用于全固态锂金属电池转换材料的(Mg,Cu,Al,Fe)基LDHs模板的氟化

IF 5.3 2区 地球科学 Q2 CHEMISTRY, PHYSICAL Applied Clay Science Pub Date : 2023-10-01 DOI:10.1016/j.clay.2023.107071
Fabien Eveillard , Katia Guérin , Nicolas Batisse , Kevin Lemoine , Abdelraouf Rouag , Diane Delbègue , Fabrice Leroux
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引用次数: 0

摘要

氟化铁和氟化铜是锂电池的转换正极材料,但它们分别具有高迟滞性和低可循环性。为了克服这些限制并利用每种氟化物的电化学特性,利用层状双氢氧化物(LDH)作为二维多金属模板合成了结合两个氧化还原中心Fe3+和Cu2+的氟化物混合物。采用共沉淀法制备了以Cu2+和Fe3+离子取代的水滑石型相,然后根据质谱监测的热演化过程选择温度,在静态模式下用氟气氟化。每次氟化处理后,材料都用x射线衍射表征,大多数LDH材料在200°C下都是稳定的,上述处理导致每种阳离子的氟化物形成。然而,在氟化之后,LDH片中的阳离子的初始分散允许氟化物的复合,使它们完全可以实现电化学转化现象,如图所示,在使用固体聚合物电解质(SPE)的金属锂电池组件中。在这种全固态电池(ASSB)配置中,通常受柱状效率的限制,在优化的组合物(高达560 mAh.g−1)中,76%的首次放电容量被回收。这种良好的可逆性使这些LDH模板非常适合未来在电化学存储领域的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Fluorination of (Mg,Cu,Al,Fe)-based LDHs template for conversion materials usable in all-solid state lithium metal batteries

Iron and copper fluorides are of interest as conversion cathode materials in lithium batteries but they suffer from high hysteresis and low cyclability, respectively. To overcome these limitations and take advantage of the electrochemical properties of each of the fluorides, fluoride mixtures that combine the two redox centers Fe3+ and Cu2+ are synthesized using Layered Double Hydroxides (LDH) as a 2D multi-metallic template. Hydrotalcite-type phases substituted with Cu2+ and Fe3+ ions are prepared by coprecipitation then fluorinated with fluorine gas in static mode at temperatures chosen according to their thermal evolution monitored by mass spectrometry. After each fluorination treatment, the materials are characterized by X-ray diffraction and most LDH materials are found stable up to 200 °C, treatment above leads to the formation of fluorides of each of the cations. The initial dispersion of the cations in the LDH sheets nevertheless allows, after fluorination, a composite of fluorides making them totally accessible to the phenomenon of electrochemical conversion shown here in a metallic lithium battery assembly with a Solid Polymer Electrolyte (SPE). In such All-Solid-State Battery (ASSB) configuration often limiting in terms of columbic efficiency, 76% the first discharge capacity is recovered in charge for an optimized composition (up to 560 mAh.g−1). This good reversibility positions these LDH templates very well for future investigations in the field of electrochemical storage.

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来源期刊
Applied Clay Science
Applied Clay Science 地学-矿物学
CiteScore
10.30
自引率
10.70%
发文量
289
审稿时长
39 days
期刊介绍: Applied Clay Science aims to be an international journal attracting high quality scientific papers on clays and clay minerals, including research papers, reviews, and technical notes. The journal covers typical subjects of Fundamental and Applied Clay Science such as: • Synthesis and purification • Structural, crystallographic and mineralogical properties of clays and clay minerals • Thermal properties of clays and clay minerals • Physico-chemical properties including i) surface and interface properties; ii) thermodynamic properties; iii) mechanical properties • Interaction with water, with polar and apolar molecules • Colloidal properties and rheology • Adsorption, Intercalation, Ionic exchange • Genesis and deposits of clay minerals • Geology and geochemistry of clays • Modification of clays and clay minerals properties by thermal and physical treatments • Modification by chemical treatments with organic and inorganic molecules(organoclays, pillared clays) • Modification by biological microorganisms. etc...
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