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Lu, Yahua
Publications (2 of 2) Show all publications
Lu, Y., Zhou, R., Wang, N., Yang, Y., Zheng, Z., Zhang, M., . . . Yuan, J. (2023). Engineer Nanoscale Defects into Selective Channels: MOF-Enhanced Li+ Separation by Porous Layered Double Hydroxide Membrane. Nano-Micro Letters, 15(1), Article ID 147.
Open this publication in new window or tab >>Engineer Nanoscale Defects into Selective Channels: MOF-Enhanced Li+ Separation by Porous Layered Double Hydroxide Membrane
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2023 (English)In: Nano-Micro Letters, ISSN 2311-6706, Vol. 15, no 1, article id 147Article in journal (Refereed) Published
Abstract [en]

Two-dimensional (2D) membrane-based ion separation technology has been increasingly explored to address the problem of lithium resource shortage, yet it remains a sound challenge to design 2D membranes of high selectivity and permeability for ion separation applications. Zeolitic imidazolate framework functionalized modified layered double hydroxide (ZIF-8@MLDH) composite membranes with high lithium-ion (Li+) permeability and excellent operational stability were obtained in this work by in situ depositing functional ZIF-8 nanoparticles into the nanopores acting as framework defects in MLDH membranes. The defect-rich framework amplified the permeability of Li+, and the site-selective growth of ZIF-8 in the framework defects bettered its selectivity. Specifically speaking, the ZIF-8@MLDH membranes featured a high permeation rate of Li+ up to 1.73 mol m−2 h−1 and a desirable selectivity of Li+/Mg2+ up to 31.9. Simulations supported that the simultaneously enhanced selectivity and permeability of Li+ are attributed to changes in the type of mass transfer channels and the difference in the dehydration capacity of hydrated metal cations when they pass through nanochannels of ZIF-8. This study will inspire the ongoing research of high-performance 2D membranes through the engineering of defects.

Keywords
Nanoscale defect construction, Nanoparticles restrict growth, Two-dimensional composite membrane, Lithium-ion extraction, High stability
National Category
Materials Chemistry Nano Technology
Identifiers
urn:nbn:se:su:diva-229771 (URN)10.1007/s40820-023-01101-w (DOI)001004417900001 ()37286909 (PubMedID)2-s2.0-85161047455 (Scopus ID)
Available from: 2024-06-04 Created: 2024-06-04 Last updated: 2024-06-04Bibliographically approved
Lu, Y., Zhang, M., Chang, J., Sikdar, A., Wang, N., An, Q.-F. & Yuan, J. (2023). Heterostructure membranes of high permeability and stability assembled from MXene and modified layered double hydroxide nanosheets. Journal of Membrane Science, 688, Article ID 122100.
Open this publication in new window or tab >>Heterostructure membranes of high permeability and stability assembled from MXene and modified layered double hydroxide nanosheets
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2023 (English)In: Journal of Membrane Science, ISSN 0376-7388, E-ISSN 1873-3123, Vol. 688, article id 122100Article in journal (Refereed) Published
Abstract [en]

Two-dimensional (2D) MXene-based lamellar membranes play transformative roles in membrane filtration technology. Their practical use in water treatment is however hindered by several hurdles, e.g., unfavorable swelling due to weak interactions between adjacent MXene nanosheets, tortuous diffusion pathways of layered stacking, and the intrinsic aquatic oxidation-prone nature of MXene. Herein, nanoporous 2D/2D heterostructure membranes are elaborately constructed via solution-phase assembly of oppositely charged MXene and modified layered double hydroxide (MLDH) nanosheets. As a multifunctional component, positively charged holey MLDH nanosheets were first tailor-made to serve simultaneously as a binder, spacer and surface-modifier; next they were intercalated into negatively charged MXene lamella to enhance structural stability and mass transfer of membranes. As a result, the as-prepared MLDH@MXene heterostructure membranes successfully break the persistent trade-off between high permeability and selectivity while mitigating the common drawbacks in 2D MXene-based lamellar membranes, e.g., swelling issues, restacking problems, and vulnerable chemical stability. Noticeably, at an operating pressure of 4 bar and a feed solution of 100 ppm of Congo red, the heterostructure membranes enable a threefold jump in permeability (332.7 +/- 20 L m(-2) h(-1 )bar(-1)) when compared to the pristine MXene membrane (119.3 +/- 18 L m(-2 )h(-1) bar(-1)), and better operational stability without compromising the rejection.

Keywords
MXene membrane, 2D materials, Modified layered double hydroxide (MLDH), Heterostructure, High permeability
National Category
Materials Chemistry
Identifiers
urn:nbn:se:su:diva-223781 (URN)10.1016/j.memsci.2023.122100 (DOI)001086562000001 ()2-s2.0-85172137250 (Scopus ID)
Available from: 2023-11-15 Created: 2023-11-15 Last updated: 2023-11-15Bibliographically approved
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