AI Article Synopsis

  • The 'shuttle effect' in lithium-sulfur (Li-S) batteries, caused by the dissolution and movement of soluble polysulfides in the electrolyte, is a major hurdle for their commercialization.
  • Previous research has explored using separators with specific chemical properties or physical barriers, but little has considered how both internal and interparticle spaces in porous materials affect battery performance.
  • This study demonstrates that using amine-functionalized Zr-based metal-organic frameworks (UiO-66) as a separator improves Li-S battery cycling performance more effectively through thermodynamic interactions than through merely enhancing interparticle space for mass transport.

Article Abstract

One of the critical issues hindering the commercialization of lithium-sulfur (Li-S) batteries is the dissolution and migration of soluble polysulfides in electrolyte, which is called the 'shuttle effect'. To address this issue, previous studies have focused on separators featuring specific chemical affinities or physical confinement by porous coating materials. However, there have been no studies on the complex effects of the simultaneous presence of the internal and interparticle spaces of porous materials in Li-S batteries. In this report, the stable Zr-based metal-organic frameworks (MOFs), UiO-66, have been used as a separator coating material to provide interparticle space via size-controlled MOF particles and thermodynamic internal space via amine functionality. The abundant interparticle space promoted mass transport, resulting in enhanced cycling performance. However, when amine functionalized UiO-66 was employed as the separator coating material, the initial specific capacity and capacity retention of Li-S batteries were superior to those materials based on the interparticle effect. Therefore, it is concluded that the thermodynamic interaction inside internal space is more important for preventing polysulfide migration than spatial condensation of the interparticle space.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8537144PMC
http://dx.doi.org/10.3390/nano11102689DOI Listing

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