Zr-BTB 纳米片有助于优化正向渗透膜的结构,从而提高锂浓缩性能

IF 8.4 1区 工程技术 Q1 ENGINEERING, CHEMICAL Journal of Membrane Science Pub Date : 2024-06-03 DOI:10.1016/j.memsci.2024.122963
Miaolu He, Leihao Feng, Jin Wang, Yunlong Gao, Weiting Zhang, Lujie Nie, Jiajin Hao, Jiaqi Wang, Rui Miao, Lei Wang
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引用次数: 0

摘要

最近,低能耗的正渗透(FO)技术被用于从盐水中提取锂的锂浓缩阶段。层间 FO 膜以其优异的结构特性而闻名,但在选择合适的层间材料和探索其对胺类单体的控制机制方面仍存在挑战。作为层间材料,传统的三维纳米材料容易脱落,而没有微孔的传统二维材料则会增加水分子的传输阻力。本研究利用具有 5.4 Å 微孔的 Zr-BTB 纳米片作为层间材料,推出了一种新型 FO 膜。通过检测和模拟计算发现,在 Zr-BTB 夹层的存在下,立体阻碍和相互作用力的增加共同减缓了胺单体的扩散。这导致分离层变薄,有利于水的传输。夹层还在防止分离层形成缺陷孔隙和协助拦截盐离子方面发挥了重要作用。Zr-BTB 夹层膜的水通量为 29.14 L m-2 h-1,反向盐通量为 0.16 g m-2 h-1,均优于领域内报道的许多 FO 膜。所制备的膜在锂浓缩应用中也具有优异的性能,并通过 MD 模拟探索了其分离机理。
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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Zr-BTB nanosheets assist in optimizing the structure of forward osmosis membranes to enhance the lithium concentration performance

Recently, low-energy forward osmosis (FO) technology has been employed in the lithium concentration stage during the extraction of lithium from brine sources. The interlayer FO membrane is renowned for its exceptional structural characteristics; however, challenges remain in selecting suitable interlayer materials and exploring their control mechanisms on amine monomers. As interlayer materials, traditional 3D nanomaterials are prone to detachment, while traditional 2D materials without micropores can increase the transmission resistance of water molecules. This study introduces a novel FO membrane utilizing Zr-BTB nanosheets with 5.4 Å micropores as the interlayer material. Based on detection and simulation calculations, it was found that the increase in steric hindrance and interaction forces jointly slowed the diffusion of amine monomers in the presence of the Zr-BTB interlayer. This results in a thinner separation layer, facilitating water transport. The interlayer also plays crucial roles in preventing defective pore formation in the separation layer and assisting in intercepting salt ions. The Zr-BTB interlayer membrane exhibited a water flux of 29.14 L m−2 h−1 and a reverse salt flux of 0.16 g m−2 h−1, which are superior to those of many FO membranes reported in the field. The prepared membrane also has excellent performance in lithium concentration applications, and its separation mechanism was explored by MD simulations.

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来源期刊
Journal of Membrane Science
Journal of Membrane Science 工程技术-高分子科学
CiteScore
17.10
自引率
17.90%
发文量
1031
审稿时长
2.5 months
期刊介绍: The Journal of Membrane Science is a publication that focuses on membrane systems and is aimed at academic and industrial chemists, chemical engineers, materials scientists, and membranologists. It publishes original research and reviews on various aspects of membrane transport, membrane formation/structure, fouling, module/process design, and processes/applications. The journal primarily focuses on the structure, function, and performance of non-biological membranes but also includes papers that relate to biological membranes. The Journal of Membrane Science publishes Full Text Papers, State-of-the-Art Reviews, Letters to the Editor, and Perspectives.
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