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利用机械化学对氧化物进行直接氧同位素标记

Direct O Isotopic Labeling of Oxides Using Mechanochemistry.

作者信息

Chen Chia-Hsin, Gaillard Emeline, Mentink-Vigier Frédéric, Chen Kuizhi, Gan Zhehong, Gaveau Philippe, Rebière Bertrand, Berthelot Romain, Florian Pierre, Bonhomme Christian, Smith Mark E, Métro Thomas-Xavier, Alonso Bruno, Laurencin Danielle

机构信息

ICGM, Univ. Montpellier, CNRS, ENSCM, Montpellier 34090, France.

National High Magnetic Field Laboratory (NHMFL), Florida State University, Tallahassee, Florida 32306, United States.

出版信息

Inorg Chem. 2020 Sep 21;59(18):13050-13066. doi: 10.1021/acs.inorgchem.0c00208. Epub 2020 Mar 13.

Abstract

While O NMR is increasingly being used for elucidating the structure and reactivity of complex molecular and materials systems, much effort is still required for it to become a routine analytical technique. One of the main difficulties for its development comes from the very low natural abundance of O (0.04%), which implies that isotopic labeling is generally needed prior to NMR analyses. However, O-enrichment protocols are often unattractive in terms of cost, safety, and/or practicality, even for compounds as simple as metal oxides. Here, we demonstrate how mechanochemistry can be used in a highly efficient way for the direct O isotopic labeling of a variety of s-, p-, and d-block oxides, which are of major interest for the preparation of functional ceramics and glasses: LiO, CaO, AlO, SiO, TiO, and ZrO. For each oxide, the enrichment step was performed under ambient conditions in less than 1 h and at low cost, which makes these synthetic approaches highly appealing in comparison to the existing literature. Using high-resolution solid-state O NMR and dynamic nuclear polarization, atomic-level insight into the enrichment process is achieved, especially for titania and alumina. Indeed, it was possible to demonstrate that enriched oxygen sites are present not only at the surface but also within the oxide particles. Moreover, information on the actual reactions occurring during the milling step could be obtained by O NMR, in terms of both their kinetics and the nature of the reactive species. Finally, it was demonstrated how high-resolution O NMR can be used for studying the reactivity at the interfaces between different oxide particles during ball-milling, especially in cases when X-ray diffraction techniques are uninformative. More generally, such investigations will be useful not only for producing O-enriched precursors efficiently but also for understanding better mechanisms of mechanochemical processes themselves.

摘要

虽然¹⁷O核磁共振越来越多地用于阐明复杂分子和材料体系的结构和反应性,但要使其成为一种常规分析技术仍需付出很多努力。其发展的主要困难之一源于¹⁷O极低的天然丰度(0.04%),这意味着在核磁共振分析之前通常需要进行同位素标记。然而,即使对于像金属氧化物这样简单的化合物,¹⁷O富集方案在成本、安全性和/或实用性方面往往缺乏吸引力。在这里,我们展示了机械化学如何能够以高效的方式用于对各种s、p和d族氧化物进行直接¹⁷O同位素标记,这些氧化物对于制备功能陶瓷和玻璃至关重要:Li₂O、CaO、Al₂O₃、SiO₂、TiO₂和ZrO₂。对于每种氧化物,富集步骤在环境条件下不到1小时内完成且成本低廉,与现有文献相比,这些合成方法极具吸引力。使用高分辨率固态¹⁷O核磁共振和动态核极化,能够在原子水平上深入了解富集过程,特别是对于二氧化钛和氧化铝。事实上,可以证明富集的氧位点不仅存在于表面,还存在于氧化物颗粒内部。此外,通过¹⁷O核磁共振可以获得关于研磨步骤中实际发生的反应的信息,包括反应动力学和反应物种的性质。最后,展示了高分辨率¹⁷O核磁共振如何用于研究球磨过程中不同氧化物颗粒之间界面的反应性,特别是在X射线衍射技术无法提供信息的情况下。更一般地说,此类研究不仅将有助于高效制备¹⁷O富集的前驱体,还将有助于更好地理解机械化学过程本身的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f450/7509767/65ab56ac9ecd/ic0c00208_0009.jpg

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