Department of Chemistry and Centre for Catalysis Research and Innovation, University of Ottawa, 10 Marie Curie Pvt., Ottawa, Ontario, Canada.
Phys Chem Chem Phys. 2011 Jul 21;13(27):12413-20. doi: 10.1039/c1cp20572b. Epub 2011 Jun 1.
Rhenium-185/187 solid-state nuclear magnetic resonance (SSNMR) experiments using NaReO(4) and NH(4)ReO(4) powders provide unambiguous evidence for the existence of high-order quadrupole-induced effects (HOQIE) in SSNMR spectra. Fine structure, not predicted by second-order perturbation theory, has been observed in the (185/187)Re SSNMR spectrum of NaReO(4) at 11.75 T, where the ratio of the Larmor frequency (ν(0)) to the quadrupole frequency (ν(Q)) is ∼2.6. This is the first experimental observation that under static conditions, HOQIE can directly manifest in SSNMR powder patterns as additional fine structure. Using NMR simulation software which includes the quadrupole interaction (QI) exactly, extremely large (185/187)Re nuclear quadrupole coupling constants (C(Q)) are accurately determined. QI parameters are confirmed independently using solid-state (185/187)Re nuclear quadrupole resonance (NQR). We explain the spectral origin of the HOQIE and provide general guidelines that may be used to assess when HOQIE may impact the interpretation of the SSNMR powder pattern of any spin-5/2 nucleus in a large, axially symmetric electric field gradient (EFG). We also quantify the errors incurred when modeling SSNMR spectra for any spin-5/2 nucleus within an axial EFG using second-order perturbation theory. Lastly, we measure rhenium chemical shifts in the solid state for the first time.
使用 NaReO(4) 和 NH(4)ReO(4) 粉末的铼-185/187 固态核磁共振 (SSNMR) 实验为 SSNMR 谱中高阶四极诱导效应 (HOQIE) 的存在提供了明确的证据。在 11.75 T 下,NaReO(4) 的 (185/187)Re SSNMR 谱中观察到了二阶微扰理论未预测到的精细结构,其中拉莫尔频率 (ν(0)) 与四极频率 (ν(Q)) 的比值约为 2.6。这是第一个实验观察结果,即在静态条件下,HOQIE 可以直接在 SSNMR 粉末图谱中表现为附加的精细结构。使用包括精确的四极相互作用 (QI) 的 NMR 模拟软件,可以准确确定非常大的 (185/187)Re 核四极耦合常数 (C(Q))。通过固态 (185/187)Re 核四极共振 (NQR) 独立确认 QI 参数。我们解释了 HOQIE 的光谱起源,并提供了一般准则,可用于评估在大的轴对称电场梯度 (EFG) 中,HOQIE 何时可能影响任何自旋-5/2 核的 SSNMR 粉末图谱的解释。我们还量化了在使用二阶微扰理论对任何具有轴对称 EFG 的自旋-5/2 核的 SSNMR 光谱进行建模时产生的误差。最后,我们首次在固态中测量了铼的化学位移。