IP Library Granted Patent US 12674920
Granted Patent B2
US 12674920 · App. 18/820,531 · Granted Jul 7, 2026

Diffraction element

Inventors: Masaaki Suzuki (Minamiashigara, JP); Koji Iijima (Minamiashigara, JP)
Assignee: FUJIFILM Corporation
G02B5/1833G02B1/08G02B5/1828G02B5/3016G02B5/3066G02B5/1857G02B5/3091
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Quick Facts
Patent No.
US 12674920
App. No.
18/820,531
Granted
Jul 7, 2026
Kind
B2
Abstract

Provided is a diffraction element having excellent aligning properties of a liquid crystal compound. The diffraction element includes an optically-anisotropic layer that has a liquid crystal alignment pattern in which an orientation of an optical axis derived from a liquid crystal compound changes while continuously rotating in at least one in-plane direction, in which a birefringence Δn of the optically-anisotropic layer is 0.20 or more, the optically-anisotropic layer includes a surfactant, and in a case where components in a depth direction are analyzed by time-of-flight secondary ion mass spectrometry from one surface to another surface of the optically-anisotropic layer, a depth-direction profile of a secondary ion intensity derived from the surfactant is obtained, a position corresponding to a thickness of 20% from the one surface of the optically-anisotropic layer is represented by a position D 20 , a position corresponding to a thickness of 80% from the one surface is represented by a position D 80 , and an average value of secondary ion intensities derived from the surfactant between the position D 20 and the position D 80 is calculated, in a region from the position D 20 to the position D 80 , a peak having a size of 1.1 times or more the average value is observed and a peak having a size of 5 times or more the average value is not observed.

Claims (53)

1 . A diffraction element comprising:

an optically-anisotropic layer that has a liquid crystal alignment pattern in which an orientation of an optical axis derived from a liquid crystal compound changes while continuously rotating in at least one in-plane direction,

wherein a birefringence Δn of the optically-anisotropic layer is 0.20 or more,

the optically-anisotropic layer includes a surfactant, and

in a case where components of the optically-anisotropic layer in a depth direction are analyzed by time-of-flight secondary ion mass spectrometry while irradiating the optically-anisotropic layer with an ion beam from one surface to another surface of the optically-anisotropic layer, a depth-direction profile of a secondary ion intensity derived from the surfactant is obtained, a depth position corresponding to a thickness of 20% from the one surface to the other surface side of the optically-anisotropic layer is represented by a position D 20 , a depth position corresponding to a thickness of 80% from the one surface to the other surface side of the optically-anisotropic layer is represented by a position D 80 , and an average value of secondary ion intensities derived from the surfactant between the position D 20 and the position D 80 is calculated, in a region from the position D 20 to the position D 80 , a peak that shows a secondary ion intensity having a size of 1.1 times or more the average value is observed and a peak that shows a secondary ion intensity having a size of 5 times or more the average value is not observed.

2 . The diffraction element according to claim 1 ,

wherein in a case where two or more peaks that show the secondary ion intensity having a size of 1.1 times or more the average value are provided, a distance between the peaks adjacent to each other is represented by T, and

a length over which the orientation of the optical axis derived from the liquid crystal compound in the liquid crystal alignment pattern rotates by 180° in a plane is set as a single period Λ,

the distance T between the peaks and the single period Λ of the liquid crystal alignment pattern satisfy

0

.

0

5

T

/

Λ

0

.

2

5

.

3 . The diffraction element according to claim 2 ,

wherein the optically-anisotropic layer has a region where the optical axis of the liquid crystal compound is twisted in a thickness direction, and

a twisted angle of the optically-anisotropic layer in the thickness direction is 10° to 360°.

4 . The diffraction element according to claim 2 ,

wherein the surfactant includes a fluorine atom and has a molecular weight of 800 to 2000.

5 . The diffraction element according to claim 2 ,

wherein the birefringence Δn of the optically-anisotropic layer is 0.40 or less.

6 . The diffraction element according to claim 2 ,

wherein the surfactant includes a fluorine atom, the fluorine atom is a perfluoroalkyl group, and the surfactant has 4 or less carbon atoms.

7 . The diffraction element according to claim 1 ,

wherein the optically-anisotropic layer has a region where the optical axis of the liquid crystal compound is twisted in a thickness direction, and

a twisted angle of the optically-anisotropic layer in the thickness direction is 10° to 360°.

8 . The diffraction element according to claim 7 ,

wherein the surfactant includes a fluorine atom and has a molecular weight of 800 to 2000.

9 . The diffraction element according to claim 7 ,

wherein the birefringence Δn of the optically-anisotropic layer is 0.40 or less.

10 . The diffraction element according to claim 1 ,

wherein the surfactant includes a fluorine atom and has a molecular weight of 800 to 2000.

11 . The diffraction element according to claim 10 ,

wherein the surfactant includes a fluorine atom, the fluorine atom is a perfluoroalkyl group, and the surfactant has 4 or less carbon atoms.

12 . The diffraction element according to claim 10 ,

wherein the birefringence Δn of the optically-anisotropic layer is 0.40 or less.

13 . The diffraction element according to claim 1 ,

wherein the birefringence Δn of the optically-anisotropic layer is 0.40 or less.

14 . The diffraction element according to claim 13 ,

wherein the surfactant includes a fluorine atom, the fluorine atom is a perfluoroalkyl group, and the surfactant has 4 or less carbon atoms.

15 . The diffraction element according to claim 1 ,

wherein the surfactant includes a fluorine atom, the fluorine atom is a perfluoroalkyl group, and the surfactant has 4 or less carbon atoms.