Page 175 - Read Online
P. 175
Shipitsyn et al. Energy Mater 2023;3:300038 https://dx.doi.org/10.20517/energymater.2023.22 Page 37 of 37
135. Song X, Meng T, Deng Y, et al. The effects of the functional electrolyte additive on the cathode material Na 0.76 Ni Fe Mn O for
0.4
0.3
0.3
2
sodium-ion batteries. Electrochimica Acta 2018;281:370-7. DOI
136. Tong B, Song Z, Wan H, et al. Sulfur-containing compounds as electrolyte additives for lithium-ion batteries. InfoMat 2021;3:1364-
92. DOI
137. Xie D, Zhang M, Wu Y, Xiang L, Tang Y. A flexible dual-ion battery based on sodium-ion quasi-solid-state electrolyte with long
cycling life. Adv Funct Mater 2020;30:1906770. DOI
138. Welch J, Mogensen R, van Ekeren W, Eriksson H, Naylor AJ, Younesi R. Optimization of sodium bis(oxalato)borate (NaBOB) in
triethyl phosphate (TEP) by electrolyte additives. J Electrochem Soc 2022;169:120523. DOI
139. Nimkar A, Shpigel N, Malchik F, et al. Unraveling the role of fluorinated alkyl carbonate additives in improving cathode
performance in sodium-ion batteries. ACS Appl Mater Interfaces 2021;13:46478-87. DOI
140. Zuo W, Qiu J, Liu X, et al. The stability of P2-layered sodium transition metal oxides in ambient atmospheres. Nat Commun
2020;11:3544. DOI PubMed PMC
141. Chen L, Kishore B, Song T, Walker M, Dancer C, Kendrick E. Improved lifetime of Na-ion batteries with a water-scavenging
electrolyte additive. Front Energy Res 2022;10:925430. DOI
142. Yu Y, Che H, Yang X, Deng Y, Li L, Ma ZF. Non-flammable organic electrolyte for sodium-ion batteries. Electrochem
Commun 2020;110:106635. DOI
143. Hueso KB, Armand M, Rojo T. High temperature sodium batteries: status, challenges and future trends. Energy Environ Sci
2013;6:734-49. DOI
144. Feng J, Zhang Z, Li L, Yang J, Xiong S, Qian Y. Ether-based nonflammable electrolyte for room temperature sodium battery. J
Power Sources 2015;284:222-6. DOI
145. Zeng G, Liu Y, Gu C, et al. A nonflammable fluorinated carbonate electrolyte for sodium-ion batteries. Acta Phys-Chim Sin
2020;36:1905006-0. DOI
146. Jia H, Yang Z, Xu Y, et al. Is nonflammability of electrolyte overrated in the overall safety performance of lithium ion batteries?
Advanced Energy Materials 2023;13:2203144. DOI
147. Ma L, Xia J, Dahn JR. Ternary electrolyte additive mixtures for Li-ion cells that promote long lifetime and less reactivity with
charged electrodes at elevated temperatures. J Electrochem Soc 2015;162:A1170-4. DOI
148. Ma L, Xia J, Xia X, Dahn JR. The impact of vinylene carbonate, fluoroethylene carbonate and vinyl ethylene carbonate electrolyte
additives on electrode/electrolyte reactivity studied using accelerating rate calorimetry. J Electrochem Soc 2014;161:A1495-8. DOI
149. Xiong DJ, Petibon R, Nie M, Ma L, Xia J, Dahn JR. Interactions between positive and negative electrodes in Li-ion cells operated at
high temperature and high voltage. J Electrochem Soc 2016;163:A546-51. DOI
150. Petibon R, Rotermund L, Nelson KJ, Gozdz AS, Xia J, Dahn JR. Study of electrolyte components in Li ion cells using liquid-liquid
extraction and gas chromatography coupled with mass spectrometry. J Electrochem Soc 2014;161:A1167-72. DOI
151. Petibon R, Chevrier VL, Aiken CP, et al. Studies of the capacity fade mechanisms of LiCoO /Si-alloy: graphite cells. J Electrochem
2
Soc 2016;163:A1146-56. DOI

