LCMS
More information
WebinarsAbout usContact usTerms of use
LabRulez s.r.o. All rights reserved. Content available under a CC BY-SA 4.0 Attribution-ShareAlike

Analysis of the Decomposition Products of Lithium Hexafluorophosphate in the Electrolytic Solution of Lithium-Ion Rechargeable Batteries by Column - Switching Ion Chromatography (Part 2)

Applications | 2015 | ShimadzuInstrumentation
Ion chromatography
Industries
Energy & Chemicals
Manufacturer
Shimadzu

Summary

Importance of the Topic


Lithium hexafluorophosphate (LiPF6) is the primary lithium salt used in lithium-ion battery electrolytes. It readily hydrolyzes in the presence of trace water, producing fluoride and monofluorophosphate ions that can degrade battery performance and safety.

Objectives and Study Overview


This study focuses on the development of a rapid and sensitive method using column-switching ion chromatography to detect and quantify the main decomposition products of LiPF6 in battery electrolytes. The approach is applied to both standard solutions and electrolytes subjected to accelerated aging tests.

Methodology and Instrumentation


The analysis employs a two-column switching system to separate high concentrations of PF6- from lower concentration hydrolysis products:
  • Column (1): Shim-pack IC-SA2 guard column (10 mm L. × 4.6 mm I.D.) retains PF6-
  • Column (2): Shim-pack IC-SA2 analytical column (250 mm L. × 4.0 mm I.D.) for analyte separation
  • Mobile phase: 12 mmol/L NaHCO3 and 0.6 mmol/L Na2CO3
  • Flow rate: 1.0 mL/min per pump; injection volume: 10 µL; column temperature: 30 °C
  • Detector: CDD-10ASP suppressor with conductivity detection

Battery electrolytes were prepared with 1 mol/L LiPF6 in EC/DEC (1:1 v/v). Samples from new and accelerated-aged cells were diluted 100-fold, filtered, and analyzed.

Main Results and Discussion


In standard mixtures, fluoride (1 mg/L) and monofluorophosphate (10 mg/L) were baseline-separated with stable retention times. Analysis of fresh electrolyte showed low levels of fluoride and difluorophosphate; after accelerated aging (thermal and cycling stresses), both species increased markedly. Difluorophosphate (PO2F2-) was identified qualitatively due to lack of standards. Chromatograms demonstrate efficient peak resolution and rapid run times enabled by column switching.

Benefits and Practical Applications


The column-switching IC method offers:
  • Shortened analysis cycles by isolating high-concentration PF6- to waste
  • High sensitivity for low-level fluoride and phosphate species
  • Robust monitoring of electrolyte degradation for battery quality control


Future Trends and Potential Applications


Potential developments include:
  • Extension to additional hydrolysis and oxidation products (e.g., polyphosphates)
  • Integration with mass spectrometry for structural confirmation
  • Real-time online monitoring in battery cell manufacturing
  • Automated high-throughput screening platforms for electrolyte R&D


Conclusion


Column-switching ion chromatography provides an efficient and reliable approach for detecting key degradation ions in lithium-ion battery electrolytes, enabling rapid assessment of electrolyte health and contributing to improved battery safety and longevity.

References


No external literature citations were provided in the original text.

Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.

Downloadable PDF for viewing
 

Similar PDF

Toggle
Analysis of the Decomposition Products of Lithium Hexafluorophosphate in the Electrolytic Solution of Lithium-Ion Rechargeable Batteries by Column-Switching Ion Chromatography
LAAN-A-LC-E195 High Perform ance Liquid Chromatography No.L417 Analysis of the Decomposition Products of Lithium Hexafluorophosphate in the Electrolytic Solution of Lithium-Ion Rechargeable Batteries by Column-Switching Ion Chromatography Lithium hexafluorophosphate, which serves as the electrolytic solution in lithium-ion rechargeable batteries, is…
Key words
rechargeable, rechargeableelectrolytic, electrolyticlithium, lithiumhexafluorophosphate, hexafluorophosphateion, iondecomposition, decompositionsolution, solutionpeak, peakwaste, wastebattery, batteryproducts, productsarea, areadifluorophosphate, difluorophosphatemonofluorophosphate, monofluorophosphatepeaks
Analysis and Testing of Lithium-Ion Battery Materials
Analysis and Testing of Lithium-Ion Battery Materials
2021|Shimadzu|Brochures and specifications
C10G-E088 Analysis and Testing of Lithium-Ion Battery Materials Multifaceted Solutions for Improving Performance and Quality of Lithium-Ion Secondary Batteries In the field of transport equipment, which long life, and safety must be resolved. Research accounts for approximately 20% of CO…
Key words
cantilever, cantileverelectrolytic, electrolyticlithium, lithiumdeflection, deflectionbatteries, batteriespiezo, piezoelectrode, electrodeseparators, separatorsxspecia, xspeciabattery, batteryion, ionlipon, liponforce, forcecarbonate, carbonateelectrolytes
Analysis of Hexafluorophosphate Ion in Electrolytic Solution for Lithium-Ion Rechargeable Batteries by Ion Chromatography
LAAN-A-LC-E194 High Perform ance Liquid Chromatography No.L416 Analysis of Hexafluorophosphate Ion in Electrolytic Solution for Lithium-Ion Rechargeable Batteries by Ion Chromatography Lithium hexafluorophosphate is a common electrolyte used in rechargeable batteries. Here, we introduce an example of the analysis of…
Key words
hexafluorophosphate, hexafluorophosphaterechargeable, rechargeablelithium, lithiumelectrolytic, electrolyticbattery, batteryion, ionsolution, solutionpeak, peakreferenc, referencvalue, valueance, ancearea, arearetention, retentionrepeatability, repeatabilityanalysis
Analysis of common lithium salts, trace additives, and contaminants in lithium-ion battery electrolytes by ion chromatography-mass spectrometry
Application note | 003262 Industrial Analysis of common lithium salts, trace additives, and contaminants in lithium-ion battery electrolytes by ion chromatography-mass spectrometry Authors Introduction Yukiko Kawahara, Detlef Jensen, Understanding the electrolyte composition of batteries is pivotal in achieving enhanced Neil…
Key words
lithium, lithiumtfsi, tfsifsi, fsioxalate, oxalatefluoride, fluorideperchlorate, perchloratephosphate, phosphatenitrate, nitrateformate, formatelibob, libobeluent, eluentelectrolyte, electrolytechloride, chloridesodium, sodiumacetate
Other projects
GCMS
ICPMS
Follow us
More information
WebinarsAbout usContact usTerms of use
LabRulez s.r.o. All rights reserved. Content available under a CC BY-SA 4.0 Attribution-ShareAlike