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Related Concept Videos

Electrogravimetric Analysis: Overview01:30

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Electrogravimetric analysis measures the weight of an analyte deposited electrolytically onto a suitable working electrode. This method involves applying a potential to a pre-weighed electrode submerged in a solution, which results in the desired substance being deposited through reduction at the cathode or oxidation at the anode. The electrode's weight is recorded after deposition, and the difference in weight gives the analyte's weight in the solution.
To test the completeness of the...
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Comprehensive Study of Li Deposition and Solid Electrolyte Cracking by Integrating Simulation and Experimental Data.

Chen Lin1, Haihui Ruan2, Ming-Sheng Wang3

  • 1Sino-French Institute of Nuclear Engineering and Technology, Sun Yat-Sen University, Zhuhai, 519000, China.

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Summary

Reducing mechanical constraints in solid-state electrolytes (SE) can extend lithium-metal solid-state battery (LMSSB) lifespan. This approach alters lithium (Li) deposition, preventing rapid Li eruption in cracks and improving battery longevity.

Keywords:
crackingdepositionintegrating simulation and experimental datamechanical constraint

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Area of Science:

  • Materials Science
  • Electrochemistry
  • Solid-State Battery Technology

Background:

  • Lithium (Li) penetration into solid-state electrolytes (SE) is a primary failure mode for lithium-metal solid-state batteries (LMSSBs).
  • Existing models often fail to fully explain experimental observations or lack validation, impeding a comprehensive understanding of LMSSB failure mechanisms.

Purpose of the Study:

  • To develop a unified phase-field (PF) model integrating simulation and experimental data to investigate Li deposition and SE cracking.
  • To differentiate between Li penetration and SE cracking phenomena, recognizing they do not occur simultaneously.

Main Methods:

  • Development of a unified phase-field (PF) model incorporating mechanical constraints, solid-solid contact, and large-strain mechano-chemical coupling.
  • Distinguishing between Li penetration and SE cracking mechanisms.
  • Modeling crack initiation via the pressurized cracking model and propagation through wedge-shaped opening.

Main Results:

  • The study distinguishes Li penetration from SE cracking, showing they are not simultaneous events.
  • Crack initiation and propagation mechanisms were modeled.
  • A counterintuitive finding suggests reducing SE mechanical constraints can extend LMSSB lifespan.

Conclusions:

  • Minimizing SE mechanical constraints, while maintaining good electrode contact, is a viable strategy to enhance LMSSB lifespan.
  • Altering Li deposition modes by reducing mechanical constraints prevents rapid Li eruption in cracks.
  • This approach offers a novel pathway for improving the durability of lithium-metal solid-state batteries.