IP Library › Granted Patent US 10,927,244
Granted Patent B1
US 10,927,244 · App. 16/679,144 · Granted Feb 23, 2021

Superhydrophobic and self-cleaning radiative cooling film and preparation method thereof

Inventors: Chaohua Xue (Shaanxi, CN); Bingying Liu (Shaanxi, CN); Huidi Wang (Shaanxi, CN); Shuntian Jia (Shaanxi, CN)
Assignee: Shaanxi University of Science & Technology
C08L27/16B29C41/003C08J5/18C08L27/20B29K2027/12B29L2007/008C08J2327/16C08J2327/20C08J2483/04C08L2203/16
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Quick Facts
Patent No.
US 10,927,244
App. No.
16/679,144
Granted
Feb 23, 2021
Kind
B1
Abstract

Disclosed are a superhydrophobic and self-cleaning radiative cooling film and a preparation method thereof. The preparation method includes the following steps: 1) dissolving P (VDF x -HFP y ) and PDMS in a composite polar solvent to obtain a translucent composite polymer solution of P (VDF x -HFP y )/PDMS; 2) adding a non-solvent dropwise to the obtained solution to allow for a phase separation of P (VDF x -HFP y )/PDMS to form a sol; 3) casting the sol; drying the cast sol to obtain a film are porous inside with micro/nano rough structures of low surface-energy on the surface. The preparation method of the present invention is simple, and can be used for large-scale production.

Claims (15)

1. A method for preparing a superhydrophobic and self-cleaning radiative cooling film, comprising:

1) dissolving Poly (vinylidene fluoride-co-hexafluoropropylene) P (VDFx-HFPy) and polydimethylsiloxane (PDMS) in a composite polar solvent to obtain a translucent composite polymer solution of P (VDFx-HFPy)/PDMS;

2) adding a non-solvent dropwise to the obtained solution to allow for a phase separation of P (VDFx-HFPy)/PDMS to form a sol; and

3) casting the sol; drying the cast sol to obtain a film with a micro-nano porous structure; and

wherein the superhydrophobic and self-cleaning radiative cooling film with a micro-nano porous structure has a solar reflectance of 90.1-96.5% and a mid-infrared emissivity of 90.3-94.3% at thickness of 8-13 μm; a water contact angle on a surface of the film is 151.4-162.3°; and a water sliding angle on the surface of the film is 1.4-8.2°.

2. The method of claim 1 , wherein step 1 further comprises:

101) dissolving P (VDFx-HFPy) in an acetone solution under stirring at room temperature for 3-5 h until P (VDFx-HFPy) is completely dissolved in the acetone solution to produce a mixture;

102) adding a prepolymer A for PDMS and a tetrahydrofuran solvent to the resulting mixture in step 101) and stirring uniformly;

103) adding a curing agent B under stirring for 15-30 min until the resulting solution is uniform and translucent.

3. The method of claim 2 , wherein in step 101, a weight ratio of P (VDFx-HFPy) to acetone is 1:10-15.

4. The method of claim 2 , wherein in step 102, a weight ratio of P (VDF x -HFPy) to tetrahydrofuran is 1-2:15.

5. The method of claim 2 , wherein in step 103, a weight ratio of P (VDF x -HFPy) to PDMS is 2.0-4.0:1.0.

6. The method of claim 1 , wherein in step 2, the non-solvent is water, and an adding rate of the water is 0.05 mL per 10 s.

7. The method of claim 6 , wherein a weight ratio of P (VDF x -HFPy) to the water is 7:12-6.

8. The method of claim 1 , wherein in step 3, the sol is dried at room temperature for 3-5 h.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 17, 2021
From: XUE, CHAOHUA; LIU, BINGYING; WANG, HUIDI; JIA, SHUNTIAN
To: SHAANXI UNIVERSITY OF SCIENCE & TECHNOLOGY
Reel/Frame 054940/0509 →
Priority Claims (1)
CN 201910774588.9 · Aug 21, 2019 · national