Abstract
Battery electrolyte decomposition can alter chemical composition over time and produce by-products that impact
battery performance. This Application Note demonstrates how the Oxford Instruments X-Pulse 90 benchtop NMR
spectrometer can be used to detect and monitor battery electrolyte degradation on the example of Li[PF₆]-based
lithium-ion batteries. Using ¹⁹F and ³¹P NMR measurements, signals from the original [PF₆]⁻ anion and several
decomposition products can be clearly distinguished. A separate time-resolved experiment resolved water-induced
Li[PF₆] hydrolysis using ¹⁹F spectra acquired over 22 hours, with further changes observed after 15 days. The results
show how multinuclear benchtop NMR can support electrolyte stability studies, formulation development, manufacturing
quality control and battery failure analysis.
Introduction
Lithium-ion (Li-ion) batteries have become ubiquitous in daily life, providing power for a diverse range of
applications, ranging from mobile phones, computers, power tools, and medical devices to the green technologies
including electric cars and solar energy storage. As our usage of lithium-ion batteries has grown, so has the need to
optimise their performance and to ensure reliability over a long lifetime. At the same time new technologies including
sodium-ion (Na-ion) batteries are in development.
Electrolytes play a crucial role in the performance and reliability of Li-ion batteries, providing the medium that
allows anions and cations to carry charge between the electrodes, as shown in Figure 4.1. In the current
generation of commercial batteries, the electrolyte is typically made up of organic small-molecule liquid solvents,
commonly a mixture of alkyl carbonates, combined with a lithium salt. Additionally, various additives are used to
ensure specific chemical and electrochemical properties.


Figure 4.1 Diagram of a lithium-ion battery, showing major components including the
anode, cathode, separator, and electrolyte.
While lithium-ion batteries have played a major role in transforming our daily lives, benchtop NMR spectroscopy has
similarly begun to revolutionise quality assurance and quality control (QA/QC) processes by making a powerful
technique easier and more accessible for routine analysis in any laboratory. Benchtop NMR has many potential
lithium-ion battery QA/QC applications, as the well-resolved spectra of the small organic molecules and ions are
ideally suited for quick, convenient analysis.
The Oxford Instruments X-Pulse broadband benchtop NMR spectrometer (available with a 60
MHz or 90 MHz permanent magnet) provides significant advantages for the development and analysis of battery
electrolytes. Since a single broadband X-Pulse instrument can analyse all the NMR-active nuclei commonly found in
Li-ion (and Na-ion) batteries, including 1H, 19F, 13C, 31P,
11B, 7Li and 23Na, this allows for the results of electrolyte aging and decomposition
to be observed using the most appropriate nuclei for the species of interest.
Analysing Electrolyte Decomposition
There are three main causes of decomposition / degradation of Li-ion battery electrolytes:
- degradation due to the repeated charging and discharging of the battery, which is one of the contributing factors
towards deteriorating battery performance with age
- decomposition due to contaminants in the electrolyte, commonly water, which is why Li-ion battery electrolyte must
be manufactured, and the batteries assembled in ultra-dry environments, with relative humidity less than 1%
- slow reaction between the various compounds in the electrolyte, which will be faster as the temperature increases
Understanding these processes is important to understand how battery performance changes over time.
By obtaining 19F and 31P NMR spectra of an old sample of Li[PF6]-based battery
electrolyte (Figures 4.2 & 4.3), we can readily identify signals arising from the decomposition
of the electrolyte. We can also quantify that the total amount of decomposed species correspond to less than 1% the
amount of [PF6]− still present.
The 19F spectrum shows four additional signals: one sharp peak at −156 ppm can be assigned as ‘free’
hydrogen fluoride. Three signals in the range −78 to −94 ppm, which each appear as two sharp peaks, due to coupling to
a single phosphorus atom, can be assigned as OPF2(OR) where R = H, Methyl, Ethyl. The presence of methyl
and ethyl functionalities in the decomposition products suggests that not only the [PF6]− anion
but also the alkyl carbonate solvent is decomposing (this sample was a mixture of ethylene carbonate and ethyl methyl
carbonate).

Figure 4.2 19F NMR spectrum of an old sample of Li-ion
battery electrolyte. Insert showing baseline expanded ca 200 time.
These assignments are supported by the 31P{1H} spectrum, where in addition to the septet from
the [PF6]−, three triplets are observed in the +10 to −50 ppm region, each arising due to
coupling to two equivalent fluorine atoms. The magnitude of the J-couplings match those observed in the
19F spectrum.

Figure 4.3 31P{1H} NMR
spectrum of an old sample of Li-ion battery electrolyte. Insert showing expansion of
OPF2(OR) signals
Since chemical shift (in ppm) and the magnitude of J-coupling (in Hz) is independent of the field strength
of the magnet, these signals can be identified by comparison with reference values, such as those shown in Table
4.1.
Table 4.1 Reported 19F &
31P chemical shifts & J-coupling constants for products of the (thermal)
decomposition of Li[PF6] in EC/DMC/DEC mixtures [1]
|
δF / ppm (multiplicity) |
δP / ppm (multiplicity) |
JFP / Hz |
| Li[PF6] |
−73.0 (d) |
−145.0 (sept) |
709 |
| OPF3 |
−88.6 (d) |
−35.7 (q) |
1068 |
| OPF2(OEt) |
−84.9 (d) |
−20.5 (t) |
1008 |
| OPF2(OMe) |
−86.8 (d) |
−20.1 (t) |
1008 |
| OPF2(OH) |
−83.6 (d) |
−19.6 (t) |
970 |
| OPF(OEt)2 |
−82.0 (d) |
−9.6 (d) |
962 |
| OPF(OMe)2 |
−86.6 (d) |
−8.4 (d) |
961 |
| OPF(OMe)(OEt) |
−84.3 (d) |
−10.8 (d) |
963 |
| OPF(OH)2 |
−76.5 (d) |
−10.0 (t) |
933 |
| HF |
ca −155 (s) |
- |
- |
| LiF |
ca −187 (s) |
- |
- |
| EtF |
−211.43 (tq) |
- |
- |
| MeF |
−268.34 (q) |
- |
- |
Monitoring Hydrolysis of Hexafluorophosphate
Under most circumstances, decomposition of Li-ion battery electrolytes will take place over months or even years. By
intentionally accelerating the decomposition process, it can be directly monitored using benchtop NMR spectroscopy.
In this example, a sample of Li[PF6] in a mixture of EC/DMC is transferred into a standard NMR tube with a
PTFE liner. The liner prevents any hydrogen fluoride, HF, that can be formed as a possible product from the
decomposition of [PF6]− from reacting with the borosilicate glass of the NMR tube. After
optimising the instrument and acquiring an initial 19F spectrum, 2% H2O was added to the NMR
tube, the sample reinserted into the spectrometer, and a 19F spectrum was acquired every 10 minutes of a 22
hour period.
Analysis of the resulting data (Figure 4.4) showed the formation of two new species over that period:
- difluorophosphoric acid, OPF2(OH), δF −84.6 ppm, 1JFP 935 Hz
- lithium fluoride, LiF, δF −190 ppm
The reaction had not reached completion after the 22 hours.

![19F NMR spectra of Li[PF6] over 22h](/learning/uploads/inline-images/docx-img-20261006070502-6aadb9a9.png)
Figure 4.4 19F NMR spectra of
Li[PF6] in EC/DMC acquired over 22 hours following the addition of 2% (v/v)
H2O
After a total of 15 days reaction time, another 19F NMR spectrum was acquired (Figure 4.6) demonstrating how
the reaction has progressed. In addition to the difluorophosphoric acid, OPF2(OH), observed initially,
there are three new signals, all appearing as doublets, with the major reaction product corresponding to
fluorophosphoric acid, OPF(OH)2, (δF −77.3 ppm, 1JFP 930 Hz). The
lithium fluoride signal at δF −190 ppm is also now much sharper that it appeared initially.
![19F NMR Spectra of Li[PF6] after 15 days](/learning/uploads/inline-images/docx-img-20261006070502-fee81875.png)
Figure 4.5 19F NMR spectra of
Li[PF6] in EC/DMC acquired 15 days following the addition of 2% (v/v)
H2O
Summary
The X-Pulse 90 and X-Pulse
60 broadband benchtop NMR spectrometers are ideal tools for analysing the aging and decomposition of
lithium-ion battery electrolyte. In this Application Note, we’ve demonstrated how degradation of lithium
hexafluorophosphate based electrolytes can readily be observed by benchtop NMR spectroscopy, both through the analysis
of aged samples, or by directly monitoring the decomposition process following the addition of water to an electrolyte
sample. This demonstrates the value of the X-Pulse family of broadband NMR spectrometers, not just for the initial
development of Li-ion battery electrolytes, but also for QC/QA of batteries during manufacturing, and failure analysis
of batteries in the field.
References
[1] C. L. Campion, W. Li and B. L. Lucht, J. Electrochem. Soc., 2005, 152, A2327, DOI: 10.1149/1.2083267.