Pulido Ruth, Naveas Nelson, Graber Teófilo, Martin-Palma Raúl J, Agulló-Rueda Fernando, Brito Iván, Morales Carlos, Soriano Leonardo, Pascual Laura, Marini Carlo, Hernández-Montelongo Jacobo, Manso Silván Miguel
Departamento de Física Aplicada and Instituto Universitario de Ciencia de Materiales Nicolás Cabrera, Universidad Autónoma de Madrid, 28049 Madrid, Spain.
Departamento de Ingeniería Química y Procesos de Minerales, Universidad de Antofagasta, Avenida Angamos 601, Antofagasta, Chile.
Dalton Trans. 2021 Aug 21;50(31):10765-10778. doi: 10.1039/d1dt01638e. Epub 2021 Jul 21.
Lithium manganese oxides (LMOs) are key materials due to their role in Li-ion batteries and lithium recovery from aqueous lithium resources. In the present work, we investigated the effect of the crystallization temperature on the formation by hydrothermal synthesis of LMO nanocomposites with high Li/Mn ratios. It is demonstrated that LMOs with a high Li/Mn ratio can be formed by systematically favoring the lithium-rich layered monoclinic phase (LiMnO) in a mixture of monoclinic and spinel crystalline phases. LMO nanocomposites have been characterized in terms of morphology, size, crystallinity, chemical composition and surface properties. Moreover, lithium adsorption experiments were conducted using acid-treated LMOs (HMOs) to evaluate the functionality of the nanocomposites as lithium adsorbent materials in a LiCl buffer solution. This study spotlights the structural, compositional, and functional properties of different LMO nanocomposites obtained by the hydrothermal method using the same Li and Mn precursor compounds at slightly different crystallization temperatures. According to our knowledge, this is the first report of the successful application of the lithium-rich LiMnO phase in lithium manganese oxide nanocomposites as lithium adsorbent materials. Therefore, specific LMO nanocomposites with controlled amounts of the layered phase can be engineered to optimize lithium recovery from aqueous lithium resources.
锂锰氧化物(LMOs)因其在锂离子电池中的作用以及从含水锂资源中回收锂的功能而成为关键材料。在本研究中,我们研究了结晶温度对通过水热合成法制备高锂/锰比LMO纳米复合材料的影响。结果表明,通过在单斜晶相和尖晶石晶相的混合物中系统地促进富锂层状单斜晶相(LiMnO),可以形成高锂/锰比的LMOs。已对LMO纳米复合材料的形态、尺寸、结晶度、化学成分和表面性质进行了表征。此外,使用酸处理的LMOs(HMOs)进行了锂吸附实验,以评估纳米复合材料在LiCl缓冲溶液中作为锂吸附材料的功能。本研究重点关注了在稍有不同的结晶温度下,使用相同的锂和锰前驱体化合物通过水热法获得的不同LMO纳米复合材料的结构、组成和功能特性。据我们所知,这是首次报道将富锂LiMnO相成功应用于锂锰氧化物纳米复合材料中作为锂吸附材料。因此,可以设计具有可控层状相含量的特定LMO纳米复合材料,以优化从含水锂资源中回收锂的过程。