IP Library Granted Patent US 10,240,045
Granted Patent B2
US 10,240,045 · App. 15/534,716 · Granted Mar 26, 2019

Non-metallic pigments having metal properties

Inventors: Reinhold Rueger (Roedermark, DE); Bjoern Kleist (Gimbsheim, DE)
Assignee: MERCK PATENT GMBH
C09C1/0021B05D7/24C04B35/62805C04B35/62821C04B35/62823C04B35/62839C04B35/62884C04B35/62894C04B35/62897C09C1/0015C09D1/00C09D7/40C09D7/70C09D11/037C09D17/008D21H19/38D21H21/30D21H21/40C01P2004/20C01P2004/61C01P2006/40C01P2006/62C04B2235/3217C04B2235/3232C04B2235/349C04B2235/3418C04B2235/3427C04B2235/386C04B2235/5292C04B2235/5436C09C2200/102C09C2200/1004C09C2200/1037C09C2200/1087C09C2200/301C09C2200/302C09C2200/304C09C2200/306C09C2200/307C09C2200/308C09C2200/401C09C2220/20
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Quick Facts
Patent No.
US 10,240,045
App. No.
15/534,716
Granted
Mar 26, 2019
Kind
B2
Abstract

The present invention relates to non-metallic interference pigments, in particular laminar interference pigments, which comprise a thin high-refractive layer and an outermost layer that contains crystalline carbon in the form of graphite and/or graphene. The invention also relates to a method for producing such pigments and the use of the thus produced pigments.

Claims (12)

1. Non-metallic interference pigments based on a flake-form non-metallic support, wherein the pigments have a particle size having a volume-weighted d 90 value of <25 μm and a volume-weighted d 50 value of <15 μm, the support has a coating comprising one or more successive layers of a colourless material having a refractive index n of n≥1.8 with a geometrical overall layer thickness of at most 70 nm, wherein the pigments have an outermost layer which consists of at least 95% by weight, based on the weight of this layer, of carbon and comprises crystalline carbon in the form of graphite and/or graphene, wherein the outermost, crystalline carbon-containing layer has a geometrical thickness in the range of from 1-3 nm and the proportion of the outermost crystalline carbon-containing layer, based on the weight of the interference pigment, is 1 to 3% by weight, and wherein the pigments have a specific powder resistance of less than 1×10 6 ohm*cm.

2. Interference pigments of claim 1 , wherein the pigments have a volume-weighted d 50 value of less than 10 μm.

3. Interference pigments of claim 1 , characterised in that the outermost, crystalline carbon-containing layer consists of at least 98% by weight of carbon.

4. Interference pigments of claim 1 , wherein the flake-form support is natural or synthetic mica flakes, kaolin, sericite or talc flakes, BiOCl flakes, TiO 2 flakes, glass flakes, borosilicate flakes, SiO 2 flakes, Al 2 O 3 flakes, boron nitride flakes, or mixtures of two or more thereof.

5. Interference pigments of claim 1 , wherein the layer or layers of a colourless material having a refractive index n in the range n ≥1.8 is/are arranged between the support and the crystalline carbon-containing outermost layer and the pigments have no further layers.

6. Interference pigments of claim 1 , wherein the colourless material having a refractive index n in the range n≥1.8 is selected from the group consisting of titanium dioxide, titanium dioxide hydrate, zirconium dioxide, zirconium dioxide hydrate, tin oxide, tin oxide hydrate, zinc oxide, zinc oxide hydrate and/or mixed phases thereof.

7. Interference pigments of claim 6 , wherein the layer comprising materials having a refractive index n in the range n≥1.8 consists of titanium dioxide and/or titanium dioxide hydrate.

8. Interference pigments of claim 1 , wherein the specific powder resistance is less than 100 ohm*cm.

9. A process for the preparation of non-metallic interference pigments of claim 1 , in which flake-form support particles which have been coated with one or more successive layers of a colourless material having a refractive index n of n≥1.8 with a geometrical overall layer thickness of at most 70 nm and have a particle size having a volume-weighted d 90 value of <25 μm and a volume-weighted d 50 value of <15 μm are coated with an outermost layer which consists of at least 95% by weight, based on the weight of this layer, of carbon and comprises crystalline carbon in the form of graphite and/or graphene, the crystalline carbon-containing layer having a geometrical thickness in the range of from 1-3 nm and exhibiting a proportion, based on the weight of the interference pigment, of 1 to 3% by weight, in a reactor in a stream of carrier gas with feed of a gaseous, carbon-containing compound by pyrolytic decomposition of the carbon-containing compound at a temperature in the range of from 500° C. to 700° C.

10. The process of claim 9 , wherein the gaseous, carbon-containing compound employed is acetone or 2-methyl-3-butyn-2-ol.

11. The process of claim 9 , wherein the flake-form support particles are kept in motion in the reactor.

12. A paint, coating, printing ink, coating composition, security application, plastic, ceramic material, glass, paper, film, heat protection composition, floorcovering, laser marking composition, dry preparation or pigment preparation comprising a non-metallic interference pigment of claim 1 .

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2025
From: MERCK PATENT GMBH
To: SUSONITY COMMERCIAL GMBH
Reel/Frame 072287/0400 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 9, 2017
From: RUEGER, REINHOLD; KLEIST, BJOERN
To: MERCK PATENT GMBH
Reel/Frame 042661/0149 →
Priority Claims (1)
DE 10 2014 018 275 · Dec 12, 2014 · national
Continuity (1)
Related Publication 20170321057A1 · Nov 9, 2017