Publication result detail

Tracking structural evolution in lithium-ion batteries via operando scanning electron microscopy

KLVAČ, O.; TROCHTA, D.; NOVAK, L.; PRIECEL, P.; BORNHOFFT, M.; KAZDA, T.; LIU, Z.

Original Title

Tracking structural evolution in lithium-ion batteries via operando scanning electron microscopy

English Title

Tracking structural evolution in lithium-ion batteries via operando scanning electron microscopy

Type

WoS Article

Original Abstract

The comprehensive understanding of structural-performance correlation of lithium-ion batteries is paramount for optimizing their performance, safety, and longevity, which are critical for applications such as portable electronics, electric vehicles, and renewable energy storage systems. Scanning Electron Microscopy (SEM) is instrumental in the examination of lithium-ion batteries, offering high-resolution imaging and detailed insights into the battery microstructure and morphology. Operando SEM analyses are invaluable as they provide precise descriptions of the dynamic phenomena and structural temporal evolution within the battery. However, the application of SEM for operando analyses is hindered by the challenges in the preparation of samples that can deliver practical electrochemical performance within the SEM environment. In this manuscript, we introduce an operando SEM workflow that enables high-resolution analysis of structural evolution in lithium-ion batteries from electrode level to particle level. The efficacy of this system and workflow is demonstrated on lithium nickel manganese cobalt oxide (NMC) and lithium titanium oxide (LTO) battery cells revealing electrode expansion and contraction, as well as grain cracking. Additionally, a graphite-lithium metal system is analyzed, where expansion and cracking of graphite grains were observed. The study delineates a procedure enabling the investigation from entire electrodes change at hundreds of micron level or even larger cell components to submicron changes at the granular level, applicable across various chemistries. We propose that this workflow can offer valuable insights for both fundamental research at the materials development level and cell structure optimization in manufacturing environments.

English abstract

The comprehensive understanding of structural-performance correlation of lithium-ion batteries is paramount for optimizing their performance, safety, and longevity, which are critical for applications such as portable electronics, electric vehicles, and renewable energy storage systems. Scanning Electron Microscopy (SEM) is instrumental in the examination of lithium-ion batteries, offering high-resolution imaging and detailed insights into the battery microstructure and morphology. Operando SEM analyses are invaluable as they provide precise descriptions of the dynamic phenomena and structural temporal evolution within the battery. However, the application of SEM for operando analyses is hindered by the challenges in the preparation of samples that can deliver practical electrochemical performance within the SEM environment. In this manuscript, we introduce an operando SEM workflow that enables high-resolution analysis of structural evolution in lithium-ion batteries from electrode level to particle level. The efficacy of this system and workflow is demonstrated on lithium nickel manganese cobalt oxide (NMC) and lithium titanium oxide (LTO) battery cells revealing electrode expansion and contraction, as well as grain cracking. Additionally, a graphite-lithium metal system is analyzed, where expansion and cracking of graphite grains were observed. The study delineates a procedure enabling the investigation from entire electrodes change at hundreds of micron level or even larger cell components to submicron changes at the granular level, applicable across various chemistries. We propose that this workflow can offer valuable insights for both fundamental research at the materials development level and cell structure optimization in manufacturing environments.

Keywords

Li-ion batteries, Operando SEM, Structural evolution, Battery R&D and manufacturing

Key words in English

Li-ion batteries, Operando SEM, Structural evolution, Battery R&D and manufacturing

Authors

KLVAČ, O.; TROCHTA, D.; NOVAK, L.; PRIECEL, P.; BORNHOFFT, M.; KAZDA, T.; LIU, Z.

Released

01.09.2025

Periodical

Energy Storage Materials

Number

81

State

Kingdom of the Netherlands

Pages count

9

URL

BibTex

@article{BUT199283,
  author="Ondřej {Klvač} and David {Trochta} and  {} and  {} and  {} and Tomáš {Kazda} and  {}",
  title="Tracking structural evolution in lithium-ion batteries via operando scanning electron microscopy",
  journal="Energy Storage Materials",
  year="2025",
  number="81",
  pages="9",
  doi="10.1016/j.ensm.2025.104516",
  issn="2405-8297",
  url="https://doi.org/10.1016/j.ensm.2025.104516"
}