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首页> 外文期刊>The Journal of Chemical Physics >Features of polymer chain dynamics as revealed by intermolecular nuclear magnetic dipole-dipole interaction: Model calculations and field-cycling NMR relaxometry
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Features of polymer chain dynamics as revealed by intermolecular nuclear magnetic dipole-dipole interaction: Model calculations and field-cycling NMR relaxometry

机译:分子间核磁偶极-偶极相互作用揭示的聚合物链动力学特征:模型计算和场循环核磁共振弛豫

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Proton NMR phenomena such as spin-lattice relaxation, free-induction decays, and solid echoes are analyzed with respect to contributions by intermolecular dipole-dipole interactions in polymer melts. The intermolecular dipole-dipole correlation function is calculated by taking into account the correlation hole effect characteristic for polymer melts. It is shown that the ratio between the intraand intermolecular contributions to NMR measurands depends on the degree of isotropy of chain dynamics anticipated in different models. This, in particular, refers to the tube/reptation model that is intrinsically anisotropic in clear contrast to n-renormalized Rouse models, where no such restriction is implied. Due to anisotropy, the tube/reptation model predicts that the intramolecular contribution to the dipole-dipole correlation function increases with time relative to the intermolecular contribution. Therefore, the intramolecular contribution is expected to dominate NMR measurands by tendency at long times (or low frequencies). On the other hand, the isotropic nature of the n-renormalized Rouse model suggests that the intermolecular contribution tends to prevail on long-time scales (or low frequencies). Actually, theoretical estimations and the analysis of experimental spin-lattice relaxation data indicate that the intermolecular contribution to proton NMR measurands is no longer negligible for times longer than 10~(-7) s–10~(-6) s corresponding to frequencies below the megahertz regime. Interpretations not taking this fact into account need to be reconsidered. The systematic investigation of intermolecular interactions in long-time/low frequency proton NMR promises the revelation of the dynamic features of segment displacements relative to each other in polymer melts.
机译:就聚合物熔体中分子间偶极-偶极相互作用的贡献,分析了质子核磁共振现象,如自旋晶格弛豫,自由感应衰变和固体回声。通过考虑聚合物熔体的相关孔效应特性来计算分子间偶极-偶极相关函数。结果表明,在分子内和分子间对NMR测量值的贡献之比取决于在不同模型中预期的链动力学的各向同性程度。尤其是,这是指与n重归一化的Rouse模型形成鲜明对比的本质上是各向异性的电子管/ rep缩模型,其中没有暗示这种限制。由于各向异性,管/排斥模型预测相对于分子间贡献,分子内对偶极-偶极相关函数的贡献随时间增加。因此,由于长期(或低频)的趋势,预计分子内的贡献将主导NMR测量。另一方面,n重归一化的Rouse模型的各向同性性质表明,分子间的作用倾向于在长期尺度(或低频)上占主导地位。实际上,理论估算和对实验自旋晶格弛豫数据的分析表明,分子内对质子NMR被测量物的贡献在对应于低于10〜(-7)s–10〜(-6)s的时间不再可忽略不计兆赫兹政权。不考虑这一事实的解释需要重新考虑。长期/低频质子核磁共振中分子间相互作用的系统研究有望揭示聚合物熔体中链段位移相对于彼此的动态特征。

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