Magnetic Resonance Center (CERM), University of Florence, and Consorzio Interuniversitario Risonanze Magnetiche di Metalloproteine (CIRMMP), via L. Sacconi 6, 50019 Sesto Fiorentino, Italy.
Department of Chemistry "Ugo Schiff", University of Florence, via della Lastruccia 3, 50019 Sesto Fiorentino, Italy.
Anal Chem. 2020 Mar 17;92(6):4451-4458. doi: 10.1021/acs.analchem.9b05420. Epub 2020 Mar 3.
We present a processing method, based on the multivariate curve resolution approach (MCR), to denoise 2D solid-state NMR spectra, yielding a substantial S/N ratio increase while preserving the lineshapes and relative signal intensities. These spectral features are particularly important in the quantification of silicon species, where sensitivity is limited by the low natural abundance of the Si nuclei and by the dilution of the intrinsic protons of silica, but can be of interest also when dealing with other intermediate-to-low receptivity nuclei. This method also offers the possibility of coprocessing multiple 2D spectra that have the signals at the same frequencies but with different intensities (e.g.: as a result of a variation in the mixing time). The processing can be carried out on the time-domain data, thus preserving the possibility of applying further processing to the data. As a demonstration, we have applied Cadzow denoising on the MCR-processed FIDs, achieving a further increase in the S/N ratio and more effective denoising also on the transients at longer indirect evolution times. We have applied the combined denoising on a set of experimental data from a lysozyme-silica composite.
我们提出了一种基于多元曲线分辨方法(MCR)的处理方法,用于对 2D 固态 NMR 光谱进行去噪,在保持谱线形状和相对信号强度的同时,显著提高信噪比。这些谱学特征在硅物种的定量中尤为重要,因为硅核的天然丰度低,以及二氧化硅中固有质子的稀释限制了灵敏度,但在处理其他中低接受性核时也可能具有重要意义。该方法还提供了同时处理多个在相同频率但强度不同的 2D 光谱的可能性(例如:由于混合时间的变化)。处理可以在时域数据上进行,从而保留对数据进行进一步处理的可能性。作为演示,我们已经将 Cadzow 去噪应用于 MCR 处理后的 FIDs,在更长的间接演化时间的瞬变上也实现了信噪比的进一步提高和更有效的去噪。我们已经将联合去噪应用于一组来自溶菌酶-二氧化硅复合材料的实验数据。