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碳酸镭的无序晶体结构及异常高的溶解度

Disordered Crystal Structure and Anomalously High Solubility of Radium Carbonate.

作者信息

Matyskin Artem V, Ebin Burçak, Allard Stefan, Torapava Natallia, Eriksson Lars, Persson Ingmar, Brown Paul L, Ekberg Christian

机构信息

Nuclear Chemistry and Industrial Materials Recycling Group, Energy and Materials Division, Department of Chemistry and Chemical Engineering, Chalmers University of Technology, Kemivägen 4, SE-41296 Gothenburg, Sweden.

MAX IV Laboratory, Lund University, Fotongatan 2, SE-22594 Lund, Sweden.

出版信息

Inorg Chem. 2023 Jul 31;62(30):12038-12049. doi: 10.1021/acs.inorgchem.3c01513. Epub 2023 Jul 21.

Abstract

Radium-226 carbonate was synthesized from radium-barium sulfate (RaBaSO) at room temperature and characterized by X-ray powder diffraction (XRPD) and extended X-ray absorption fine structure (EXAFS) techniques. XRPD revealed that fractional crystallization occurred and that two phases were formed─the major Ra-rich phase, Ra(Ba)CO, and a minor Ba-rich phase, Ba(Ra)CO, crystallizing in the orthorhombic space group (no. 62) that is isostructural with witherite (BaCO) but with slightly larger unit cell dimensions. Direct-space modeling shows that the carbonate oxygens in the major Ra(Ba)CO phase are highly disordered. The solubility of the synthesized major Ra(Ba)CO phase was studied from under- and oversaturation at 25.1 °C as a function of ionic strength using NaCl as the supporting electrolyte. It was found that the decimal logarithm of the solubility product of Ra(Ba)CO at zero ionic strength (log ) is -7.5(1) (2σ) ( = 0.05 g·L). This is significantly higher than the log of witherite of -8.56 ( = 0.01 g·L), supporting the disordered nature of the major Ra(Ba)CO phase. The limited co-precipitation of Ra within witherite, the significantly higher solubility of pure RaCO compared to witherite, and thermodynamic modeling show that the results obtained in this work for the major Ra(Ba)CO phase are also applicable to pure RaCO. The refinement of the EXAFS data reveals that radium is coordinated by nine oxygens in a broad bond distance distribution with a mean Ra-O bond distance of 2.885(3) Å (1σ). The Ra-O bond distance gives an ionic radius of Ra in a 9-fold coordination of 1.545(6) Å (1σ).

摘要

在室温下由硫酸镭钡(RaBaSO)合成了碳酸镭-226,并通过X射线粉末衍射(XRPD)和扩展X射线吸收精细结构(EXAFS)技术对其进行了表征。XRPD显示发生了分步结晶,形成了两个相——主要的富镭相Ra(Ba)CO和次要的富钡相Ba(Ra)CO,它们在正交空间群(编号62)中结晶,该空间群与毒重石(BaCO)同构,但晶胞尺寸略大。直接空间建模表明,主要的Ra(Ba)CO相中的碳酸根氧原子高度无序。以NaCl作为支持电解质,研究了合成的主要Ra(Ba)CO相在25.1°C下的欠饱和和过饱和状态下的溶解度与离子强度的关系。发现在零离子强度下Ra(Ba)CO的溶度积的常用对数(log )为-7.5(1)(2σ)( = 0.05 g·L)。这明显高于毒重石的log -8.56( = 0.01 g·L),支持了主要Ra(Ba)CO相的无序性质。镭在毒重石中的有限共沉淀、纯RaCO与毒重石相比明显更高的溶解度以及热力学建模表明,这项工作中获得的主要Ra(Ba)CO相的结果也适用于纯RaCO。EXAFS数据的精修表明,镭由九个氧原子配位,键长分布较宽,平均Ra-O键长为2.885(3) Å(1σ)。Ra-O键长给出了九配位时镭的离子半径为1.545(6) Å(1σ)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2061/10394661/fa973b259b46/ic3c01513_0002.jpg

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