3-Trimethylsilyl-2-oxazolidinone, as a multifunctional additive to stabilize FEC-containing electrolyte for sodium metal batteries

Electrochimica Acta - Tập 425 - Trang 140746 - 2022
Yongchao Liu1, Rui Jiang1, Hongfa Xiang1, Zhimei Huang1, Yan Yu2,3
1School of Materials Science and Engineering, Anhui Provincial Key Laboratory of Advanced Functional Materials and Devices, Hefei University of Technology, Hefei, Anhui 230009, PR China
2Hefei National Research Center for Physical Sciences at the Microscale, Department of Materials Science and Engineering, CAS Key Laboratory of Materials for Energy Conversion, University of Science and Technology of China, Hefei, Anhui 230026, China
3National National Synchrotron Radiation Laboratory, Hefei, Anhui 230026, China

Tài liệu tham khảo

Zhao, 2017, Novel methods for sodium-ion battery materials, Small Method, 1, 1600063, 10.1002/smtd.201600063 2016, Recent advances in titanium-based electrode materials for stationary sodium-ion batteries, Energy Environ. Sci., 2927 Wang, 2018, Dendrite-free Na metal plating/stripping onto 3D porous Cu hosts, Energy Storage Mater., 15, 274, 10.1016/j.ensm.2018.05.016 Hwang, 2017, Sodium-ion batteries: present and future, Chem. Soc. Rev., 46, 3529, 10.1039/C6CS00776G Zhao, 2018, Recent developments and insights into the understanding of Na metal anodes for Na-metal batteries, Energy Environ. Sci., 11, 2673, 10.1039/C8EE01373J Yue, 2021, Low-barrier, Dendrite-free, and stable Na plating/stripping enabled by Gradient sodiophilic carbon skeleton, Adv. Energy Mater., 11, 2102497, 10.1002/aenm.202102497 Shi, 2021, Red phosphorous-derived protective layers with high ionic conductivity and mechanical strength on Dendrite-free sodium and potassium metal anodes, Adv. Energy Mater., 11, 2003381, 10.1002/aenm.202003381 Soni, 2022, Guiding uniform sodium deposition through host modification for sodium metal batteries, Batter. Supercap., 5, 10.1002/batt.202100207 Hubble, 2022, Liquid electrolyte development for low-temperature lithium-ion batteries, Energy Environ. Sci., 15, 550, 10.1039/D1EE01789F Vineeth, 2022, Implications of Na-ion solvation on Na anode–electrolyte interphase, Trends Chem., 4, 48, 10.1016/j.trechm.2021.11.002 Eng, 2021, Room-temperature sodium–sulfur batteries and beyond: realizing practical high energy systems through anode, cathode, and electrolyte engineering, Adv. Energy Mater., 11, 10.1002/aenm.202003493 Zheng, 2021, Critical effects of electrolyte recipes for Li and Na metal batteries, Chem, 7, 2312, 10.1016/j.chempr.2021.02.025 Chen, 2020, Ion-solvent chemistry-inspired cation-additive strategy to stabilize electrolytes for sodium-metal batteries, Chem, 6, 2242, 10.1016/j.chempr.2020.06.036 Lv, 2022, Solvation structure and solid electrolyte interface engineering for excellent Na+ storage performances of hard carbon with the ether-based electrolytes, Chem. Eng. J., 430, 1804822, 10.1016/j.cej.2021.133143 Song, 2020, Controlling surface phase transition and chemical reactivity of O3-layered metal oxide cathodes for high-performance Na-ion batteries, ACS Energy Lett., 5, 1718, 10.1021/acsenergylett.0c00700 Jiang, 2021, An acetamide additive stabilizing ultra-low concentration electrolyte for long-cycling and high-rate sodium metal battery, Energy Storage Mater., 42, 370, 10.1016/j.ensm.2021.07.047 Han, 2019, Scavenging materials to stabilize LiPF6 -containing carbonate-based electrolytes for Li-ion batteries, Adv. Mater., 31, 1804822, 10.1002/adma.201804822 Liu, 2021, Hydrolysis of LiPF6-containing electrolyte at high voltage, ACS Energy Lett., 6, 2096, 10.1021/acsenergylett.1c00707 Xu, 2021, Research progress of fluorine-containing electrolyte additives for lithium ion batteries, J. Power Source Adv., 7, 100043, 10.1016/j.powera.2020.100043 Michan, 2016, Fluoroethylene carbonate and vinylene carbonate reduction: understanding lithium-ion battery electrolyte additives and solid electrolyte interphase formation, Chem. Mater., 28, 8149, 10.1021/acs.chemmater.6b02282 Hou, 2019, The influence of FEC on the solvation structure and reduction reaction of LiPF6/EC electrolytes and its implication for solid electrolyte interphase formation, Nano Energy, 64, 10.1016/j.nanoen.2019.103881 Haregewoin, 2016, Electrolyte additives for lithium ion battery electrodes: progress and perspectives, Energy Environ. Sci., 9, 1955, 10.1039/C6EE00123H Rodriguez, 2017, In situ optical imaging of sodium electrodeposition: effects of fluoroethylene carbonate, ACS Energy Lett., 2, 2051, 10.1021/acsenergylett.7b00500 Han, 2021, Probing the Na metal solid electrolyte interphase via cryo-transmission electron microscopy, Nat. Commun., 12, 3066, 10.1038/s41467-021-23368-6 Zheng, 2022, Deciphering the role of fluoroethylene carbonate towards highly reversible sodium metal anodes, Research (Wash D C), 2022, 9754612 Xu, 2019, Unraveling and mitigating the storage instability of fluoroethylene carbonate-containing LiPF6 electrolytes to stabilize lithium metal anodes for high-temperature rechargeable batteries, ACS Appl. Energy Mater., 2, 4925, 10.1021/acsaem.9b00607 Markevich, 2017, Fluoroethylene carbonate as an important component for the formation of an effective solid electrolyte interphase on anodes and cathodes for advanced Li-ion batteries, ACS Energy Lett., 2, 1337, 10.1021/acsenergylett.7b00163 Grimme, 2013, Effects of London dispersion correction in density functional theory on the structures of organic molecules in the gas phase, Phys. Chem. Chem. Phys., 15, 16031, 10.1039/c3cp52293h Xing, 2012, Oxidation induced decomposition of ethylene carbonate from DFT calculations – importance of explicitly treating surrounding solvent, Phys. Chem. Chem. Phys., 14, 12838, 10.1039/c2cp41103b Kim, 2020, Cyclic aminosilane-based additive ensuring stable electrode–electrolyte interfaces in Li-ion batteries, Adv. Energy Mater., 10, 2000012, 10.1002/aenm.202000012 Park, 2020, Unanticipated mechanism of the trimethylsilyl motif in electrolyte additives on nickel-rich cathodes in Lithium-ion batteries, ACS Appl. Mater. Interface, 12, 43694, 10.1021/acsami.0c11996 Lan, 2019, Stabilizing a high-voltage lithium-rich layered oxide cathode with a novel electrolyte additive, ACS Appl. Mater. Interface, 11, 28841, 10.1021/acsami.9b07441 Liu, 2021, Multifunctional electrolyte additive stabilizes electrode-electrolyte interface layers for high-voltage lithium metal batteries, ACS Appl. Mater. Interfaces, 13, 57430, 10.1021/acsami.1c18783 Han, 2019, Scavenging materials: scavenging materials to stabilize LiPF6-containing carbonate-based electrolytes for Li-ion batteries (Adv. Mater. 20/2019), Adv. Mater., 31, 1970148, 10.1002/adma.201970148 Aupperle, 2020, Realizing a high-performance LiNi0.6Mn0.2Co0.2O2/silicon–graphite full lithium ion battery cell via a designer electrolyte additive, J. Mater. Chem. A, 8, 19573, 10.1039/D0TA05827K Deng, 2017, Investigating the influence of high temperatures on the cycling stability of a LiNi0.6Co0.2Mn0.2O2 cathode using an innovative electrolyte additive, Electrochim. Acta, 236, 61, 10.1016/j.electacta.2017.03.155 Wang, 2019, Citraconic anhydride as an electrolyte additive to improve the high temperature performance of LiNi0·6Co0·2Mn0·2O2 /graphite pouch batteries, J. Alloys Compd., 805, 757, 10.1016/j.jallcom.2019.07.140 Han, 2020, An electrolyte additive capable of scavenging HF and PF5 enables fast charging of lithium-ion batteries in LiPF6-based electrolytes, J. Power Source, 446, 227366, 10.1016/j.jpowsour.2019.227366 Deng, 2020, Improving cyclic stability of LiNi0.6Co0.2Mn0.2O2-SiOx/graphite full cell using tris(trimethylsilyl)phosphite and fluoroethylene carbonate as combinative electrolyte additive, Ionics (Kiel), 26, 2247, 10.1007/s11581-019-03396-5 Zheng, 2020, Construction of a stable LiNi0.8Co0.1Mn0.1O2 (NCM811) cathode interface by a multifunctional organosilicon electrolyte additive, ACS Appl. Energy Mater., 3, 2837, 10.1021/acsaem.9b02486 Qi, 2011, Conformational effects, molecular orbitals, and reaction activities of bis(phthalocyaninato) lanthanum double-deckers: density functional theory calculations, PCCP, 13, 13277, 10.1039/c1cp20056a Zheng, 2020, Lithium difluorophosphate-based dual-salt low concentration electrolytes for lithium metal batteries, Adv. Energy Mater., 10 Adams, 2018, Accurate determination of coulombic efficiency for lithium metal anodes and lithium metal batteries, Adv. Energy Mater., 8, 1702097, 10.1002/aenm.201702097 Mosallanejad, 2021, Cycling degradation and safety issues in sodium-ion batteries: promises of electrolyte additives, J. Electroanal. Chem., 895, 115505, 10.1016/j.jelechem.2021.115505 Xu, 2019, Stable Na metal anode enabled by a reinforced multistructural SEI layer, Adv. Funct. Mater., 29, 1901924, 10.1002/adfm.201901924 Kim, 2014, High-performance FeSb–TiC–C nanocomposite anodes for sodium-ion batteries, PCCP, 16, 12884, 10.1039/c4cp01240b Seh, 2015, A highly reversible room-temperature sodium metal anode, ACS Cent. Sci., 1, 449, 10.1021/acscentsci.5b00328 Liu, 2021, Recent development of Na metal anodes: interphase engineering chemistries determine the electrochemical performance, Chem. Eng. J., 409, 127943, 10.1016/j.cej.2020.127943 Basile, 2018, Ionic liquids and organic ionic plastic crystals: advanced electrolytes for safer high performance sodium energy storage technologies, Adv. Energy Mater., 8, 1703491, 10.1002/aenm.201703491 Kim, 2020, Cyclic aminosilane-based additive ensuring stable electrode–electrolyte interfaces in Li-ion batteries, Adv. Energy Mater., 10, 2000012, 10.1002/aenm.202000012 Li, 2020, Stabilized high-voltage cathodes via an F-rich and Si-containing electrolyte additive, ACS Appl. Mater. Interface, 12, 28169, 10.1021/acsami.0c05479