Nanofiltration Membranes for Efficient Lithium Extraction from Salt-Lake Brine: A Critical Review.

IF 6.7 Q1 ENGINEERING, ENVIRONMENTAL
ACS Environmental Au Pub Date : 2024-11-20 eCollection Date: 2025-01-15 DOI:10.1021/acsenvironau.4c00061
Ming Yong, Yang Yang, Liangliang Sun, Meng Tang, Zhuyuan Wang, Chao Xing, Jingwei Hou, Min Zheng, Ting Fong May Chui, Zhikao Li, Zhe Yang
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引用次数: 0

Abstract

The global transition to clean energy technologies has escalated the demand for lithium (Li), a critical component in rechargeable Li-ion batteries, highlighting the urgent need for efficient and sustainable Li+ extraction methods. Nanofiltration (NF)-based separations have emerged as a promising solution, offering selective separation capabilities that could advance resource extraction and recovery. However, an NF-based lithium extraction process differs significantly from conventional water treatment, necessitating a paradigm shift in membrane materials design, performance evaluation metrics, and process optimization. In this review, we first explore the state-of-the-art strategies for NF membrane modifications. Machine learning was employed to identify key parameters influencing Li+ extraction efficiency, enabling the rational design of high-performance membranes. We then delve into the evolution of performance evaluation metrics, transitioning from the traditional permeance-selectivity trade-off to a more relevant focus on Li+ purity and recovery balance. A system-scale analysis considering specific energy consumption, flux distribution uniformity, and system-scale Li+ recovery and purity is presented. The review also examines process integration and synergistic combinations of NF with emerging technologies, such as capacitive deionization. Techno-economic and lifecycle assessments are also discussed to provide insights into the economic viability and environmental sustainability of NF-based Li+ extraction. Finally, we highlight future research directions to bridge the gap between fundamental research and practical applications, aiming to accelerate the development of sustainable and cost-effective Li+ extraction methods.

纳滤膜在盐湖卤水中高效提取锂的研究进展。
随着全球向清洁能源技术的过渡,对锂(Li)的需求不断上升,锂(Li)是可充电锂离子电池的关键组成部分,这凸显了对高效、可持续锂离子提取方法的迫切需求。基于纳滤(NF)的分离已经成为一种很有前途的解决方案,它提供了选择性分离能力,可以促进资源的提取和回收。然而,基于nf的锂提取工艺与传统水处理有很大不同,需要在膜材料设计、性能评估指标和工艺优化方面进行范式转变。在这篇综述中,我们首先探讨了NF膜修饰的最新策略。利用机器学习识别影响Li+提取效率的关键参数,实现高性能膜的合理设计。然后,我们深入研究了性能评估指标的演变,从传统的渗透-选择性权衡过渡到更相关的关注Li+纯度和回收率平衡。提出了考虑比能耗、通量分布均匀性和系统尺度Li+回收率和纯度的系统尺度分析。本综述还研究了NF与新兴技术(如电容去离子)的过程整合和协同组合。还讨论了技术经济和生命周期评估,以提供对nf基Li+提取的经济可行性和环境可持续性的见解。最后,我们指出了未来的研究方向,以弥合基础研究与实际应用之间的差距,旨在加快可持续和经济高效的Li+提取方法的发展。
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来源期刊
ACS Environmental Au
ACS Environmental Au 环境科学-
CiteScore
7.10
自引率
0.00%
发文量
0
期刊介绍: ACS Environmental Au is an open access journal which publishes experimental research and theoretical results in all aspects of environmental science and technology both pure and applied. Short letters comprehensive articles reviews and perspectives are welcome in the following areas:Alternative EnergyAnthropogenic Impacts on Atmosphere Soil or WaterBiogeochemical CyclingBiomass or Wastes as ResourcesContaminants in Aquatic and Terrestrial EnvironmentsEnvironmental Data ScienceEcotoxicology and Public HealthEnergy and ClimateEnvironmental Modeling Processes and Measurement Methods and TechnologiesEnvironmental Nanotechnology and BiotechnologyGreen ChemistryGreen Manufacturing and EngineeringRisk assessment Regulatory Frameworks and Life-Cycle AssessmentsTreatment and Resource Recovery and Waste Management
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