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用于从废旧电池中高效回收锂的高性能、耐pH值的膜。

High performance, pH-resistant membranes for efficient lithium recovery from spent batteries.

作者信息

Su Yafei, Peng Huawen, Liu Xufei, Li Jiapeng, Zhao Qiang

机构信息

Key Laboratory of Material Chemistry for Energy Conversion and Storage, Ministry of Education, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology, 430074, Wuhan, P. R. China.

出版信息

Nat Commun. 2024 Nov 27;15(1):10295. doi: 10.1038/s41467-024-54503-8.

Abstract

Cation separation under extreme pH is crucial for lithium recovery from spent batteries, but conventional polyamide membranes suffer from pH-induced hydrolysis. Preparation of high performance nanofiltration membranes with excellent pH-resistance remains a challenge. Here we synthesize a high performance nanofiltration membrane (1,4,7,10-Tetraazacyclododecane (TAD)-1,3,5-Tris(bromomethyl)benzene (TBMB) thin film composite membranes (TFCMs)) with excellent pH-stability through interfacial quaternization reaction between TAD and TBMB. Due to the high stability of "C-N" bonds in TAD-TBMB TFCMs, its separation performance is stable even after 70 days immersion in concentrated acid (3 M HSO, HNO, or HCl) and base (3 M NaOH), which is at least 15 times more stable than benchmark commercial membranes. The membrane shows an overall separation performance (11.3 L m h bar (LMHB), R: 97% in 2 M HSO) due to the size sieving and the intensified charge repulsion, outperforming many of the state-of-the-art membranes. Finally, the TAD-TBMB TFCM remains stable during 30-days continuous nanofiltration of 2 M HSO and leachate (2 M HSO, ions: 6.2 g L) from spent batteries.

摘要

在极端pH值下进行阳离子分离对于从废旧电池中回收锂至关重要,但传统的聚酰胺膜会受到pH诱导的水解作用。制备具有优异耐pH性能的高性能纳滤膜仍然是一项挑战。在此,我们通过1,4,7,10-四氮杂环十二烷(TAD)与1,3,5-三(溴甲基)苯(TBMB)之间的界面季铵化反应,合成了一种具有优异pH稳定性的高性能纳滤膜(1,4,7,10-四氮杂环十二烷-1,3,5-三(溴甲基)苯(TBMB)薄膜复合膜(TFCMs))。由于TAD-TBMB TFCMs中“C-N”键的高稳定性,即使在浓酸(3 M H₂SO₄、HNO₃或HCl)和碱(3 M NaOH)中浸泡70天后,其分离性能仍保持稳定,这比基准商业膜至少稳定15倍。由于尺寸筛分和增强的电荷排斥作用,该膜表现出整体分离性能(11.3 L m⁻² h⁻¹ bar⁻¹(LMHB),在2 M H₂SO₄中截留率:97%),优于许多先进的膜。最后,在对2 M H₂SO₄和废旧电池浸出液(2 M H₂SO₄,离子浓度:6.2 g L⁻¹)进行30天连续纳滤过程中,TAD-TBMB TFCM保持稳定。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a8a2/11603373/5ffb336e82ad/41467_2024_54503_Fig1_HTML.jpg

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