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Temperature Dependence of Hard Carbon Sodium Half-Cells

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Temperature Dependence of Hard Carbon Sodium Half-Cells ( temperature-dependence-hard-carbon-sodium-half-cells )

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Batteries 2022, 8, 108 16 of 16 29. Mei, J.; Liao, T.; Sun, Z. Two-Dimensional Metal Oxide Nanosheets for Rechargeable Batteries. J. Energy Chem. 2018, 27, 117–127. [CrossRef] 30. Gao, Y.; Qiu, X.; Wang, X.; Chen, X.; Gu, A.; Yu, Z. Nitrogen-Doped Porous Carbon Microspheres for High-Rate Anode Material in Lithium-Ion Batteries. Nanotechnology 2020, 31, 155702. [CrossRef] 31. Atkins, P.W.; de Paula, J. Motion in Liquids. In Atkins’ Physical Chemistry, 10th ed.; Oxford University Press: Oxford, UK, 2014; p. 799. 32. Reichstädter, L.; Fischerová, E.; Fischer, O. Conductance of Lithium and Sodium Perchlorates and Tetraphenylborates in 2-Butanone from −35 to 25 ◦C. J. Solut. Chem. 1999, 28, 35–60. [CrossRef] 33. Bhide, A.; Hofmann, J.; Katharina Dürr, A.; Janek, J.; Adelhelm, P. Electrochemical Stability of Non-Aqueous Electrolytes for Sodium-Ion Batteries and Their Compatibility with Na0.7CoO2. Phys. Chem. Chem. Phys. 2014, 16, 1987–1998. [CrossRef] [PubMed] 34. Bai, Y.; Liu, Y.; Li, Y.; Ling, L.; Wu, F.; Wu, C. Mille-Feuille Shaped Hard Carbons Derived from Polyvinylpyrrolidone: Via Environmentally Friendly Electrostatic Spinning for Sodium Ion Battery Anodes. RSC Adv. 2017, 7, 5519–5527. [CrossRef] 35. Pletcher, D. AC Impedance. In A first Course in Electrode Processes, 2nd ed.; Royal Society of Chemistry: Cambridge, UK, 2009; pp. 211–214. 36. Bommier, C.; Surta, T.W.; Dolgos, M.; Ji, X. New Mechanistic Insights on Na-Ion Storage in Nongraphitizable Carbon. Nano Lett. 2015, 15, 5888–5892. [CrossRef] [PubMed] 37. Qiu, S.; Xiao, L.; Sushko, M.L.; Han, K.S.; Shao, Y.; Yan, M.; Liang, X.; Mai, L.; Feng, J.; Cao, Y.; et al. Manipulating Adsorption– Insertion Mechanisms in Nanostructured Carbon Materials for High-Efficiency Sodium Ion Storage. Adv. Energy Mater. 2017, 7, 1700403. [CrossRef] 38. Sun, N.; Guan, Z.; Liu, Y.; Cao, Y.; Zhu, Q.; Liu, H.; Wang, Z.; Zhang, P.; Xu, B. Extended “Adsorption–Insertion” Model: A New Insight into the Sodium Storage Mechanism of Hard Carbons. Adv. Energy Mater. 2019, 9, 1901351. [CrossRef] 39. Alvin, S.; Cahyadi, H.S.; Hwang, J.; Chang, W.; Kwak, S.K.; Kim, J. Revealing the Intercalation Mechanisms of Lithium, Sodium, and Potassium in Hard Carbon. Adv. Energy Mater. 2020, 10, 2000283. [CrossRef] 40. Chen, T.; Liu, Y.; Pan, L.; Lu, T.; Yao, Y.; Sun, Z.; Chua, D.H.C.; Chen, Q. Electrospun Carbon Nanofibers as Anode Materials for Sodium Ion Batteries with Excellent Cycle Performance. J. Mater. Chem. A 2014, 2, 4117–4121. [CrossRef] 41. Thomas, P.; Ghanbaja, J.; Billaud, D. Electrochemical Insertion of Sodium in Pitch-Based Carbon Fibres in Comparison with Graphite in NaClO4-Ethylene Carbonate Electrolyte. Electrochim. Acta 1999, 45, 423–430. [CrossRef] 42. Kumar, H.; Detsi, E.; Abraham, D.P.; Shenoy, V.B. Fundamental Mechanisms of Solvent Decomposition Involved in Solid- Electrolyte Interphase Formation in Sodium Ion Batteries. Chem. Mater. 2016, 28, 8930–8941. [CrossRef] 43. Bard, A.J.; Faulkner, L.R. Impedance. In Electrochemical Methods: Fundamentals and Applications, 2nd ed.; John Wiley: Chichester, UK, 2001; pp. 383–385. 44. Adams, R.A.; Varma, A.; Pol, V.G. Temperature Dependent Electrochemical Performance of Graphite Anodes for K-Ion and Li-Ion Batteries. J. Power Sources 2019, 410–411, 124–131. [CrossRef]

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