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Application Notes
Published: 01 Oct 2018 · Last updated: 03 Aug 2026
The MQC+ benchtop Nuclear Magnetic Resonance (NMR) analyser provides an alternative method to wet chemistry and NIR; it is quick and easy to perform, simple to calibrate, and requires minimal sample preparation. As such it is ideal for routine operation without any requirement for additional chemicals, complicated calibrations or specialist operator training.
Measurement of oil (and water) in oilseed residues after crushing and solvent extraction is important to ensure maximum process efficiency. Likewise the oil content of the oilseed and grain by-products is also important for their end use, mainly animal feed and other speciality uses.
Solvent extraction techniques are commonly used for determination of oil content. However, these methods can be time consuming, require skilled operators and the use of hazardous solvents.
NIR is rapid but measures only the surface layer, so sample grinding may be required for improved reproducibility. In addition, NIR requires calibration using a large number of reference samples that represent a variety of factors including oil and water content, seed or grain type, particle size or colour. Therefore, the results may unknowingly be inaccurate if the sample is outside the range/scope of the calibration.
In contrast:
The oil and water measurement involves differentiating the two analytes on the basis of their NMR relaxation times. The NMR signal from solids within a sample decay rapidly, leaving signals originating only from oil and bound water. Subsequently the signal from the bound water decays leaving that from the oil only. The water signal is determined by taking the difference between the oil and combined oil + bound water signal.
Since NMR calibrations are always linear, theoretically only two well known standards are required to calibrate the instrument. However it is recommended that the instrument is calibrated using 3–6 standards with known oil contents evenly spread over the range of interest. The instrument may be calibrated by measuring the NMR value against:
NMR is a comparative technique and therefore cannot be more accurate than the reference technique against which it is being compared. However, it is more reproducible than wet chemical methods, which have more manual steps, therefore errors are reduced by analysing more reference samples.
Samples are poured into glass NMR tubes up to a predefined mark and weighed. Large samples (80 or 40ml) are normally conditioned at room temperature in a stable environment. For small sample volumes (≤14ml) conditioning using a dry heating block is recommended for best repeatability. The NMR measurement time is typically 16 seconds per sample.
Figure 1 shows that a good linear calibration can be generated for oil content across a wide concentration range (approx. 10–50%) for both canola (seed, cake and meal) and corn (germ and meal) products using an MQC+5 analyser with a 51mm diameter (80ml volume) probe.

Fig. 1 — NMR calibration generated from acid hydrolysis followed by Soxhlet data for oil in various canola and corn products without drying (moisture < 10%) at room temperature. The correlation coefficient and standard deviation are 1.00 and 0.33% respectively.
Furthermore, Figure 2 shows that a good linear calibration can be generated for oil content in soya beans (whole), wheat (ground) and maize by-product (ground) for concentrations ranging from 1 to 22% using an MQC+5 analyser with 40mm diameter (40ml volume) probe.

Fig. 2 — NMR calibration generated from Soxhlet data for oil in soya bean (whole), maize (ground) and wheat (ground) samples at room temperature. The correlation coefficient and standard deviation are 1.00 and 0.16% respectively.
The choice of NMR probe is dependent on the sample size or sensitivity required. The 51mm probe offers double the sample volume of the 40mm probe and therefore has reduced sampling errors, i.e. better reproducibility; the 51mm probe is preferred for sunflower seeds. However the 40mm probe is more suited to measurement of very low concentrations, e.g. after the solvent extraction processing step.
Table 1 shows that the measurement repeatability of both canola seed and cake is good at room temperature (using 51mm probe). Each sample was left to equilibrate at room temperature for 20 minutes prior to each measurement.
| Sample | Repeat Measurements | Mean (%) | SD (%) | |||||||||
| Canola seed | 43.04 | 43.09 | 43.1 | 43.09 | 43.11 | 43.09 | 43.15 | 44.16 | 43.14 | 43.11 | 43.11 | 0.033 |
| Canola cake | 9.4 | 9.37 | 9.4 | 9.4 | 9.42 | 9.37 | 9.37 | 9.43 | 9.4 | 9.43 | 9.4 | 0.022 |
Both examples indicate that it is possible to use one calibration for several different types of oil, provided they have similar composition, related to the degree of unsaturation of the fatty acids. The deviations from the calibration line are less than the errors associated with the reference techniques used. The deviations are typically caused by unextracted oil which is bound to the matrix. Therefore NMR tends to correlate better with the total oil content measured by extraction after acid hydrolysis.
Oxford Instruments offers various packages tailored to the measurement of oil and water in oilseeds, their residues (pressed cake or meals) and various other grains (maize, wheat, corn):
In addition you may also wish to purchase:
*Packages based on the MQC+23 are available where oil content of smaller volumes or single seeds is required (up to 14ml sample volume). A 10mm (2ml sample volume) diameter probe is required to measure Solid Fat Content (SFC) on the same instrument.
Oxford Instruments MQC+ NMR Analyser — shown with electronics with integral PC