Hansen Michael Ryan, Brorson Michael, Bildsøe Henrik, Skibsted Jørgen, Jakobsen Hans J
Instrument Centre for Solid-State NMR Spectroscopy, Interdisciplinary Nanoscience Center (iNANO), Department of Chemistry, University of Aarhus, Aarhus C, Denmark.
J Magn Reson. 2008 Feb;190(2):316-26. doi: 10.1016/j.jmr.2007.11.014. Epub 2007 Nov 28.
The WURST (wideband uniform rate smooth truncation) and hyperbolic secant (HS) pulse elements have each been employed as pairs of inversion pulses to induce population transfer (PT) between the four energy levels in natural abundance solid-state (33)S (spin I=3/2) MAS NMR, thereby leading to a significant gain in intensity for the central transition (CT). The pair of inversion pulses are applied to the satellite transitions for a series of inorganic sulfates, the sulfate ions in the two cementitious materials ettringite and thaumasite, and the two tetrathiometallates (NH(4))(2)WS(4) and (NH(4))(2)MoS(4). These materials all exhibit (33)S quadrupole coupling constants (C(Q)) in the range 0.1-1.0 MHz, with precise C(Q) values being determined from analysis of the PT enhanced (33)S MAS NMR spectra. The enhancement factors for the WURST and HS elements are quite similar and are all in the range 1.74-2.25 for the studied samples, in excellent agreement with earlier reports on HS enhancement factors (1.6-2.4) observed for other spin I=3/2 nuclei with similar C(Q) values (0.3-1.2 MHz). Thus, a time saving in instrument time by a factor up to five has been achieved in natural abundance (33)S MAS NMR, a time saving which is extremely welcome for this important low-gamma nucleus.
宽带均匀速率平滑截断(WURST)脉冲元件和双曲正割(HS)脉冲元件均已被用作一对反转脉冲,以在天然丰度固态(33)S(自旋I = 3/2)的魔角旋转核磁共振(MAS NMR)中,诱导四个能级之间的布居转移(PT),从而使中心跃迁(CT)的强度显著增加。将这对反转脉冲应用于一系列无机硫酸盐、两种胶凝材料钙矾石和碳硫硅钙石中的硫酸根离子以及两种四硫代金属酸盐(NH4)2WS4和(NH4)2MoS4的卫星跃迁。这些材料的(33)S四极耦合常数(C(Q))均在0.1 - 1.0 MHz范围内,通过对PT增强的(33)S MAS NMR谱图的分析确定了精确的C(Q)值。对于所研究的样品,WURST和HS元件的增强因子非常相似,均在1.74 - 2.25范围内,与早期关于其他自旋I = 3/2且具有相似C(Q)值(0.3 - 1.2 MHz)的原子核观察到的HS增强因子(1.6 - 2.4)的报告非常吻合。因此,在天然丰度(33)S MAS NMR中实现了仪器时间节省高达五倍,对于这个重要的低γ核来说,这种时间节省是非常受欢迎的。