Manjunatha Reddy G N, Guru Row T N, Suryaprakash N
NMR Research Centre, Indian Institute of Science, SIF, Bangalore, Karnataka 560 012, India.
J Magn Reson. 2009 Feb;196(2):119-26. doi: 10.1016/j.jmr.2008.10.018. Epub 2008 Oct 31.
The blend of spin topological filtering and the spin state selective detection of single quantum transitions by the two dimensional multiple quantum-single quantum correlation and higher quantum resolved techniques have been employed for simplifying the complexity of scalar coupled (1)H NMR spectra. The conventional two dimensional COSY and TOCSY experiments, though identify the coupled spin networks, fail to differentiate them due to severe overlap of transitions. Non-selective excitation of homonuclear higher quantum of protons results in filtering of spin systems irrespective of their spin topologies. The spin state selection by passive (19)F spins provides fewer transitions in each cross section of the single quantum dimension simplifying the analyses of the complex spectra. The degenerate single quantum transitions are further discerned by spin selective double and/or triple quantum resolved experiments that mimic simultaneous heteronuclear and selective homonuclear decoupling in the higher quantum dimension. The techniques aided the determination of precise values of spectral parameters and relative signs of the couplings.
自旋拓扑滤波与通过二维多量子 - 单量子关联和更高量子分辨技术对单量子跃迁进行自旋态选择性检测相结合,已被用于简化标量耦合的(1)H NMR谱的复杂性。传统的二维COSY和TOCSY实验虽然能识别耦合的自旋网络,但由于跃迁严重重叠而无法区分它们。质子同核更高量子的非选择性激发导致自旋系统的滤波,而不考虑其自旋拓扑结构。通过被动(19)F自旋进行自旋态选择,在单量子维度的每个截面中提供较少的跃迁,从而简化了复杂谱的分析。简并的单量子跃迁通过自旋选择性双量子和/或三量子分辨实验进一步辨别,这些实验在更高量子维度中模拟同时的异核和选择性同核去耦。这些技术有助于确定光谱参数的精确值和耦合的相对符号。