Page 173 - Read Online
P. 173

Shipitsyn et al. Energy Mater 2023;3:300038  https://dx.doi.org/10.20517/energymater.2023.22  Page 35 of 37

               76.       Yu Z, Yu W, Chen Y, et al. Tuning fluorination of linear carbonate for lithium-ion batteries. J Electrochem Soc 2022;169:040555.
                    DOI
               77.       Lee H, Choi S, Choi S, et al. SEI layer-forming additives for LiNi Mn O /graphite 5V Li-ion batteries. Electrochem Commun
                                                                0.5
                                                                    1.5
                                                                       4
                    2007;9:801-6.  DOI
               78.       Leggesse EG, Jiang JC. Theoretical study of the reductive decomposition of 1,3-propane sultone: SEI forming additive in lithium-
                    ion batteries. RSC Adv 2012;2:5439-46.  DOI
               79.       Liu Q, Xu R, Mu D, et al. Progress in electrolyte and interface of hard carbon and graphite anode for sodium-ion battery. Carbon
                    Energy 2022;4:458-79.  DOI
               80.       Xia L, Xia Y, Liu Z. A novel fluorocyclophosphazene as bifunctional additive for safer lithium-ion batteries. J Power Sources
                    2015;278:190-6.  DOI
               81.       Ji W, Huang H, Zhang X, et al. A redox-active organic salt for safer Na-ion batteries. Nano Energy 2020;72:104705.  DOI  PubMed
                    PMC
               82.       Zheng X, Fu H, Hu C, et al. Toward a stable sodium metal anode in carbonate electrolyte: a compact, inorganic alloy interface. J
                    Phys Chem Lett 2019;10:707-14.  DOI
               83.       Wang H, Wang C, Matios E, Li W. Facile stabilization of the sodium metal anode with additives: unexpected key role of sodium
                    polysulfide and adverse effect of sodium nitrate. Angew Chem 2018;130:7860-3.  DOI
               84.       Fang W, Jiang H, Zheng Y, et al. A bilayer interface formed in high concentration electrolyte with SbF  additive for long-cycle and
                                                                                       3
                    high-rate sodium metal battery. J Power Sources 2020;455:227956.  DOI
               85.       Wang S, Cai W, Sun Z, et al. Stable cycling of Na metal anodes in a carbonate electrolyte. Chem Commun 2019;55:14375-8.  DOI
               86.       Jiang Z, Zeng Z, Yang C, et al. Nitrofullerene, a C -based bifunctional additive with smoothing and protecting effects for stable
                                                      60
                    lithium metal anode. Nano Lett 2019;19:8780-6.  DOI  PubMed
               87.       Li P, Jiang Z, Huang X, Lu X, Xie J, Cheng S. Nitrofullerene as an electrolyte-compatible additive for high-performance sodium
                    metal batteries. Nano Energy 2021;89:106396.  DOI
               88.       Li P, Huang X, Jiang Z, et al. High-rate sodium metal batteries enabled by trifluormethylfullerene additive. Nano Res 2022;15:7172-
                    9.  DOI
               89.       Jiang R, Hong L, Liu Y, et al. An acetamide additive stabilizing ultra-low concentration electrolyte for long-cycling and high-rate
                    sodium metal battery. Energy Stor Mater 2021;42:370-9.  DOI
               90.       Kreissl JJA, Langsdorf D, Tkachenko BA, Schreiner PR, Janek J, Schröder D. Incorporating diamondoids as electrolyte additive in
                    the sodium metal anode to mitigate dendrite growth. ChemSusChem 2020;13:2661-70.  DOI  PubMed  PMC
               91.       Zhu M, Wang G, Liu X, et al. Dendrite-free sodium metal anodes enabled by a sodium benzenedithiolate-rich protection layer. Angew
                    Chem 2020;132:6658-62.  DOI
               92.       Zhu M, Zhang Y, Yu F, et al. Stable sodium metal anode enabled by an interface protection layer rich in organic sulfide salt. Nano
                    Lett 2021;21:619-27.  DOI
               93.       Zhu M, Li L, Zhang Y, et al. An in-situ formed stable interface layer for high-performance sodium metal anode in a non-flammable
                    electrolyte. Energy Storage Materials 2021;42:145-53.  DOI
               94.       Rodriguez R, Loeffler KE, Nathan SS, et al. In situ optical imaging of sodium electrodeposition: effects of fluoroethylene carbonate.
                    ACS Energy Lett 2017;2:2051-7.  DOI
               95.       Shiraz MHA, Zhao P, Liu J. High-performance sodium-selenium batteries enabled by microporous carbon/selenium cathode and
                    fluoroethylene carbonate electrolyte additive. J Power Sources 2020;453:227855.  DOI
               96.       Han M, Zhu C, Ma T, Pan Z, Tao Z, Chen J. In situ atomic force microscopy study of nano-micro sodium deposition in ester-based
                    electrolytes. Chem Commun 2018;54:2381-4.  DOI  PubMed
               97.       Wang Q, Zhao C, Lv X, et al. Stabilizing a sodium-metal battery with the synergy effects of a sodiophilic matrix and fluorine-rich
                    interface. J Mater Chem A 2019;7:24857-67.  DOI
               98.       Pan K, Lu H, Zhong F, Ai X, Yang H, Cao Y. Understanding the electrochemical compatibility and reaction mechanism on Na metal
                    and hard carbon anodes of PC-based electrolytes for sodium-ion batteries. ACS Appl Mater Interfaces 2018;10:39651-60.  DOI
                    PubMed
               99.       Fan JJ, Dai P, Shi CG, et al. Synergistic dual-additive electrolyte for interphase modification to boost cyclability of layered cathode
                    for sodium ion batteries. Adv Funct Mater 2021;31:2010500.  DOI
               100.      Feng J, Ci L, Xiong S. Biphenyl as overcharge protection additive for nonaqueous sodium batteries. RSC Adv 2015;5:96649-52.  DOI
               101.      Baggetto L, Marszewski M, Górka J, Jaroniec M, Veith GM. AlSb thin films as negative electrodes for Li-ion and Na-ion batteries. J
                    Power Sources 2013;243:699-705.  DOI
               102.      Baggetto L, Keum JK, Browning JF, Veith GM. Germanium as negative electrode material for sodium-ion batteries. Electrochem
                    Commun 2013;34:41-4.  DOI
               103.      Baggetto L, Allcorn E, Unocic RR, Manthiram A, Veith GM. Mo Sb  as a very fast anode material for lithium-ion and sodium-ion
                                                                 7
                                                               3
                    batteries. J Mater Chem A 2013;1:11163-9.  DOI
               104.      Darwiche A, Marino C, Sougrati MT, Fraisse B, Stievano L, Monconduit L. Better cycling performances of bulk Sb in Na-ion
                    batteries compared to Li-ion systems: an unexpected electrochemical mechanism. J Am Chem Soc 2012;134:20805-11.  DOI
                    PubMed
               105.      Ma W, Yin K, Gao H, Niu J, Peng Z, Zhang Z. Alloying boosting superior sodium storage performance in nanoporous tin-antimony
   168   169   170   171   172   173   174   175   176   177   178