Jakobsen Hans J, Hove Anders R, Hazell Rita G, Bildsøe Henrik, Skibsted Jørgen
Instrument Centre for Solid-State NMR Spectroscopy, Department of Chemistry, University of Aarhus, DK-8000 Aarhus C, Denmark.
Magn Reson Chem. 2006 Mar;44(3):348-56. doi: 10.1002/mrc.1772.
The high resolution offered by magic-angle spinning (MAS), when compared to the static condition in solid-state NMR of powders, has been used to full advantage in a (14)N MAS NMR study of some ammonium salts: CH(3)NH(3)Cl, (NH(4))(2)(COO)(2) x H(2)O, (CH(3))(3)(C(6)H(5)CH(2))NCl, (CH(3))(3)(C(6)H(5))NI, (n-C(4)H(9))(4)NMo(2)O(7), (NH(4))(2)HPO(4), and NH(4)H(2)PO(4). It is shown that the high-quality (14)N MAS NMR spectra, which can be obtained for these salts, allow determination of the (14)N quadrupole coupling parameters, i.e. C(Q) (the quadrupole coupling constant) and eta(Q) (the asymmetry parameter), with very high precision. In particular, it is shown that precise C(Q), eta(Q) parameters can be determined for at least two different (14)N sites in case the individual spinning-sideband (ssb) intensities arise from a single manifold of ssbs, i.e. the ssbs for the two sites cannot be resolved. This feature of (14)N MAS NMR, which is the first demonstration for manifolds of ssb in MAS NMR without the potential information from a central transition, becomes especially useful at the slow spinning frequencies (nu(r) = 1000-1500 Hz) applied to some of the ammonium salts studied here. The detection of the number of sites has been confirmed by the corresponding crystal structures determined from single-crystal X-ray diffraction (XRD), either in this work for the unknown structure of benzyl trimethylammonium chloride or from reports in the literature. The magnitudes of the (14)N quadrupole coupling constants for the ammonium salts studied here are in the range from C(Q) approximately 20 kHz to 1 MHz while the asymmetry parameters span the full range 0 < or = eta(Q) < or = 1. Clearly, the (14)N quadrupole coupling parameters (C(Q), eta(Q)) for ammonium ions appear highly sensitive toward crystal structure and therefore appreciably more informative for the characterization of ammonium salts in comparison to the isotropic (14)N (or (15)N) chemical shifts.
与粉末状固态核磁共振的静态条件相比,魔角旋转(MAS)提供的高分辨率在一些铵盐的(14)N MAS核磁共振研究中得到了充分利用:CH(3)NH(3)Cl、(NH(4))(2)(COO)(2)·H(2)O、(CH(3))(3)(C(6)H(5)CH(2))NCl、(CH(3))(3)(C(6)H(5))NI、(n-C(4)H(9))(4)NMo(2)O(7)、(NH(4))(2)HPO(4)和NH(4)H(2)PO(4)。结果表明,这些盐可以获得高质量的(14)N MAS核磁共振谱,从而能够以非常高的精度测定(14)N四极耦合参数,即C(Q)(四极耦合常数)和eta(Q)(不对称参数)。特别值得指出的是,如果各个旋转边带(ssb)强度来自单一的ssb流形,即两个位点的ssb无法分辨,那么至少可以针对两个不同的(14)N位点确定精确的C(Q)、eta(Q)参数。(14)N MAS核磁共振的这一特性,是在没有中心跃迁潜在信息的情况下,首次在MAS核磁共振中证明ssb流形,在应用于本文研究的一些铵盐的慢旋转频率(νr = 1000 - 1500 Hz)时变得尤为有用。通过单晶X射线衍射(XRD)确定的相应晶体结构,证实了位点数量的检测结果,对于苄基三甲基氯化铵的未知结构,是在本工作中完成的,对于其他结构则来自文献报道。本文研究的铵盐的(14)N四极耦合常数大小范围为C(Q)约20 kHz至1 MHz,而不对称参数涵盖0≤eta(Q)≤1的整个范围。显然,铵离子的(14)N四极耦合参数(C(Q),eta(Q))对晶体结构高度敏感,因此与各向同性的(14)N(或(15)N)化学位移相比,对于铵盐的表征更具信息量。