4.8 Article

Aqueous Supramolecular Binder for a Lithium-Sulfur Battery with Flame-Retardant Property

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 13, Issue 46, Pages 55092-55101

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c16650

Keywords

aqueous; supramolecular binder; sulfur cathode; lithium sulfur battery; flame retardancy

Funding

  1. National Natural Science Foundation of China [52102221, 51874104]
  2. Guandong Basic and Applied Basic Research Foundation [2019A1515110861]
  3. Key Technology and Supporting Platform of Genetic Engineering of Materials under States Key Project of Research and Development Plan of China [2016YFB0700600]

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A water-soluble supramolecular binder developed by cross-linking sericin protein and phytic acid was found to improve the volume changes and cycle performance of a lithium-sulfur battery. The battery with the SPPA binder showed a significant performance improvement after 100 cycles compared to batteries with PVDF and SP binders. Additionally, the SP-PA binder in the electrode exhibited excellent flame-retardant performance.
A lithium-sulfur (Li-S) battery based on multielectron chemical reactions is considered as a next-generation energy-storage device because of its ultrahigh energy density. However, practical application of a Li-S battery is limited by the large volume changes, insufficient ion conductivity, and undesired shuttle effect of its sulfur cathode. To address these issues, an aqueous supramolecular binder with multifunctions is developed by cross-linking sericin protein (SP) and phytic acid (PA). The combination of SP and PA allows one to control the volume change of the sulfur cathode, benefit soluble polysulfides absorbing, and facilitate transportation of Li+. Attributed to the above merits, a Li-S battery with the SPPA binder exhibits a remarkable cycle performance improvement of 200% and 120% after 100 cycles at 0.2 C compared with Li-S batteries with PVDF and SP binders. In particular, the SP-PA binder in the electrode displays admirable flame-retardant performance due to formation of an isolating layer and the release of radicals.

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