IP Library Granted Patent US 11,571,664
Granted Patent B2
US 11,571,664 · App. 16/286,636 · Granted Feb 7, 2023

Deeply grooved nanoparticle-coated nanofibers

Inventors: Ho Wang Tong (Hong Kong, HK); Yu Hang Leung (Hong Kong, HK); Arthur Hong Kin Kwong (Hong Kong, HK); Connie Sau Kuen Kwok (Hong Kong, HK)
Assignee: Nano and Advanced Materials Institute Limited
B01D69/12B01D71/022B01D71/08B01D71/26B01D71/34B01D71/38B01D71/42B01D71/54B01D71/56B01D71/68C02F1/44D06M10/06D06M10/08D06M11/45D06M11/71D06M11/79D06M13/513D06M23/08C02F2101/22C02F2101/322C02F2303/04C02F2305/08D06M2101/10D06M2101/22D06M2101/24D06M2101/26D06M2101/28D06M2101/30D06M2101/34D06M2101/38D06M2400/01
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Quick Facts
Patent No.
US 11,571,664
App. No.
16/286,636
Granted
Feb 7, 2023
Kind
B2
Abstract

A water filtration membrane is provided, capable of removing heavy metal ions, filtering out particulates, filtering out bacteria, as well as removing herbicides and volatile organic compounds (VOCs) from water. The membrane is composed of a mat of randomly oriented nanoparticle-coated nanofibers. The nanofibers are covalently bonded to a plurality of substantially uniformly-distributed ceramic nanoparticles embedded in or adhered on the surface of the polymer nanofibers through reactive functional groups. The ceramic nanoparticles have a pattern of deep grooves formed on the nanoparticle surfaces. The bonding of the nanoparticles to the nanofibers is sufficient to retain the nanoparticles on the nanofiber surfaces when water flows through the water filtration membrane. The diameter of the nanofibers is 50-200 nm. The size of the nanoparticles is <40 nm, with a zeta potential of −40 to −45 mV in a dispersion medium. The nanoparticle deep grooves have an average size of approximately 1.2 nm or less.

Claims (23)

1. A water filtration membrane comprising:

a nonwoven mat of randomly-oriented polymer nanofibers (nanofibers); and

a plurality of substantially uniformly-distributed ceramic nanoparticles (nanoparticles) embedded in or adhered on the surface of the polymer nanofibers through covalently bonded reactive functional groups, the ceramic nanoparticles having a pattern of deep grooves formed on the nanoparticle surfaces and being made of aluminosilicates or aluminophosphates, wherein the nanoparticles have a diameter of approximately 5 to 50 nm;

and wherein the nanoparticle deep grooves have an average size of less than approximately 1.2 nm, the grooves forming a textured array on the surface of the particle in a periodic structure that increases the surface area of the nanoparticles; and

the bonding of the nanoparticles to the nanofibers is sufficient to retain the nanoparticles on the nanofiber surfaces when water flows through the water filtration membrane.

2. The water filtration membrane of claim 1 , wherein interstitial pores between the nanofibers bonded to the ceramic nanoparticles have a diameter of approximately 100 to 300 nm.

3. The water filtration membrane of claim 1 , wherein the nanofibers have a diameter of approximately 50 to 200 nm.

4. The water filtration membrane of claim 1 , wherein the nanoparticles have a zeta potential of −42 mV in a dispersion medium.

5. The water filtration membrane of claim 1 , wherein the polymer nanofibers are selected from polyacrylonitrile, poly(vinylidene fluoride), poly(vinylidene fluoride-co-hexafluoropropylene), polyvinylpyrrolidone, poly(vinyl alcohol), poly(ethylene oxide), polysulfone, polyethersulfone, poly(methyl methacrylate), polyurethane, polyamide 6, or chitosan, and mixtures thereof.

6. The water filtration membrane of claim 1 , wherein the reactive functional groups are selected from a hydroxyl group, an amine group or a silanol group.

7. The water filtration membrane of claim 1 , wherein the membrane is configured to adsorb heavy metal ions.

8. The water filtration membrane of claim 1 , wherein the membrane is configured to filter out particulates.

9. The water filtration membrane of claim 1 , wherein the membrane is configured to filter out bacteria.

10. The water filtration membrane of claim 1 , wherein the membrane is insoluble in water.

11. The water filtration membrane of claim 1 , wherein the membrane has a filtrate flux of 1-3 L/min.

12. The water filtration membrane of claim 1 , wherein said membrane is configured to remove 85-88% of submicron particulates having size ranging from 0.5 μm to 1.0 μm.

13. The water filtration membrane of claim 1 , wherein said membrane is configured to remove 95-98% of 3 μm particulates.

14. The water filtration membrane of claim 1 , wherein said membrane is configured to remove 90-99% of lead.

15. The water filtration membrane of claim 1 , wherein said membrane is configured to remove 10-30% of chromium.

16. The water filtration membrane of claim 1 , wherein said membrane is configured to remove 80-99% of copper.

17. The water filtration membrane of claim 1 , wherein said membrane is configured to remove 90-99% of cadmium.

18. The water filtration membrane of claim 1 , wherein said membrane is configured to remove 100% of bacteria when incorporated into a filter assembly.

19. The water filtration membrane of claim 5 , wherein the polymer has functional groups selected from hydroxyl groups, amide groups, carboxyl groups or nitrile groups.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 17, 2026
From: NANO AND ADVANCED MATERIALS INSTITUTE LIMITED
To: HONG KONG APPLIED SCIENCE AND TECHNOLOGY RESEARCH INSTITUTE COMPANY LIMITED
Reel/Frame 075402/0602 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 1, 2019
From: TONG, HO WANG; LEUNG, YU HANG; KWONG, ARTHUR HONG-KIN; KWOK, CONNIE SAU KUEN
To: NANO AND ADVANCED MATERIALS INSTITUTE LIMITED
Reel/Frame 048473/0704 →
Continuity (1)
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