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February 28, 2026ACS Sustainable Chemistry & Engineering0 citations

Inhibiting Lithium Dendrite Using a Helical Structure Soy Protein Isolate To Achieve a Janus Separator for High Performance Li–S Batteries

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HWHao WangMLMinyao LiuGZGuangzhao Zhang

Key Points

  • The aim is to enhance lithium-sulfur battery performance by inhibiting lithium dendrites and the polysulfide shuttle effect.
  • Developed a dual-functional Janus separator using α-SPI and C–CNF.
  • Applied directional denaturation treatment to increase α-helix content in soy protein isolate (SPI).
  • Utilized phytic acid as a cross-linker to anchor α-SPI onto cellulose nanofibers.
  • Constructed a lithiophilic framework to improve lithium flux and suppress dendrite formation.
  • Entangled lithium polysulfides in a three-dimensional carbon structure at the cathode.
  • Achieved a high initial capacity of 938 mAh g–1 with the Janus separator.
  • Maintained 537.8 mAh g–1 after 1000 cycles with a 0.043% degradation rate per cycle.
  • Effectively suppressed both lithium dendrites and the polysulfide shuttle effect.

Abstract

The propagation of lithium dendrites and the “shuttle effect” of polysulfide represent two critical challenges hindering the practical application of lithium sulfur batteries (LSBs). Herein, a dual-functional integrated Janus separator is proposed, which simultaneously inhibits the shuttle effect of polysulfide and lithium dendrites to enhance the electrochemical performance of LSBs. On the lithium metal anode interface, directional denaturation treatment was first applied to increase the α-helix content in soy protein isolate (SPI), yielding α-SPI with enhanced Li+ affinity. Phytic acid (PA) served simultaneously as cross-linker and acidity regulator, anchoring α-SPI nanoparticle onto carboxylated cellulose nanofibers (C–CNF). The resulting composite was uniformly sprayed onto the separator to construct a lithiophilic α-SPI@C–CNF framework, which homogenizes Li+ flux and suppresses lithium dendrite. At the cathode interface, the made-to-measure three-dimensional carbon (M-3DC) physically entraps lithium polysulfides and thus prevent the shuttle effect. Finally, the LSB using the Janus separator delivers a high initial capacity of 938 mAh g–1 and exhibits an excellent operation stability by retaining 537.8 mAh g–1 after 1000 cycles (with a capacity degradation rate of only 0.043% per cycle). This study presents a versatile approach to simultaneously mitigate the intrinsic limitations of both the lithium metal anode and the sulfur cathode in LSBs.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69a286370a974eb0d3c00fa5https://doi.org/10.1021/acssuschemeng.5c13428
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