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August 9, 2026Chemistry of Materials0 citations

Study of InterfacialDegradation Reactions via Operando Soft X-rayAbsorption Spectroscopy on Ni-RichNMC811 Cathodes in Lithium-Ion Batteries

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BJB. Maarten JagerJBJan Franse G. BrakenhoffPBPeter L. Bramwell

Key Points

  • This study aims to understand the interfacial and bulk degradation processes of nickel-rich cathodes in lithium-ion batteries.
  • Operando and ex situ near-edge X-ray absorption fine structure (NEXAFS) spectroscopy on NMC811∥Li batteries
  • Analyzed the behavior of oxygen, fluorine, cobalt, and nickel during lithiation
  • Investigated driving forces behind cathode degradation at high states-of-charge.
  • Identified oxygen 2p─nickel 3d charge transfer as a driving force for degradation at high SoC
  • Found irreversible phase change toward a rocksalt structure leading to a redox-inactive surface layer
  • Reversible formation of nickel peroxide was noted in the bulk, contributing to capacity loss.

Abstract

Abstract Ni-rich layered NMCs are a very promising class of cathode materials for commercial lithium-ion batteries with high energy and power densities, finding application in many portable devices and electric vehicles. However, upon extended cycling and deep-charging of the cathodes, they undergo irreversible capacity losses, severely limiting battery lifetime. Understanding interfacial and bulk processes behind cathode degradation can provide insight into necessary material enhancements. In this work, we performed operando and ex situ near-edge X-ray absorption fine structure (NEXAFS) of oxygen, fluorine, cobalt, and nickel in NMC811∥Li batteries as a function of cathode lithiation. We find that one of the driving forces for cathode degradation is the oxygen 2p─nickel 3d charge transfer at high states-of-charge (SoC), due to the increased Ni–O covalency beyond Ni3+. In the bulk, this leads to reversible formation of nickel peroxide species, while at the interface, irreversible phase change toward a rocksalt structure occurs. This causes local oxygen reduction into reactive 1O2, concomitant with the reduction of present transition metals, forming an irreversible, redox-inactive surface layer that grows over the course of battery cycling. These results expand the current knowledge of NMC battery degradation and pave the way for designing stable, high capacity cathodes in contemporary lithium-ion batteries.

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Cite This Study

Jager et al. (2026) studied this question.

synapsesocial.com/papers/6a782d7b2e1896536c8408c9https://doi.org/10.1021/acs.chemmater.6c00971
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