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Original Report

N-doped porous carbon nanofibers embedded with TiN nanoparticles for high-performance Li–S batteries

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Pages 490-495 | Received 28 Jul 2021, Published online: 24 Sep 2021

References

  • Bruce PG, Freunberger SA, Hardwick LJ, et al. Li-O2 and Li-S batteries with high energy storage. Nat Mater. 2012;11:19–29.
  • Lin D, Liu Y, Cui Y. Reviving the lithium metal anode for high-energy batteries. Nat Nanotechnol. 2017;12:194–206.
  • Seh ZW, Sun Y, Zhang Q, et al. Designing high-energy lithium-sulfur batteries. Chem Soc Rev. 2016;45:5605–5634.
  • Bhargav A, He J, Gupta A, et al. Lithium-sulfur batteries: attaining the critical metrics. Joule. 2020;4:285–291.
  • Manthiram A, Chung S, Zu C. Lithium-sulfur batteries: progress and prospects. Adv Mater. 2015;27:1980–2006.
  • Peng H, Huang J, Cheng X, et al. Review on high-loading and high-energy lithium-sulfur batteries. Adv Energy Mater. 2017;7:1700260.
  • Li Z, Jiang Y, Yuan L, et al. A highly ordered meso@microporous carbon-supported Sulfur@smaller sulfur core-shell structured cathode for Li-S batteries. ACS Nano. 2014;8:9295–9303.
  • Kong L, Yin L, Xu F, et al. Electrolyte solvation chemistry for lithium-sulfur batteries with electrolyte-lean conditions. J Energy Chem. 2021;55:80–91.
  • Lin Y, Huang S, Zhong L, et al. Organic liquid electrolytes in Li-S batteries: actualities and perspectives. Energy Storage Mater. 2021;34:128–147.
  • Zheng J, Ji G, Fan X, et al. High-fluorinated electrolytes for Li-S batteries. Adv Energy Mater. 2019;9:1803774.
  • Liang C, Dudney NJ, Howe JY. Hierarchically structured sulfur/carbon nanocomposite material for high-energy lithium battery. Chem Mater. 2009;21:4724–4730.
  • Zhao X, Liu Y, Manuel J, et al. Nitrogen-doped mesoporous carbon: a top-down strategy to promote sulfur immobilization for lithium-sulfur batteries. ChemsusChem. 2015;8:3234–3241.
  • Peng H, Hou T, Zhang Q, et al. Strongly coupled Interfaces between a heterogeneous carbon host and a sulfur-containing guest for highly stable lithium-sulfur batteries: mechanistic insight into capacity degradation. Adv Mater Interfaces. 2014;1:1400227.
  • Yao Y, Wang H, Yang H, et al. A dual-functional conductive framework embedded with TiN-VN heterostructures for highly efficient polysulfide and lithium regulation toward Stable Li-S full batteries. Adv Mater. 2020;32:1905658.
  • Li Z, He Q, Xu X, et al. A 3D nitrogen-doped graphene/TiN nanowires composite as a strong polysulfide anchor for lithium-sulfur batteries with enhanced rate performance and high areal capacity. Adv Mater. 2018;30:1804089.
  • Zhou T, Lv W, Li J, et al. Twinborn TiO2-TiN heterostructures enabling smooth trapping-diffusion-conversion of polysulfides towards ultralong life lithium-sulfur batteries. Energy Environ Sci. 2017;10:1694–1703.
  • Hao Z, Yuan L, Chen C, et al. Tin as a simple and efficient polysulfide immobilizer for lithium-sulfur batteries. J Mater Chem A. 2016;4:17711–17717.
  • Zeng L, Zeng W, Jiang Y, et al. A flexible porous carbon nanofibers-selenium cathode with superior electrochemical performance for both Li-Se and Na-Se batteries. Adv Energy Mater. 2015;5:1401377.
  • Zeng L, Wei X, Wang J, et al. Flexible one-dimensional carbon-selenium composite nanofibers with superior electrochemical performance for Li-Se/Na-Se batteries. J Power Sources. 2015;281:461–469.
  • Ma M, Zhang S, Yao Y, et al. Heterostructures of 2D molybdenum dichalcogenide on 2D nitrogen-doped carbon: superior potassium-ion storage and insight into potassium storage mechanism. Adv Mater. 2020;32:2000958.
  • Chen W, Jin H, Xie S, et al. Tin nanocrystal anchored on N-doped graphene as effective sulfur hosts for high-performance lithium-sulfur batteries. J Energy Chem. 2021;54:16–22.