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January 27, 2026Small5 citationsOpen Access

Designing with Li 2 S in Lithium–Sulfur Batteries: From Fundamental Chemistry to Practical Architectures

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HPHyeona ParkACArcangelo CelesteSWShulin Wang

Key Points

  • Explore the role of Li2S in enhancing lithium-sulfur battery technologies, focusing on its electrochemical properties and potential applications.
  • Review of lithium-sulfur battery chemistry
  • Assessment of Li2S as a pre-lithiated cathode
  • Investigation of multiscale strategies for electrode design
  • Discussion of emerging technologies integrating Li2S with various materials
  • Li2S enables lithium-free and anode-free battery architectures
  • Samsung's approach allows for improved activation and reversibility of Li2S
  • Integration of Li2S with materials like graphite and silicon enhances battery safety and energy density
  • Emerging techniques bridge laboratory advancements to industrial application potential

Abstract

ABSTRACT Lithium‐sulfur (Li‐S) batteries deliver gravimetric energy densities considerably higher than those of conventional lithium‐ion systems while relying on low‐cost, earth‐abundant materials. Despite decades of progress, their commercialization remains hindered by intrinsic challenges such as the insulating nature of sulfur and lithium sulfide (Li 2 S), formation and dissolution of soluble polysulfides, and instability of lithium‐metal anodes. Among these, the use of Li 2 S as a pre‐lithiated cathode has redefined the landscape of Li─S chemistry by offering a pathway toward lithium‐free and anode‐free architectures that are compatible with the existing manufacturing infrastructure. This perspective revisits the Li 2 S electrochemistry from a conceptual and design standpoint. The perspective emphasizes multiscale strategies for atomic‐level catalytic engineering, mesoscale electrode architectures, and electrolyte–interface control, which collectively determine Li 2 S activation and reversibility. The perspective also examines emerging approaches that integrate Li 2 S cathodes with graphite, silicon, and solid‐state configurations to enable safe, high‐energy, and manufacturable Li─S technologies. Finally, this perspective discusses the evolving roles of redox mediators, machine learning‐based discovery, and sustainable synthesis in bridging the gap between laboratory breakthroughs and industrial viability. Collectively, these insights frame Li 2 S not only as an alternative, cathode, but also as a platform for reimagining Li─S electrochemistry in the post‐lithium‐metal era.

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Cite This Study

Park et al. (2026) studied this question.

synapsesocial.com/papers/697854fdccb046adae5172c2https://doi.org/10.1002/smll.202513644
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