IP Library › Granted Patent US 12,564,818
Granted Patent B2
US 12,564,818 · App. 18/276,055 · Granted Mar 3, 2026

Preparation method for high-moisture- permeability fluorine-containing super- oleophobic microporous membrane

Inventors: Huisheng Wu (Shanghai, CN); Ying Yang (Shanghai, CN); Rongrong Hao (Shanghai, CN)
Assignees: Shanghai Hyproof Technology Co., Ltd.; Shanghai Hyproof New Material Technology Co., Ltd
B01D71/36B01D2323/081B01D2325/02B01D2325/04B01D2325/20B01D2325/42
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Quick Facts
Patent No.
US 12,564,818
App. No.
18/276,055
Granted
Mar 3, 2026
Kind
B2
Abstract

A preparation method of a high-moisture-permeability fluorine-containing super-oleophobic microporous membrane is provided having the following steps: (1) preparing a white opaque mixture of fluorine-containing polymers: adding the materials in sequence according to a weight ratio of A50%˜90%:B3%˜25%:C0%˜35%:D0%˜3%, and stirring and mixing uniformly in a non-shear manner; A is a blend of a high molecular weight polytetrafluoroethylene dispersion resin and a fluorine-containing ion exchange resin; B is a fluorine-containing alkyl acrylate monomer, or a fluorine-containing alkyl methacrylate monomer, or a mixture thereof; C is a polyurethane acrylate prepolymer, or a fluorine-free alkyl acrylate monomer, or a mixture thereof; D is a high temperature free radical initiator; (2) pouring the white opaque mixture into the blank pressing column barrel, and pressing a blank; (3) calendering into strips; (4) stretching and thermally shaping to form a membrane.

Claims (21)

1 . A preparation method of a high-moisture-permeability fluorine-containing super-oleophobic microporous membrane, the preparation method comprises the following steps:

(1) preparing a white opaque mixture of fluorine-containing polymers: adding the materials in sequence according to a weight ratio of A:B:C:D of 65%-80%:6%-15%:2%-23%:0-2%, stirring and mixing uniformly in a non-shear manner, and subjecting the white opaque mixture of fluorine-containing polymers to a vacuum drying at 50° C. for at least 12 hours; wherein:

A is a blend of a high molecular weight polytetrafluoroethylene dispersion resin and a fluorine-containing ion exchange resin, wherein the fluorine-containing ion exchange resin comprises one or more fluorine-containing monomers selected from tetrafluoroethylene, vinylidene fluoride, trifluoroethylene, trifluorochloroethylene, and fluoroethylene, and further comprises at least one ion-exchange functional group selected from sulfonic acid, carboxylic acid, phosphoric acid, tertiary amine, or quaternary amine; wherein a dry weight ratio of fluorine-containing ion exchange resin to the high molecular weight polytetrafluoroethylene dispersion resin is 0.5%-10%;

B is a fluorine-containing alkyl acrylate monomer, or a fluorine-containing alkyl methacrylate monomer, or a mixture of monomers thereof; its molecular weight is less than 3000, and its melting point is below 80° C.;

C is a polyurethane acrylate prepolymer, or a fluorine-free alkyl acrylate monomer, or a mixture thereof; its molecular weight is less than 8000, and its melting point is below 80° C.;

D is a high temperature free radical initiator;

(2) pouring the white opaque mixture of fluorine-containing polymers directly into a blank pressing column barrel, and press the blank at 20° C. to 100° C. after air-exhausting to make a cylindrical pasty mixture blank column;

(3) extruding the pasty mixture blank column through a pusher at 20° C.-100° forming a pasty extrudate, and then calendering the pasty extrudate into strips with a thickness of 50-2000 microns;

(4) stretching the strips unidirectionally or biaxially at 100° C. to 200° C., and finally thermally shaping at 200° C. to 390° C. to make the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane.

2 . The preparation method of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane according to claim 1 , wherein a thickness of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane is about 0.005-1.5 mm; the membrane weight is about 1-1200 g/m 2 ; a porosity is about 30-95%; an initial oil resistance of the membrane surface is at least Grade 5; a tensile strength of the membrane is greater than 20 MPa, a moisture permeability of the membrane is greater than 10,000 g water/m 2 /day, and an air permeability of the membrane is greater than 2 mm/s under the air pressure difference of 300 Pa; and wherein after washing 10 times with water, the oil resistance of the membrane surface is at least Grade 4; the moisture permeability of the membrane is greater than 9000 g water/m 2 /day, and the air permeability of the membrane is greater than 1.5 mm/s under the air pressure difference of 300 Pa.

3 . The preparation method of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane according to claim 1 , wherein a thickness of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane is about 0.01-0.08 mm; the membrane weight is about 3-30 g/m 2 ; the porosity is about 70˜90%; an initial oil resistance of the membrane surface is at least Grade 6; a tensile strength of the membrane is greater than 30 MPa; and wherein after washing 10 times with water, the oil resistance of the membrane surface is at least Grade 5; the moisture permeability of the membrane is greater than 10000 g water/m 2 /day, and the air permeability of the membrane is greater than 2 mm/s under the air pressure difference of 300 Pa.

4 . The preparation method of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane according to claim 1 , wherein:

the high molecular weight polytetrafluoroethylene dispersion resin is an ultra-high molecular weight polytetrafluoroethylene homopolymer or copolymer dispersion resin, with a standard specific gravity between 2.135 and 2.165 and a melting point between 325° C. and 350° C.; and

the fluorine-containing ion exchange resin is selected from one or more of a fluorine-containing anion exchange resin, a fluorine-containing cation exchange resin, and a fluorine-containing double ion exchange resin.

5 . The preparation method of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane according to claim 1 , an average molecular weight of the fluorine-containing alkyl acrylate monomer or fluorine-containing alkyl methacrylate monomer or the mixture of monomers thereof is less than 2000, the fluorine-containing alkyl acrylate monomer or fluorine-containing alkyl methacrylate monomer or the mixture of monomers thereof comprises one or more of perfluorobutyl ethyl acrylate, perfluorobutyl ethyl methacrylate, perfluorohexyl ethyl acrylate, perfluorohexyl ethyl methacrylate, perfluorooctyl ethyl acrylate, perfluorooctyl ethyl methacrylate, N-Methyl perfluorobutane sulfonate amine ethyl acrylate, N-Methyl perfluorobutane sulfonate amine ethyl methacrylate, N-Methyl perfluorohexyl sulfonate amine ethyl acrylate, N-methylperfluorohexyl sulfonate aminoethyl methacrylate, N-Methyl perfluorooctane sulfonate amine ethyl acrylate, and N-Methyl perfluorooctane sulfonate ammonium ethyl methacrylate.

6 . The preparation method of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane according to claim 1 , wherein the molecular weight of the urethane acrylate prepolymer or the fluorine-free alkyl acrylate or the mixture thereof is less than 5000 and has a melting point is below 50° C.

7 . The preparation method of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane according to claim 6 , wherein raw materials of the urethane acrylate prepolymer are selected from aromatic diisocyanate or aliphatic diisocyanate or 2- to 3-membered isocyanate; polyol, selected from polyethylene glycol, polypropylene glycol, polytetramethylene glycol, poly ester polyol, polycarbonate polyol; wherein the molecular weight of the polyol is between 600 and 5000, and each molecule contains 2 to 3 hydroxyl groups.

8 . The preparation method of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane according to claim 7 , wherein the raw materials include polyol and the molecular weight of the polyol is between 1000 and 3000.

9 . The preparation method of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane according to claim 6 , wherein the fluorine-free alkyl acrylate is a free-radical polymerizable monomer or a mixed monomer thereof having an average molecular weight less than 1000, a melting point below 80° C., and a normal pressure boiling point above 160° C., and comprising one or more selected from hydroxyalkyl acrylate, hydroxyalkyl methacrylate, C5-C20 alkyl acrylate, C4-C20 alkyl methacrylate, and C6-C20 acid vinyl ester; wherein, hydroxyalkyl acrylate and hydroxyalkyl methacrylate comprise one or more selected from hydroxyethyl acrylate, hydroxyethyl methacrylate, hydroxypropyl acrylate, and hydroxypropyl methacrylate.

10 . The preparation method of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane according to claim 9 , wherein the average molecular weight of the fluorine-free alkyl acrylate is less than 600, and the melting point is below 50° C.

11 . The preparation method of the high-moisture-permeability fluorine-containing super-oleophobic microporous membrane according to claim 1 , wherein C is a mixture of polyurethane acrylate prepolymer and fluorine-free alkyl acrylate, and the weight ratio is 0% to 70% of polyurethane acrylate prepolymer to 30% to 100% of fluorine-free alkyl acrylic acid ester monomer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 7, 2023
From: WU, HUISHENG; YANG, YING; HAO, RONGRONG
To: SHANGHAI HYPROOF TECHNOLOGY CO., LTD.; SHANGHAI HYPROOF NEW MATERIAL TECHNOLOGY CO., LTD
Reel/Frame 064504/0120 →
Priority Claims (1)
CN 202110170098.5 · Feb 7, 2021 · national
Continuity (1)
Related Publication 20240123411A1 · Apr 18, 2024
References Cited (10)
CN 103459005A · 2013 [cited by applicant]
CN 106977640A · 2017 [cited by applicant]
CN 107216431A · 2017 [cited by applicant]
CN 107325238A · 2017 [cited by applicant]
CN 107353374A · 2017 [cited by applicant]
CN 112920532A · 2021 [cited by applicant]
CN 112980118A · 2021 [cited by applicant]
CN 113150333A · 2021 [cited by applicant]
EP 0037745A1 · 1981 [cited by applicant]
Donggao Li, Intermolecular Perforation-based Moisture Permeability and Moisture Permeability Mechanisms of Hydrophilic Groups, pp. 316-317. [cited by applicant]