A Comparative Assessment of Several Deconvolution Methods Used for Fourier Transform Nuclear Magnetic Resonance Spectroscopy
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials and NMR Apparatus
2.2. Overlapping Degree, Derivatives, and Reverse Curve Fitting
3. Results
3.1. Deconvolution with Reverse Curve Fitting and Goodness-of-Fit
3.2. Deconvolutions with Even-Order Derivatives
3.3. Fourier Self-Deconvolution
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| FSD | Fourier self-deconvolution |
| FT | Fourier transform |
| FT-NMR | Fourier transform nuclear magnetic resonance |
| FWHM | Full width at half maximum |
| NMR | Nuclear magnetic resonance |
| SNR | Signal-to-noise ratio |
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| Derivative | Peaks | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 |
|---|---|---|---|---|---|---|---|---|---|---|---|
| γ | –– | 1.950 | 2.006 | 1.337 | 2.061 | 2.006 | 1.448 | 1.894 | 2.117 | 1.838 | |
| D(2) | ppm | 8.2648 | 8.2682 | 8.2717 | 8.2741 | 8.2779 | 8.2814 | 8.2840 | 8.2876 | 8.2913 | 8.2945 |
| A0 (×107) | 5.856 | 27.829 | 14.383 | 17.548 | 7.091 | 7.507 | 11.340 | 28.925 | 24.861 | 4.816 | |
| D(3) * | ppm | 8.2647 | 8.2682 | 8.2718 | 8.2742 | 8.2779 | 8.2815 | 8.2841 | 8.2875 | 8.2913 | 8.2946 |
| A0 (×107) | 5.952 | 27.932 | 14.803 | 17.327 | 6.813 | 7.818 | 12.766 | 28.582 | 24.906 | 5.260 | |
| ΔA0 (%) | −1.6% | −0.4% | −2.8% | +1.3% | +4.1% | −4.0% | −11.2% | +1.2% | −0.2% | −8.4% | |
| Window (0 < t < T) | Cosine FT | Height | FWHM | SL * |
|---|---|---|---|---|
| Rectangle 1 | T sinc(2πυT) | T | 0.60/T | −21.7% |
| Bessel [1 − (t/T)2]2 | Tπ1/2 (πυT)−5/2 J5/2(2πυT) | 0.533T | 0.95/T | −4.1% |
| Hamming 0.54 + 0.46cos(πt/T) | [0.54/2πυ + 0.92υΤ2/π(1–4υ2T2)] sin(2πυT) | 0.54T | 0.91/T | +0.7% |
| 3-term Blackman–Harris 0.42323 + 0.49755cos(πt/T) + 0.07922cos(2πt/T) | {0.42323/2πυ + υΤ2 [0.9951/π(1 − 4υ2T2) − 0.15844/4π(1– υ2T2)]} sin(2πυT) | 0.42323T | 1.14/T | −0.03% |
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Chen, S.-P.; Taylor, S.M.; Huang, S.; Zheng, B. A Comparative Assessment of Several Deconvolution Methods Used for Fourier Transform Nuclear Magnetic Resonance Spectroscopy. Magnetochemistry 2026, 12, 15. https://doi.org/10.3390/magnetochemistry12010015
Chen S-P, Taylor SM, Huang S, Zheng B. A Comparative Assessment of Several Deconvolution Methods Used for Fourier Transform Nuclear Magnetic Resonance Spectroscopy. Magnetochemistry. 2026; 12(1):15. https://doi.org/10.3390/magnetochemistry12010015
Chicago/Turabian StyleChen, Shu-Ping, Sandra M. Taylor, Sai Huang, and Baoling Zheng. 2026. "A Comparative Assessment of Several Deconvolution Methods Used for Fourier Transform Nuclear Magnetic Resonance Spectroscopy" Magnetochemistry 12, no. 1: 15. https://doi.org/10.3390/magnetochemistry12010015
APA StyleChen, S.-P., Taylor, S. M., Huang, S., & Zheng, B. (2026). A Comparative Assessment of Several Deconvolution Methods Used for Fourier Transform Nuclear Magnetic Resonance Spectroscopy. Magnetochemistry, 12(1), 15. https://doi.org/10.3390/magnetochemistry12010015

