二维纳米流体膜中锂离子的输运

IF 13.4 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Gyu Won Kim, Minwoo Lee, Jihong Bae, Jihoon Han, Seokmin Park, Wooyoung Shim
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引用次数: 0

摘要

由于锂在锂离子电池(LIBs)和其他应用中的关键作用,对锂的需求不断增长,因此需要从海水等水基资源中高效提取锂。在各种方法中,二维通道膜由于其可调的离子选择性和可扩展性而成为有希望的候选者。虽然在实现高Li+/Mg2+选择性方面取得了重大进展,但由于其相似的性质,提高Li+离子对海水中主要单价阳离子Na+离子的选择性仍然是一个挑战。本文对二维通道膜中Li+选择性的基本机制进行了全面分析,重点研究了离子传输的脱水和扩散过程。受生物离子通道原理的启发,我们确定了影响能量屏障和形成脱水和扩散之间相互作用的关键因素——通道大小、表面电荷和结合位点。我们强调了利用这些因素来提高Li+/Na+选择性和解决离子传输中抵消效应带来的挑战的最新进展。虽然已经取得了实质性的进展,但缺乏指导这些变量在渗透步骤中的相互作用的综合原则,这是优化Li+/Na+选择性的关键障碍。尽管如此,由于其固有的化学稳定性和制造可扩展性,如果这些挑战能够得到解决,2D通道膜将为锂提取提供巨大的潜力。本文综述了二维通道膜技术的现状,并概述了实现增强Li+离子选择性的未来方向,特别是在海水应用中。图形抽象
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Li-ion transport in two-dimensional nanofluidic membranes

The growing demand for lithium, driven by its critical role in lithium-ion batteries (LIBs) and other applications, has intensified the need for efficient extraction methods from aqua-based resources such as seawater. Among various approaches, 2D channel membranes have emerged as promising candidates due to their tunable ion selectivity and scalability. While significant progress has been made in achieving high Li+/Mg2+ selectivity, enhancing Li+ ion selectivity over Na+ ion, the dominant monovalent cation in seawater, remains a challenge due to their similar properties. This review provides a comprehensive analysis of the fundamental mechanisms underlying Li+ selectivity in 2D channel membranes, focusing on the dehydration and diffusion processes that dictate ion transport. Inspired by the principles of biological ion channels, we identify key factors—channel size, surface charge, and binding sites—that influence energy barriers and shape the interplay between dehydration and diffusion. We highlight recent progress in leveraging these factors to enhance Li+/Na+ selectivity and address the challenges posed by counteracting effects in ion transport. While substantial advancements have been made, the lack of comprehensive principles guiding the interplay of these variables across permeation steps represents a key obstacle to optimizing Li+/Na+ selectivity. Nonetheless, with their inherent chemical stability and fabrication scalability, 2D channel membranes offer significant potential for lithium extraction if these challenges can be addressed. This review provides insights into the current state of 2D channel membrane technologies and outlines future directions for achieving enhanced Li+ ion selectivity, particularly in seawater applications.

Graphical Abstract

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来源期刊
Nano Convergence
Nano Convergence Engineering-General Engineering
CiteScore
15.90
自引率
2.60%
发文量
50
审稿时长
13 weeks
期刊介绍: Nano Convergence is an internationally recognized, peer-reviewed, and interdisciplinary journal designed to foster effective communication among scientists spanning diverse research areas closely aligned with nanoscience and nanotechnology. Dedicated to encouraging the convergence of technologies across the nano- to microscopic scale, the journal aims to unveil novel scientific domains and cultivate fresh research prospects. Operating on a single-blind peer-review system, Nano Convergence ensures transparency in the review process, with reviewers cognizant of authors' names and affiliations while maintaining anonymity in the feedback provided to authors.
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