China Suppliers and Factory of High-Quality Pigment Intermediates for Azo and Anthraquinone Pigment Production
Product Details
"Pigment intermediates" and the "dye intermediates" discussed in the previous round are essentially the same substance. They are both various aromatic hydrocarbon derivatives used in the production of dyes and organic pigments, and are key raw materials in the fine chemical industry.
๐ก The key difference lies not in the intermediate itself, but in the subsequent processing technology and the performance requirements of the final product โ two dishes from the same raw material.Classification and Properties of Pigment Intermediates
| Type | Core Raw Materials | Representative Intermediates | Main Characteristics | Typical Applications |
|---|---|---|---|---|
| Benzene-based | Benzene, toluene, chlorobenzene | 3,3'-Dichlorobenzidine, p-Nitroaniline, 2,3-acid, Red-base KD | Highest production volume, relatively low cost | Azo pigments (yellow, orange, red); broad chromatogram |
| Naphthalene-based | Naphthalene | 2-Naphthol, 2,3-acid, Torpor acid, J acid, H acid | Contains sulfonic acid group; usually soluble in alkalis | Phenolic azo pigments, acidic pigments; vibrant colors |
| Anthraquinone-based | Anthracene | Anthraquinone, 1-Aminoanthraquinone, Bromoacetic acid | Excellent overall fastness; higher cost | High-performance reducing pigments; outstanding lightfastness & heat resistance |
| Heterocyclic & High-Performance | Phthalic anhydride, urea, phthalonitrile, cyanuric chloride | Phthalocyanine, quinacridone, perylene tetracarboxylic anhydride, DPP intermediates | Most complex structure; top-tier performance; difficult to synthesize | Phthalocyanine blue/green, quinacridone red, DPP red; automotive paints & high-grade inks |
Detailed Overview of Each Intermediate Type
Benzene, toluene, and chlorobenzene โ each molecule contains a benzene ring.
3,3'-Dichlorobenzidine, p-nitroaniline, 2,3-acid, and red-based KD.
Highest production volume and relatively low cost. Used for synthesizing the highest-yielding azo pigments (yellow, orange, and red spectra), with a broad chromatogram, but some varieties have moderate fastness.
Naphthalene โ each molecule contains a naphthalene ring.
2-Naphthol, 2,3-acid, torpor acid, J acid, and H acid.
Contains a sulfonic acid group in its structure, usually soluble in alkalis. Used for synthesizing phenolic azo pigments and some acidic pigments, producing vibrant colors.
Anthracene โ each molecule contains anthraquinone structures.
Anthraquinone, 1-aminoanthraquinone, and bromoacetic acid.
Excellent overall fastness, but higher cost. Used for the production of high-performance anthraquinone reducing pigments and acid pigments, exhibiting outstanding lightfastness and heat resistance.
Phthalic anhydride, urea, phthalonitrile, and cyanuric chloride โ molecules containing heterocycles such as oxygen, nitrogen, and sulfur.
Phthalocyanine, quinacridone, perylene tetracarboxylic anhydride, and DPP (pyrrolopyrrole dione) intermediates.
The most complex structure, difficult to synthesize, and possessing top-tier performance. Used for the production of phthalocyanine pigments (such as phthalocyanine blue/green) and high-end high-performance organic pigments (such as quinacridone red and DPP red), exhibiting excellent weather resistance and heat resistance โ the preferred choice for automotive paints and high-grade inks.
From Pigment Intermediate to Finished Pigment: Process Differences Between Pigments and Dyes
The "branching of the road" for pigments and dyes mainly begins in the later stages of synthesis:
Although both involve reactions such as diazotization and coupling, pigment synthesis has more stringent requirements for crystal form and particle shape, as this directly affects the pigment's hue, hiding power, and coloring intensity.
While dye precursors can be ground and auxiliaries added, the "filter cake" after pigment synthesis must undergo special pigmentation treatment, including:
โฃ Controlling Crystal Form: Through specific solvents or heat treatment, pigment molecules are grown into specific stable crystal forms (such as the ฮฑ and ฮฒ crystal forms of phthalocyanine blue).
โฃ Surface Treatment: Rosin, surfactants, etc., are added to coat the surface of pigment particles, preventing aggregation and improving dispersibility and rheological properties in inks or coatings.
โฃ Ultra-fine Grinding: Finer than dye grinding, ensuring the pigment achieves ideal coloring results in the application medium.
Example: Production of Phthalocyanine Blue
Taking the widely used Phthalocyanine Blue as an example:
Phthalic anhydride, urea, cuprous chloride.
These intermediates condense in organic solvents to produce crude copper phthalocyanine (already blue).
Crude copper phthalocyanine must undergo special treatments such as acid dissolution or salt milling to transform the originally large and agglomerated particles into nano-sized, specific crystal form of blue pigment before it can be used in the manufacture of automotive paints, inks, etc.
๐ก Therefore, when you hear "pigment intermediates," you can understand it as "dye intermediates" specifically used to manufacture pigments โ with subsequent processes focusing more on the specific application properties of the pigment (lightfastness, dispersion, crystal form).






















