Husar Richard, Dumas Thomas, Schlegel Michel L, Schlegel Daniel, Guillaumont Dominique, Solari Pier Lorenzo, Moisy Philippe
CEA, DES, ISEC, DMRC, Université de Montpellier, Marcoule, France.
CEA, DES-Service d'Etudes Analytiques et de Réactivité des Surfaces (SEARS), CEA, Université Paris-Sacly, 911191 Gif-sur-Yvette, France.
J Synchrotron Radiat. 2022 Jan 1;29(Pt 1):1-10. doi: 10.1107/S1600577521011115.
A spectroelectrochemical setup has been developed to investigate radioactive elements in small volumes (0.7 to 2 ml) under oxidation-reduction (redox) controlled conditions by X-ray absorption spectroscopy (XAS). The cell design is presented together with in situ XAS measurements performed during neptunium redox reactions. Cycling experiments on the NpO/NpO redox couple were applied to qualify the cell electrodynamics using XANES measurements and its ability to probe modifications in the neptunyl hydration shell in a 1 mol l HNO solution. The XAS results are in agreement with previous structural studies and the NpO/NpO standard potential, determined using Nernst methods, is consistent with measurements based on other techniques. Subsequently, the NpO, NpO and Np ion structures in solution were stabilized and measured using EXAFS. The resulting fit parameters are again compared with other results from the literature and with theoretical models in order to evaluate how this spectroelectrochemistry experiment succeeds or fails to stabilize the oxidation states of actinides. The experiment succeeded in: (i) implementing a robust and safe XAS device to investigate unstable radioactive species, (ii) evaluate in a reproducible manner the NpO/NpO standard potential under dilute conditions and (iii) clarify mechanistic aspects of the actinyl hydration sphere in solution. In contrast, a detailed comparison of EXAFS fit parameters shows that this method is less appropriate than the majority of the previously reported chemical methods for the stabilization of the Np ion.
已开发出一种光谱电化学装置,用于在氧化还原(redox)控制条件下,通过X射线吸收光谱法(XAS)研究小体积(0.7至2毫升)中的放射性元素。介绍了该电池的设计以及在镎氧化还原反应过程中进行的原位XAS测量。对NpO/NpO氧化还原电对进行循环实验,以利用XANES测量来确定电池的电动力学特性,以及其在1 mol·l HNO溶液中探测镎酰水合壳层变化的能力。XAS结果与先前的结构研究一致,并且使用能斯特方法确定的NpO/NpO标准电位与基于其他技术的测量结果一致。随后,使用EXAFS对溶液中的NpO、NpO和Np离子结构进行了稳定化处理和测量。再次将所得的拟合参数与文献中的其他结果以及理论模型进行比较,以评估该光谱电化学实验在稳定锕系元素氧化态方面的成败。该实验成功实现了:(i)实施一种稳健且安全的XAS装置来研究不稳定的放射性物种;(ii)以可重复的方式评估稀溶液条件下的NpO/NpO标准电位;(iii)阐明溶液中镎酰水合球的机理方面。相比之下,对EXAFS拟合参数的详细比较表明,该方法在稳定Np离子方面不如大多数先前报道的化学方法合适。