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Electrophoretic Crystallization of Ultrathin High-performance Metal-organic Framework Membranes
Published on: August 16, 2018
Zwitterionic Molecule Intercalation in Nanoporous Multilayer Graphene Oxide Membrane for Metal Ion Recovery from
Jeong Pil Kim1,2, Junhyeok Kang1, Ju Yeon Kim1
1Department of Chemical and Biomolecular Engineering, Yonsei University, Yonsei-ro 50, Seodaemun-gu, Seoul 120-749, Republic of Korea.
Abstract:
The increasing demand for lithium-ion batteries has intensified the need for efficient recovery of lithium and transition metals from spent battery materials. Membrane-based ion separation provides a low-energy alternative or can be combined with conventional hydrometallurgical purification routes. In this study, graphene oxide (GO) membranes were engineered through the intercalation of a zwitterionic molecule, 3-(1-vinyl-3-imidazolio)-propanesulfonate (VIPS), followed by hot-press treatment to produce structurally stabilized VIPS-intercalated GO membranes. Structural and spectroscopic analyses reveal that VIPS molecules expand the interlayer spacing of GO and introduce positively charged groups, which suppress the permeation of divalent cations. Hot-pressing further generates nanopores and reinforces the layered structure, enabling improved Li ion transport. Concentration-driven permeation tests demonstrated that the GO membrane containing a 1:1 weight ratio of GO to VIPS achieved a lithium-ion permeation rate of 33.2 mmol m-2 h-1 with markedly enhanced selectivity over divalent ions, including a lithium/manganese selectivity of 18. Long-term forward osmosis operation conducted for 480 h exhibited stable Li-selective permeation behavior, yielding permeation rates of 33.0, 8.3, 4.0, and 3.8 mmol m-2 h-1 for Li+, Co2+, Ni2+, and Mn2+, respectively. Although extended operation caused slight swelling and partial loss of selectivity, a multistep forward osmosis enrichment process produced high-purity lithium solutions (>99%) and decreased the concentrations of Co2+, Ni2+, and Mn2+ to undetectable levels after three cycles. This study demonstrates that the combination of zwitterionic molecule intercalation and hot-press treatment produces structurally stable graphene oxide membranes capable of selective lithium transport and high-purity lithium enrichment, offering a practical and energy-efficient platform for lithium recovery from hydrometallurgical recycling streams.
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