IP Library Granted Patent US 11,747,700
Granted Patent B2
US 11,747,700 · App. 16/656,996 · Granted Sep 5, 2023

Superomniphobic, flexible and rigid substrates with high transparency and adjustable haze for optoelectronic application

Inventors: Sajad Haghanifar (Pittsburgh, PA); Paul W. Leu (Pittsburgh, PA)
Assignee: UNIVERSITY OF PITTSBURGH—OF THE COMMONWEALTH SYSTEM OF HIGHER EDUCATION
G02F1/16755G02F1/133305G02F1/133734G02F1/0113G02F1/133792G02F2202/36
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Quick Facts
Patent No.
US 11,747,700
App. No.
16/656,996
Granted
Sep 5, 2023
Kind
B2
Abstract

The invention relates generally to optically high transparency and adjustable haze, superomniphobic, rigid and flexible structures and, more particularly, to fused silica glass and flexible plastic, e.g., polymer, structures having a sub-wavelength texture formed on a surface thereof, which is effective to impart the optical properties of high transparency and adjustable haze to the structures. The texture is reentrant. Additionally, the optically high transparency and adjustable haze structures include a silicon dioxide coating applied to the texture and a treatment of a low surface energy material deposited on the silicon dioxide coating. The silicon dioxide coating renders the structures super hydrophilic, and the low surface energy material treatment renders the structures superomniphobic.

Claims (40)

1. A superomniphobic structure, comprising:

a substrate selected from the group consisting of a rigid substrate and a flexible substrate, having a top surface and an opposing bottom surface;

a sub-wavelength, reentrant, nanostructured texture formed on at least one of the top surface and the bottom surface of the substrate, the texture comprising:

a plurality of nanostructures comprising polymer, selected from the group consisting of needle, blade, and combinations thereof;

a distance between each of the plurality of nanostructures from about 100 nm to about 700 nm;

a height of the plurality of nanostructures in a range from about 1 μm to about 35 μm to produce simultaneous high haze and high transparency, or a height of the plurality of nanostructures in a range from about 100 nm to about 800 nm to produce simultaneous low haze and high transparency,

wherein the height of each individual reentrant nanostructure is substantially consistent as compared to the other reentrant nanostructures,

wherein the haze is adjustable from 0.1% to greater than 90% based on the height of the plurality of nanostructures,

wherein the distance between each of the reentrant nanostructures is substantially consistent;

a silicon dioxide coating applied to the sub-wavelength, nanostructured texture; and

a low surface energy material deposited on the silicon dioxide coating,

wherein the high haze corresponds to a haze factor of greater than 70% and the low haze corresponds to a haze factor of less than 5%, and

wherein the high transparency corresponds to a total transmission of greater than 80%.

2. The structure of claim 1 , wherein the rigid substrate comprises glass.

3. The structure of claim 2 , wherein the glass is selected from the group consisting of fused silica and soda lime glass and low iron tempered glass.

4. The structure of claim 1 , wherein the flexible substrate comprises plastic.

5. The structure of claim 4 , wherein the plastic is selected from the group consisting of polymer.

6. The structure of claim 5 , wherein the polymer is selected from the group consisting of semi-crystalline polyethylene terephthalate and polyethylene naphthalate.

7. The structure of claim 1 , wherein the silicon dioxide coating imparts super hydrophilic feature to the structure.

8. The structure of claim 1 , wherein the low surface energy material imparts superomniphobic feature to the structure.

9. The structure of claim 1 , wherein transmission and haze at 550 nm wavelength are greater than 80% and greater than 0.1% to more than 90%, respectively.

10. The structure of claim 1 , wherein the water contact angle and oil contact angle are each over 150°.

11. The structure of claim 1 , wherein the silicon dioxide coating is 5-1000 nm thick.

12. The structure of claim 1 , wherein one of the top and bottom surfaces of the substrate has the sub-wavelength, nanostructured texture formed thereon and the other of the top and bottom surfaces has a transparent conductor deposited thereon.

13. The structure of claim 12 , wherein the transparent conductor can be selected from the group consisting of metal nanowires, metal nanomesh, doped metal dioxide and combinations thereof.

14. A method of fabricating a superomniphobic structure, comprising:

obtaining a substrate selected from the group consisting of a rigid substrate and a flexible substrate, having a top surface and a bottom surface;

forming a sub-wavelength, nanostructured texture comprising a reentrant structure on at least one of the top surface and the bottom surface of the substrate, the texture comprising:

a plurality of nanostructures comprising polymer, selected from the group consisting of needle, blade, and combinations thereof;

a distance between each of the nanostructures from about 100 nm to about 700 nm;

a height of the plurality of nanostructures in a range from about 1 μm to about 35 μm to produce simultaneously high haze and high transparency, or a height of the plurality of nanostructures in a range from about 100 nm to about 800 nm to produce simultaneous low haze and high transparency,

wherein the height of each individual reentrant structure is substantially consistent as compared to the other reentrant structures,

wherein the haze is adjustable from 0.1% to greater than 90% based on the height of the plurality of nanostructures,

wherein the distance between each of the reentrant structures is substantially consistent;

applying a silicon dioxide coating to the sub-wavelength, nanostructured texture; and

depositing a low surface energy material on the silicon dioxide coating,

wherein the high haze corresponds to a haze factor of greater than 70% and the low haze corresponds to a haze factor of less than 5%, and

wherein the high transparency corresponds to a total transmission of greater than 80%.

15. The method of claim 14 , wherein the forming step comprises reactive ion etching.

16. The method of claim 14 , wherein the silicon dioxide coating is applied by a plasma enhanced chemical vapor deposition technique, and the low surface energy material is applied by a vapor deposition and spin coating technique.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jun 3, 2020
From: UNIVERSITY OF PITTSBURGH
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 052832/0374 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 15, 2019
From: HAGHANIFAR, SAJAD; LEU, PAUL W.
To: UNIVERSITY OF PITTSBURGH-OF THE COMMONWEALTH SYSTEM OF HIGHER EDUCATION
Reel/Frame 051015/0433 →
Continuity (2)
Provisional Application 62747162 · Oct 18, 2018
Related Publication 20200124937A1 · Apr 23, 2020