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Updated: Aug 19, 2026

Pure Shift Nuclear Magnetic Resonance: a New Tool for Plant Metabolomics
Published on: July 31, 2021
Clean PSYCHE Pure Shift Spectra Obtained by Deep Learning
Xiaoxu Zheng1, Wen Zhu1, Ziqiao Chen1
1Fujian Provincial Key Laboratory of Plasma and Magnetic Resonance, Department of Electronic Science, the MOE Key Laboratory of Spectrochemical Analysis & Instrumentation, Xiamen University, Xiamen361005, China.
None:
Proton (1H) nuclear magnetic resonance (NMR) is the most extensively utilized NMR technique due to its high sensitivity and information content. Nonetheless, its narrow chemical shift range and complex multiplet splitting often lead to severe spectral overlap, complicating spectral analysis. Pure shift methods address this challenge by converting weakly coupled multiplets into singlets, thereby significantly improving spectral resolution. Current pure shift methods struggle, however, with strongly coupled spin systems, yielding both main peaks that can be slightly displaced from the exact chemical shift and extra peaks, often at frequencies intermediate between the shifts of strongly coupled protons. These "strong coupling artifacts" can complicate spectral analysis. In this work, a multiscale residual network model is developed to postprocess PSYCHE pure shift spectra to remove strong coupling artifacts. Within the applicable ranges of spectral parameters, the model can correctly retain the desired pure shift signals and recover pure singlets. The method introduces no additional acquisition-related sensitivity loss by postprocessing PSYCHE spectra and exhibits superior performance compared to TSE-PSYCHE in suppressing strong coupling artifacts. Additionally, it preserves the parent PSYCHE method's direct proportionality between signal intensity and analyte concentration, enabling the monitoring of concentration changes for different analytes in a mixture. The new method offers a novel strategy for obtaining clean pure shift spectra and is expected to facilitate molecular structure elucidation and composition analysis in chemistry research.
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