ionics., 405, 116454. https://doi.org/10.1016/j.ssi.2024.116454
Shannon, R. D. (1976). Revised Effective Ionic Radii and Systematic Studies of Interatomie Distances in Halides and Chaleogenides. Acta Cryst., B25, 925–945. https://doi.org/10.1107/S0567739476001551
Data from All Phase Diagrams http://www.crct.polymtl.ca/fact/documentation/FS_All_PDs.htm
Crystal Impact. Software for Scientists. Match, Phase Analysis using Powder Diffraction http://www.crystalimpact.de/match/
Petricek, V., Palatinus, L., Plasil, J., Dusek, M. (2023). Jana2020 - a new version of the crystallographic computing system Jana. Z. Kristallogr., 238(7-8), 271–282. https://doi.org/10.1515/zkri-2023-0005
Donaldson, J. D., Senior, B. J. (1967). Fluorostannates(II): the non-transition-metal(II) derivatives of the complex tin(II) fluoride ions. Chem. Soc. A, 1821–1825.
Irvine, J. T. S., Sinclair, D. C., West, A. R. (1990). Electroceramics: Characterization by impedance spectroscopy. Adv. Mater., 2, 132−138. https://doi.org/10.1002/adma.19900020304
Almond, D. P., West, A. R. (1983). Mobile ion concentrations in solid electrolytes from an analysis of a.c. conductivity. Solid State Ionics, 9−10, 277−282. https://doi.org/10.1016/0167-2738(83)90247-3
Pohorenko, Yu. V., Pshenychnyi, R. M., Omelchuk, A. O., Trachevskii, V. V. (2019). Conductivity of solid solutions of heterovalent substitution Pb1-xLnxSnF4+x (Ln=Y, La, Ce, Nd, Sm, Gd) with β-PbSnF4 structure. Solid State Ionics, 338, 80–86. https://doi.org/10.1016/j.ssi.2019.05.001
Pogorenko, Yu. V., Pshenychnyi, R. M., Omelchuk, A. O., Lutsyk, V. I. (2017). Transport Properties of Aliovalent Substitution Solid Solutions of the System (1-x)PbF2-xYF3-SnF2. IOP Conferense Series: Materials Science and Engineering, 175, 1–6. doi:10.1088/1757-899X/175/1/012039 =
Kazuhiro Mori, Shuki Torii, Kenji Iwase, Takeshi Abe, Toshiharu Fukunaga (2023). Effects of Mixed Phases on Electrical Conductivities for (CeF3)1–m(CaF2)m Fast-Fluoride-Ion-Conducting Solid Electrolytes. J. Phys. Chem., 127, 59−68. https://doi.org/10.1021/acs.jpcc.2c06732
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