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Electrostatic influence on rotational mobilities of sol-gel-encapsulated solutes by NMR and EPR spectroscopies

机译:静电对NMR和EPR光谱法对溶胶-凝胶包裹的溶质的旋转迁移率的影响

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The rotational mobilities of small solute molecules encapsulated in tetramethyl orthosilicate (TMOS) sol-gels have been investigated by EPR spectroscopy of encapsulated nitroxide probes and by high-resolution NMR spectroscopic measurements of transferred NOE's (trNOE's), of T-1's, and of T-1's in the rotating frame (T(1)rho). The two spectroscopic methods are sensitive to motions on different time scales and hence, are nicely complementary. Suites of neutral, positively, and negatively charged nitroxide probes (EPR) and of simple diamagnetic small molecules (NMR) were selected to disclose influences of electrostatic interactions with the sol-gel walls and to probe the presence of multiple populations of molecules in distinct regions of the sol-gel pores. For neutral and negatively charged solute probes, both techniques disclose a single population with a significantly increased average rotational correlation time, which we interpret at least in part as resulting from exchange between free-volume and transiently immobilized surface populations. The electrostatic attraction between cationic probes and the negatively charged sol-gel walls causes the positively charged probes to be more effectively immobilized and/or causes a greater percentage of probes to undergo this transient immobilization. The EPR spectra directly disclose a population of cationic probes which are immobilized on the X-band EPR time scale: tau(c) greater than or similar to 10(-7) s. However, NMR measurements of trNOE's and of T(1)rho demonstrate that this population does exchange with the free-volume probes on the slower time scale of NMR. This approach is equally applicable to the study of solutes within other types of confined spaces, as well.
机译:已通过封装的一氧化氮探针的EPR光谱和通过高分辨率的NMR光谱测量了转移的NOE(trNOE),T-1和T的小分子溶质,研究了包裹在四甲基原硅酸(TMOS)溶胶中的小溶质分子的旋转迁移率。 -1在旋转框架(T(1)rho)中。两种光谱方法对不同时间尺度上的运动敏感,因此是很好的互补。选择了中性,带正电和带负电的一氧化氮探针(EPR)和简单的反磁性小分子(NMR)的套件,以揭示与溶胶-凝胶壁的静电相互作用的影响,并探测在不同区域中存在的多个分子种群的凝胶孔。对于中性和带负电荷的溶质探针,这两种技术都公开了一个具有明显增加的平均旋转相关时间的单个种群,我们至少将其部分解释为自由体积和短暂固定的表面种群之间的交换所导致的结果。阳离子探针和带负电荷的溶胶-凝胶壁之间的静电吸引使带正电荷的探针更有效地被固定和/或引起更大百分比的探针经历这种瞬时固定。 EPR光谱直接公开了固定在X波段EPR时间尺度:tau(c)大于或类似于10(-7)s上的阳离子探针。但是,对trNOE和T(1)rho的NMR测量表明,该群体确实在NMR较慢的时间尺度上与自由体积探针交换。这种方法同样适用于研究其他类型密闭空间中的溶质。

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