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首页> 外文期刊>The American mineralogist >Forsterite, hydrous and anhydrous wadsleyite and ringwoodite (Mg2SiO4): 29Si NMR results for chemical shift anisotropy, spin-lattice relaxation, and mechanism of hydration
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Forsterite, hydrous and anhydrous wadsleyite and ringwoodite (Mg2SiO4): 29Si NMR results for chemical shift anisotropy, spin-lattice relaxation, and mechanism of hydration

机译:镁橄榄石,含水和无水的沃兹利石和林伍德石(Mg2SiO4):29Si NMR结果表明化学位移各向异性,自旋晶格弛豫和水合机理

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We present a detailed 29Si NMR spectroscopic study of isotopically enriched samples of forsterite and of anhydrous and hydrous wadsleyite and ringwoodite (α, β, and γ phases of Mg2SiO4), which complement previous extensive studies of these minerals by XRD and vibrational spectroscopy. VISi is not detected in any of the phases at levels of about 0.1 to 0.5%. When coupled with recent theoretical calculations on ringwoodite, this suggests the possibility of re-ordering of high-temperature octahedral-tetrahedral disorder during cooling. Cross-polarization (29Si{1H} CPMAS) NMR supports the protonation of O1 oxygen atoms in hydrous wadsleyite without formation of significant amounts of Si-OH groups. In contrast, new NMR peaks appear in hydrous ringwoodite that cross-polarize very rapidly, indicating very short Si-H distances and the presence of Si-OH, as expected from models in which much of the H+ substitutes into Mg2+ vacancies. Static NMR spectra provide new constraints on chemical shift anisotropies in wadsleyite and are fully consistent with the cubic structure of ringwoodite. Spin-lattice relaxation in all phases is much better fitted by a stretched exponential function than with a more conventional “T1” exponential, as expected when relaxation is dominated by paramagnetic impurities. However, the effects of paramagnetic impurity on ion contents on relaxation, and on the formation of newly observed minor peaks that may result from “pseudo-contact shifts,” appear to depend on mineral structure, and will require considerable future study to understand in detail.
机译:我们提供了详细的29Si NMR光谱学研究,研究了同位素富集的镁橄榄石以及无水和含水的辉石和镁橄榄石(Mg2SiO4的α,β和γ相)的情况,这是对先前通过XRD和振动光谱对这些矿物进行广泛研究的补充。在任何相中均未检测到约0.1%至0.5%的VISi。结合最近关于林木的理论计算,这表明在冷却过程中高温八面体-四面体无序的重新排序的可能性。交叉极化(29Si {1H} CPMAS)NMR支持在水沃兹利特石中O1氧原子的质子化而不会形成大量的Si-OH基团。相比之下,新的NMR峰出现在含水的林榴石中,该峰非常快速地交叉极化,表明非常短的Si-H距离和Si-OH的存在,这是模型预测的,其中许多H +替代为Mg2 +空位。静态NMR谱图对沃兹利石中的化学位移各向异性提供了新的限制条件,并且与林伍德石的立方结构完全一致。与传统的“ T1”指数相比,拉伸指数函数更适合拟合所有阶段的自旋晶格弛豫,这是在弛豫主要由顺磁性杂质引起的情况下所期望的。但是,顺磁杂质对离子含量的弛豫以及“伪接触位移”可能导致的新观察到的小峰形成的影响似乎取决于矿物结构,需要进行大量的未来研究才能详细理解。 。

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