A Versatile Metal-Organic-Framework Pillared Interlayer Design for High-Capacity and Long-Life Lithium-Sulfur Batteries.

Angew Chem Int Ed Engl

School of Physics and Materials Science, Nanchang University, 330031, Nanchang, Jiangxi, P. R. China.

Published: October 2024

AI Article Synopsis

  • High-performance lithium-sulfur batteries offer a higher energy density and lower cost compared to traditional lithium-ion batteries, but face challenges like slow reaction rates and issues with soluble polysulfides.
  • The introduction of a metal-organic framework (MOF) as pillars within multilayer graphene creates a more efficient interlayer design that enhances the battery's performance by improving ion transport and confining polysulfides.
  • This innovative design leads to impressive results, such as a capacity of 1634 mAh g-1 and minimal capacity decay over 2000 cycles, and can also be effectively integrated into existing lithium-ion battery systems to prevent unwanted changes during cycling.

Article Abstract

Developing high-performance lithium-sulfur batteries is a promising way to attain higher energy density at a lower cost beyond the state-of-the-art lithium-ion battery technology. However, the major issues impeding their practical applications are the sluggish kinetics and the parasitic shuttling reactions of sulfur and polysulfides. Here, pillaring the multilayer graphene membrane with a metal-organic framework (MOF) demonstrates the substantial impact of a versatile interlayer design in tackling these issues. Unlike regular composite separators reported so far, the participation of tri-metallic Ni-Co-Mn MOF as pillars supports the construction of an ion-channel interconnected interlayer structure, unexpectedly balancing the interfacial concentration polarization, spatially confining the soluble polysulfides, and vastly affording the lithiophilic sites for highly efficient polysulfide sieving/conversion. As a demonstration, we show that the MOF-pillared interlayer structure enables outstanding capacity (1634 mAh g at 0.1 C) and longevity (average capacity decay of 0.034 % per cycle in 2000 cycles) for lithium-sulfur batteries. Besides, the multilayer separator can be readily integrated into the high-nickel cathode (LiNiMnCoO)-based lithium-ion batteries, which efficiently suppresses the undesired phase evolution upon cycling. These findings suggest the potential of "gap-filling" materials in fabricating multi-functional separators, bringing forward the pillared interlayer structure for energy-storage applications.

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Source
http://dx.doi.org/10.1002/anie.202414770DOI Listing

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