Nanocomposite with nanochannels or nanopores for filtration of waste effluents
US-2016023167-A1 · Jan 28, 2016 · US
US11471874B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11471874-B2 |
| Application number | US-201816771324-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 14, 2018 |
| Priority date | Dec 15, 2017 |
| Publication date | Oct 18, 2022 |
| Grant date | Oct 18, 2022 |
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Disclosed herein is an ion selective separation membrane including: a metal organic framework layer formed on, in, and/or around a substrate, the metal organic framework having a crystal structure that includes a first surface and a second surface and includes ion transport channels formed between respective pore windows in the first surface and the second surface; first and second electrodes to apply a potential difference across the membrane; wherein the respective pore windows have a pore size that is less than the hydrated diameter of the ion for which the ion selective separation membrane is selective.
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The invention claimed is: 1. An ion selective separation membrane comprising: a metal organic framework layer formed on, in, and/or around a substrate, the metal organic framework having a crystal structure that includes a first surface and a second surface and includes ion transport channels formed between respective pore windows in the first surface and the second surface, wherein the substrate is a porous substrate having a plurality of channels, and the metal organic framework layer is formed as a plug of metal-organic framework material within each of the channels of the substrate, wherein the channels of the substrate taper from a first diameter at a first surface of the substrate to a second diameter at a second surface of the substrate, wherein the first diameter is greater than the second diameter; first and second electrodes to apply a potential difference across the membrane; wherein the respective pore windows have a pore size that is less than the hydrated diameter of the ion for which the ion selective separation membrane is selective; and wherein the substrate is formed from a 2D layered material selected from the group consisting of graphene oxide, zeolite, MoS 2 , WS 2 , and BN. 2. The ion selective separation membrane of claim 1 , wherein the metal organic framework is a material selected from the group consisting of: ZIF-8, UiO-66, UiO-66-NH 2 , and UiO-66-N + (CH 3 ) 3 . 3. The ion selective separation membrane of claim 1 , wherein the ion transport channels include a plurality of expanded regions, each expanded region separated by an internal pore having an opening that corresponds to the shape and size of the pore windows, and wherein the size of the expanded regions is greater than pore size of the pore windows. 4. The ion selective separation membrane of claim 1 , wherein the ion selective membrane further includes a support layer, and the metal organic framework layer is applied to a surface of the support layer. 5. The ion selective separation membrane of claim 1 , wherein the channels of the substrate are nanochannels having a size of from 5 nm to 200 nm. 6. The ion selective separation membrane of claim 1 , wherein the pore size is from 2.8 Å and less than 1 nm. 7. The ion selective separation membrane of claim 1 , wherein the membrane is selected from the group consisting of: an Li + ion selective membrane and an F − ion selective membrane. 8. A method for selectively separating ions in a polar solution, the method comprising: providing an ion selective separation membrane comprising: a metal organic framework layer formed on, in, and/or around a substrate, the metal organic framework having a crystal structure that includes a first surface and a second surface and includes ion transport channels formed between respective pore windows in the first surface and the second surface, wherein the substrate is a porous substrate having a plurality of channels, and the metal organic framework layer is formed as a plug of metal-organic framework material within each of the channels of the substrate, wherein the channels of the substrate taper from a first diameter at a first surface of the substrate to a second diameter at a second surface of the substrate, wherein the first diameter is greater than the second diameter; and first and second electrodes to apply a potential difference across the membrane; wherein the respective pore windows have a pore size that is less than the hydrated diameter for which the ion selective separation membrane is selective; exposing a polar solution containing a plurality of ions to the first surface; and applying a potential difference from 10 mV to 2 V across the membrane to selectively transport ions into a pore window in the first surface, through the ion transport channel, and out of a pore window in the second surface. 9. The method of claim 8 , wherein the method is for selectively separating Li + ions from the polar solution, and the polar solution contains Li + ions and at least one further cation. 10. The method of claim 9 , wherein the further cation is an alkali metal ion selected from the group consisting of Na + , K + , and Rb + . 11. The method of claim 8 , wherein the selectivity for the Li + ion is at least 1.1 in comparison to the further cation. 12. The method of claim 8 , wherein the method is for selectively separating F − ions from the polar solution, and the polar solution contains F − ions and at least one further anion. 13. The method of claim 12 , wherein the further anion is selected from the group consisting of Cl − , Br − , I − , and SO 4 2− . 14. The method of claim 8 , wherein the selectivity for the F − ion is at least 20 in comparison to the further anion. 15. An ion selective separation membrane comprising: a nanoporous substrate having a plurality of nanochannels, the nanochannels extending through the nanoporous substrate from openings in a first surface of the nanoporous substrate to openings in a second surface of the nanoporous substrate, wherein the nanochannels taper from a first diameter at the first surface of the nanoporous substrate to a second diameter at the second surface of the nanoporous substrate, wherein the first diameter is greater than the second diameter; and a plug of a metal-organic framework material within each of the plurality of nanochannels; the metal-organic framework having a crystal structure that includes a first surface and a second surface and including ion transport channels between respective pore windows in the first surface and the second surface; and wherein the respective pore windows have a pore size that is less than the hydrated diameter for which the ion selective separation membrane is selective. 16. A method of forming an ion selective separation membrane comprising: crystallizing a metal-organic framework material from a metal ion and an organic ligand to plug nanochannels of a nanoporous substrate, the nanochannels extending through the nanoporous substrate from openings in a first surface of the nanoporous substrate to openings in a second surface of the nanoporous substrate, wherein the nanochannels taper from a first diameter at the first surface of the nanoporous substrate to a second diameter at the second surface of the nanoporous substrate, wherein the first diameter is greater than the second diameter; wherein the metal-organic framework has a crystal structure that includes a first surface and a second surface and includes ion transport channels formed between respective pore windows in the first surface and the second surface; and wherein the respective pore windows have a pore size that is less than the hydrated diameter for which the ion selective separation membrane is selective. 17. The method of claim 16 , wherein the step of crystallizing the metal organic framework includes: exposing the first surface of the nanoporous substrate to a ligand containing solution, and exposing the second surface of the nanoporous substrate to a metal ion containing solution; wherein the ligand containing solution and the metal ion containing solution infiltrate into the nanochannels of the nanoporous substrate through the respective openings in the first surface and the second surface of the nanoporous substrate, and react to crystallise the metal-organic framework material. 18. The method of claim 16 , wherein the step of crystallizing the metal organic framework includes: filling the pores of the porous substrate with a solution comprising the metal ion and the organic ligand, and crystallizing the
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