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Sort Heterocyclic Compound Alphabetically
Heterocyclic Compound
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Pharmaceutical Grade / 99%
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- / 99.00%
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Industrial Grade / 98%
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Pharmaceutical Grade / 99%
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Pharmaceutical Grade / 99%
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Pharmaceutical Grade / 99%
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Pharmaceutical Grade / 99%
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1H-Imidazole-1-acetic acid
(22884-10-2)-
Pharmaceutical Grade / 99%
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Industrial Grade, Feed Grade, Food Grade, Pharma Grade / 99%
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Industrial Grade / pharmaceutical grade / 99%
$1/MT EXW
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- / 99.00%
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2,6-Dimethoxy-4-pyrimidinamine
(3289-50-7)-
Pharmaceutical Grade / 99%
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Pharmaceutical Grade / 99%
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Pharmaceutical Grade / 99%
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Industrial Grade ,Pharma Grade / 99%
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Calcein
(1461-15-0)-
Pharmaceutical Grade / 99%
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Pharmaceutical Grade / 99%
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Industrial Grade / pharmaceutical grade / 99%
$1/MT EXW
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- / 99.00%
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industrial Grade / 98%
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Industrial Grade / 99%
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4,6-Dichloro-2-(methylthio)pyrimidine
(6299-25-8)-
Pharmaceutical Grade / 99%
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Cosmetics Grade / 99%
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- / 99.00%
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industrial Grade / 98%
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1,2,4-Triazolo[4,3-a]pyridin-3(2H)-one
(6969-71-7)-
Pharmaceutical Grade / 99%
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Pharmaceutical Grade / 98.0%
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Industrial Grade / pharmaceutical grade / 99%
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- / 99.00%
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Pharmaceutical Grade / 99%
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Pharmaceutical Grade / 99%
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Industrial Grade,Pharma Grade / 99%
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Industrial Grade / pharmaceutical grade / 99%
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3-(2-Chloroethyl)-6,7,8,9-tetrahydro-9-hydroxy-2-methyl-4H-pyrido[1,2-a]pyrimidin-4-one
(130049-82-0)-
Pharmaceutical Grade / 99%
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Pharmaceutical Grade / 99.00%
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Pharmaceutical Grade / -
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pharmaceutical grade / 99%
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Source Heterocyclic Compound Raw Materials by Region
More Information
Heterocyclic Compounds are chemical compounds that contain rings with at least one atom other than carbon, such as nitrogen, oxygen, or sulfur. They serve as essential intermediates in pharmaceutical synthesis, agrochemical development, and functional materials.
Common applications and types include:
• Nitrogen-containing heterocycles — widely used in drug discovery and medicinal chemistry.
• Oxygen-containing heterocycles — applied in antibiotics, antioxidants, and flavor compounds.
• Sulfur-containing heterocycles — important in agrochemicals, polymers, and specialty materials.
• Polycyclic heterocycles — for advanced pharmaceuticals and electronic materials.
Frequently Asked Questions
A heterocyclic compound is an organic compound that contains a ring structure with at least one atom other than carbon—such as nitrogen, oxygen, or sulfur—in the ring. These compounds are fundamental in pharmaceuticals, agrochemicals, and materials science due to their diverse chemical properties and biological activities.
Heterocyclic compounds play a crucial role in drug development because they form the core structure of many active pharmaceutical ingredients (APIs). Their ability to interact with biological targets—such as enzymes and receptors—makes them essential for designing effective and selective drugs. Common examples include pyridine, imidazole, and quinoline derivatives found in antibiotics, antivirals, and anticancer agents.
Common heterocyclic compounds used across industries include five- and six-membered rings like pyrrole, furan, thiophene, pyridine, and indole. In the pharmaceutical sector, compounds such as benzimidazoles and triazoles are widely used. In agrochemicals, heterocycles like pyrazole and oxazole serve as key building blocks for herbicides and insecticides due to their stability and bioactivity.
When selecting a supplier for heterocyclic compounds, consider the following criteria:1. Regulatory compliance—ensure they meet standards like ISO, GMP, or REACH.2. Purity and analytical documentation—reputable suppliers provide certificates of analysis (CoA) and NMR/HPLC data.3. Custom synthesis capabilities—for specialized or novel heterocycles.4. Supply chain reliability and technical support.Choosing a certified and experienced supplier ensures consistent quality and regulatory safety.
Heterocyclic intermediates are widely used as building blocks in multi-step organic syntheses, especially for pharmaceuticals and fine chemicals. They serve as scaffolds for drug candidates, ligands in catalysis, and functional components in dyes, polymers, and electronic materials. Their structural versatility allows chemists to fine-tune molecular properties like solubility, reactivity, and binding affinity during R&D.