IP Library Granted Patent US 10,725,209
Granted Patent B2
US 10,725,209 · App. 16/465,641 · Granted Jul 28, 2020

Broadband and omnidirectional polymer antireflection coatings

Inventors: Baomin Wang (State College, PA); Noel C. Giebink (State College, PA)
Assignee: The Penn State Research Foundation
G02B1/111C09D127/12G02B1/12
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Quick Facts
Patent No.
US 10,725,209
App. No.
16/465,641
Granted
Jul 28, 2020
Kind
B2
Abstract

A method for generating antireflective coatings for polymeric substrates using a deposition process and/or a dissolving process can provide a coating onto the outer surface of the substrate. Some embodiments can include a GLAD generated fluoropolymer coating or a co-evaporated fluoropolymer coating on a substrate that may achieve ultralow refractive index as well as improved adhesion and durability properties on polymeric substrates. In some embodiments, the deposition process is performed such that a fluoropolymer can be evaporated to form chain fragments of the fluoropolymer. The chain fragments diffused into the substrate can subsequently re-polymerize, interlocking with the polymer chains of the substrate. In some embodiments, the co-evaporation process can form a nanoporous polymer chain scaffold of the fluoropolymer, from which a sacrificial material can be dissolved out. The formed coating can be a multilayer or continuously-graded antireflective coating that has strong adhesion with the substrate.

Claims (30)

1. A method of generating an antireflective coating, the method comprising:

forming a coating on a surface of a polymeric substrate via a deposition process, the forming of the coating onto the surface of the substrate occurring such that:

the coating material is vaporized to form chain fragments of the coating material during vaporization of the coating material, the vaporized chain fragments are subsequently diffused into the surface of the polymeric substrate to a depth into the surface of the substrate as layers of the chain fragments are applied onto the surface of the substrate, and the chain fragments diffused into the substrate are subsequently re-polymerized to interlock with polymer chains of the substrate; and

wherein the depth into the surface of the polymeric substrate is at least 5 nanometers to up to 1 micrometer, and the surface is an outer surface of the polymeric substrate such that the depth extends from the outer surface to the depth within the polymeric surface.

2. The method of claim 1 , wherein the coating material comprises a fluoropolymer.

3. The method of claim 1 , wherein the coating material comprises a polymetric material.

4. The method of claim 1 , wherein the substrate is plastic, acrylic or polycarbonate.

5. The method of claim 1 , wherein the substrate is curved.

6. The method of claim 1 , wherein the substrate is a curved lens.

7. The method of claim 1 , wherein the substrate is a Fresnel lens.

8. The method of claim 1 , wherein the deposition process is a glancing angle deposition (GLAD) process.

9. The method of claim 8 , wherein the GLAD process further comprises maintaining the substrate at a temperature that is below the glass transition temperature of the substrate.

10. The method of claim 1 , wherein vaporization of the coating material occurs via evaporation of the coating material.

11. The method of claim 1 , wherein the substrate is a lenslet array.

12. An optical component, comprising:

a substrate configured for use as an optical element, the substrate having a coating formed on at least a portion of a surface of the substrate, the coating being formed by the method of claim 1 .

13. The method of claim 1 , wherein:

the substrate is a glass and/or inorganic-coated plastic; and

the substrate is treated with an adhesion promotor configured to promote adhesion of the coating material to the substrate.

14. The method of claim 13 , wherein the coating material is a fluoropolymer and the adhesion promotor is a fluorosilane or other silane-based coupling agent.

15. The method of claim 1 , further comprising applying heat to the polymeric substrate before, during, and/or after forming the coating on the surface of the polymeric substrate.

16. The method of claim 15 , wherein applying heat involves increasing the temperature of the polymeric substrate to promote diffusion of cleaved molecular fragments of the coating material into the surface of the substrate.

17. The method of claim 16 , wherein the temperature is less than or equal to a maximum temperature, and the maximum temperature is determined in part by the glass transition temperature of the polymeric substrate.

18. The method of claim 16 , wherein increasing the temperature involves increasing the temperature of the polymeric substrate to be within a range from 40° C. to 400° C.

19. The method of claim 16 , wherein:

forming the coating involves forming a first coating layer and forming a second coating layer; and

heat is applied to the polymeric substrate before, during, and/or after applying the first coating material layer.

20. The method of claim 19 , further comprising:

applying heat to the polymeric substrate so as to reach a predetermined temperature before applying the first coating layer; and

allowing or forcing the temperature of the polymeric substrate to fall below the predetermined temperature before applying the second coating layer.

Assignments (2)
CONFIRMATORY LICENSE Recorded Dec 3, 2020
From: PENNSYLVANIA UNIVERSITY
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 054584/0134 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 30, 2019
From: WANG, BAOMIN; GIEBINK, NOEL C.
To: THE PENN STATE RESEARCH FOUNDATION
Reel/Frame 050552/0699 →
Continuity (2)
Provisional Application 62447060 · Jan 17, 2017
Related Publication 20200025977A1 · Jan 23, 2020