Goldberga Ieva, Hung Ivan, Sarou-Kanian Vincent, Gervais Christel, Gan Zhehong, Novák-Špačková Jessica, Métro Thomas-Xavier, Leroy César, Berthomieu Dorothée, van der Lee Arie, Bonhomme Christian, Laurencin Danielle
ICGM, Univ Montpellier, CNRS, ENSCM, 34293 Montpellier, France.
National High Magnetic Laboratory (NHMFL), Tallahassee, Florida 32310, United States.
Inorg Chem. 2024 Jun 3;63(22):10179-10193. doi: 10.1021/acs.inorgchem.4c00300. Epub 2024 May 10.
Oxalate ligands are found in many classes of materials, including energy storage materials and biominerals. Determining their local environments at the atomic scale is thus paramount to establishing the structure and properties of numerous phases. Here, we show that high-resolution O solid-state NMR is a valuable asset for investigating the structure of crystalline oxalate systems. First, an efficient O-enrichment procedure of oxalate ligands is demonstrated using mechanochemistry. Then, O-enriched oxalates were used for the synthesis of the biologically relevant calcium oxalate monohydrate (COM) phase, enabling the analysis of its structure and heat-induced phase transitions by high-resolution O NMR. Studies of the low-temperature COM form (LT-COM), using magnetic fields from 9.4 to 35.2 T, as well as C-O MQ/D-RINEPT and O{H} MQ/REDOR experiments, enabled the 8 inequivalent oxygen sites of the oxalates to be resolved, and tentatively assigned. The structural changes upon heat treatment of COM were also followed by high-resolution O NMR, providing new insight into the structures of the high-temperature form (HT-COM) and anhydrous calcium oxalate α-phase (α-COA), including the presence of structural disorder in the latter case. Overall, this work highlights the ease associated with O-enrichment of oxalate oxygens, and how it enables high-resolution solid-state NMR, for "NMR crystallography" investigations.
草酸配体存在于许多类材料中,包括储能材料和生物矿物质。因此,在原子尺度上确定它们的局部环境对于建立众多物相的结构和性质至关重要。在这里,我们表明高分辨率的O固态核磁共振是研究结晶草酸体系结构的宝贵手段。首先,利用机械化学方法展示了一种有效的草酸配体O富集程序。然后,将富含O的草酸盐用于合成与生物相关的一水合草酸钙(COM)相,从而能够通过高分辨率O核磁共振分析其结构和热诱导相变。使用9.4至35.2 T的磁场对低温COM形式(LT-COM)进行研究,以及进行C-O MQ/D-RINEPT和O{H} MQ/REDOR实验,使得草酸盐的8个不等价氧位点得以分辨并初步归属。通过高分辨率O核磁共振也跟踪了COM热处理后的结构变化,为高温形式(HT-COM)和无水草酸钙α相(α-COA)的结构提供了新的见解,包括后者存在结构无序的情况。总体而言,这项工作突出了草酸氧富集的简便性,以及它如何实现用于“核磁共振晶体学”研究的高分辨率固态核磁共振。