• Media type: Text; E-Article
  • Title: Constructing LiCl-Rich Solid Electrolyte Interphase by High Amine-Containing 1,2,4,5-Benzenetetramine Tetrahydrochloride Additive
  • Contributor: Lin, Zhihua [Author]; Bettels, Frederik [Author]; Li, Taoran [Author]; Satheesh, Sreeja K [Author]; Liu, Yuping [Author]; Zhang, Chaofeng [Author]; Ding, Fei [Author]; Zhang, Lin [Author]
  • Published: Weinheim : Wiley-VCH Verlag GmbH & Co. KG, 2023
  • Published in: Advanced Electronic Materials 10 (2024), Nr. 4 ; Advanced Electronic Materials
  • Issue: published Version
  • Language: English
  • DOI: https://doi.org/10.15488/16539; https://doi.org/10.1002/aelm.202300772
  • Keywords: electrolyte additive ; solvent sheath ; lithium metal anode ; 1,2,4,5-benzenetetramine tetrahydrochloride
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  • Description: Strategies that aim to achieve highly stable lithium metal batteries (LMBs) are extensively explored. To date, the controlled formation of high-quality inorganic SEI is still quite challenging, which requires a deep understanding and hence the fine-tuning of solvation chemistry by using functional additives in the electrolyte. In this work, a high amine-containing 1,2,4,5-benzenetetramine tetrahydrochloride (BHCL) is developed as a dual-function electrolyte additive for LMBs. The amine group with a high donor number increases the lithium affinity, while the phenyl group with a strong inductive effect prevents the decomposition of solvents, and the free chloride ions replace anions mediating the formation of the rigid inorganic LiCl-rich SEI layer. The experimental results corroborate the theoretical findings. The modified Li||Li symmetric battery is stably cycled for over 2500 h at 1 mA cm−2 current density with an overpotential of ≈45 mV. The performances of the Li||Cu and Li||LFP cells are also significantly enhanced. Therefore, this work provides a promising design principle of multifunctional electrolyte additive. ; Li symmetric battery is stably cycled for over 2500 h at 1 mA cm−2 current density with an overpotential of ≈45 mV. The performances of the Li ; Cu and Li ; LFP cells are also significantly enhanced. Therefore, this work provides a promising design principle of multifunctional electrolyte additive.
  • Access State: Open Access