Impurity & trace work
Degradation & stability products with GC-UV.
Spot, identify and quantify degradation products as they appear over a stability study.
What this objective means
Stability studies track how a formulation breaks down over time. GC-UV adds a spectral channel that flags new chromophores appearing in late time-points — even before they are formally identified.
Why GC-UV fits
UV detection identifies organophosphate and fluorinated degradation products that overlap by MS.
Reference
Lamb, J. et al., J. Electrochem. Soc. 168 (3), 030528 (2021).
Recommended model
INSCAN Lab
Spectral library + deconvolution catches emerging peaks across timepoints.
Typical turnaround
7–14 business days
Typical sample volume
0.5–5 mL liquid / 10–500 mg solid
Typical matrices
Frequently asked questions
Why is GC-UV good for battery electrolyte stability?
Electrolyte degradation generates organophosphates and fluorinated species that overlap heavily by MS; UV cross-sections separate them spectrally.
Can I trend new peaks across timepoints automatically?
Yes — the spectral library can be set to flag any peak whose spectrum was not present in the t=0 baseline.
Related in Impurity & trace work
Trace impurity identification
Pull trace impurities out of noisy baselines and confirm them spectrally — in one run.
Unknown peak identification
Use the UV spectrum at the peak apex to identify what your other detectors cannot.
Residual solvents (USP <467> / ICH Q3C)
Compendial residual-solvent testing with spectral identity confirmation built in.
Genotoxic / nitrosamine impurities
Nitrosamine and genotoxic impurity screening with selective deep-UV sensitivity.
Ready to scope it?
