NSERC-DFG SUSTAIN: ION-SIEVING CAPACITIVE EXTRACTION OF LITHIUM from Alberta Oilfield Brine towards Sustainable Supply Chain
NSERC-DFG SUSTAIN: ION-SIEVING CAPACITIVE EXTRACTION OF LITHIUM from Alberta Oilfield Brine towards Sustainable Supply Chain
批准号:
534252704
负责人:
Dr. Paolo Giusto, Ph.D.
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
--
资助国家:
德国
项目状态:
未结题
起止时间:
中文摘要
锂的需求不断增加,特别是与汽车行业向电动汽车的转变有关,这要求开发替代方法和额外的供应来源。目前,锂的提取依赖于硬岩矿石和大陆盐水,使用蒸发和化学技术。然而,预计未来几年锂的需求将不断增加,以及对这些方法的可持续性的担忧,要求为这条供应链找到替代方法。此外,在加拿大、德国等地,这些技术无法有效应用的低浓度卤水可以为锂供应链做出重大贡献。在这里,一个主要问题依赖于锂离子与其他竞争离子(如钠、镁等)的有效分离。在此基础上,提出了一种基于离子筛分电容去离子的创新方法,用于从低锂浓卤水中选择性提取锂,如阿尔伯塔油田卤水。电容去离子是一种方便的方法,因为它可以在低外加电位下储存离子并在放电时有效释放离子。为此,在具有高表面积的杂原子掺杂碳表面沉积一层具有纳米孔的薄离子筛层,该纳米孔可选择性地使锂离子跨层传输,以存储大量的锂。碳材料和离子筛层的设计是实现高选择性和高锂吸附容量的基础。最终,我们设想这项技术将能够实现锂离子的连续分离,为选择性电容去离子领域的创新铺平道路,从而实现更可持续的锂供应链。
英文摘要
The increasing demand for lithium, especially related to the shift in the automotive industry towards electric vehicles, calls for alternative methods and additional supply sources to be exploited. Currently, the lithium extraction relies on hard-rock ores and continental brines, using evaporating and chemical technologies. However, the increasing demand for lithium expected in the next years and the concerns about the sustainability related to these methods requires to find alternative methods for this supply chain. Furthermore, less concentrated brines, where these technologies cannot be efficiently applied are available both in Canada, Germany, and more and would enable to provide a significant contribution to the lithium supply chain. Here, one of the main problems relies on the efficient separation of lithium ions from other competitive ions, such as sodium, magnesium, and more. Herewith we propose an innovative method based on ion-sieving capacitive deionization for the selective extraction of lithium from low-lithium concentrated brines, such as the Alberta oilfield brines. Capacitive deionization is a convenient method as it enables to store ions under low applied potentials and effectively release them upon discharge. For the purpose, a thin ion-sieving layer with nanopores that selectively enable the transport of lithium ions across the layer will be deposited on the surface of a heteroatom-doped carbon with very high surface area to store high amounts of lithium. The design of the carbon material and the ion-sieving layer is fundamental to achieve high selectivity and high lithium adsorption capacity. Eventually, we envision that this technology will enable to achieve continuous separation of lithium ions paving the way for innovation in the field of selective capacitive deionization towards a more sustainable lithium supply chain.
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依托单位: