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Development and application of novel NMR methodologies for the in situ characterization of crystallization processes of metastable crystalline materials

机译:用于亚稳态结晶材料结晶过程原位表征的新型NMR方法的开发和应用

摘要

In this contribution we report on the development and application of modern NMR approaches for the in situ characterization of the crystallization of metastable materials. The work was performed within the framework of the DFG priority programme SPP 1415 “Crystalline Non-Equilibrium Phases”. As one of the goals of this project, the development of a NMR methodology which enables an analysis of local structural motifs on short (1–2 Å) and extended (2–6 Å) length scales without the need for fast magic angle spinning (MAS) has been defined, since the enormous centripetal forces which occur during fast sample rotation (up to 107 g) may intervene with the chemical or physical process which is being monitored. To achieve this goal, we developed a magic angle turning probe and pulse sequences allowing to trace the isotropic chemical shifts and heteronuclear dipolar couplings and hence the determination of structural motifs on short and intermediate length scales. With the implementation of novel inductive heating approaches the range of accessible rotation frequencies for in situ high temperature NMR measurements has been enlarged, now covering the νMAS range of 0–10 kHz with an accessible temperature of up to 700°C. Application of NMR methodologies for the characterization of crystallization processes and the structure and dynamics of novel phases, partially in joint collaborations within the priority program, are also reported.
机译:在这一贡献中,我们报告了用于亚稳态材料结晶原位表征的现代NMR方法的开发和应用。这项工作是在DFG优先计划SPP 1415“结晶非平衡阶段”的框架内完成的。作为该项目的目标之一,开发了一种NMR方法,可以在短(1-2Å)和扩展(2-6Å)长度尺度上分析局部结构图案,而无需快速幻角旋转(之所以定义了MAS,是因为在快速旋转样品过程中产生的巨大向心力(最大107 g)可能会干扰正在监测的化学或物理过程。为了实现这个目标,我们开发了一种神奇的角度转弯探针和脉冲序列,可以追踪各向同性的化学位移和异核偶极耦合,从而确定短和中等长度尺度上的结构基序。随着新型感应加热方法的实施,用于现场NMR现场测量的旋转频率范围得到了扩大,目前覆盖了0–10 kHz的νMAS范围,最高可达到700°C。还报告了在部分优先项目中的联合合作中,NMR方法在表征结晶过程以及新型相的结构和动力学方面的应用。

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