AgrochemicalsCymoxanil Impurity 1
Original price was: ₹60,000.00.₹50,000.00Current price is: ₹50,000.00.
Name:1-(Cyanoacetyl)-3-ethylurea
CAT. NO.:SAC-24-A
CAS NO.:41078-06-2
- Description
- Datasheet
- Additional information
Description
Cymoxanil Impurity 1, 41078-06-2
| Chemical Name | 1-(Cyanoacetyl)-3-ethylurea |
| Catalog Number | SAC-24-A |
| Parent AI | Cymoxanil |
| Synonyms | N-(Cyanoacetyl)-N’-ethylurea; 2-Cyano-N-[(ethylamino)carbonyl]acetamide |
| CAS Number | 41078-06-2 |
| Molecular Formula | C₆H₉N₃O₂ |
| Molecular Weight | 155.15 |
| Appearance | Solid |
| Melting Point | 171-174°C |
| Shipping & Storage Information
|
Storage-20°C
Shipping: Free Shipping at Room Temperature in INDIA, may vary elsewhere Stability: Datasheet |
| Solubility | Chloroform, Dichloromethane |
| Stability | Stable under recommended storage conditions |
| Category | Agrochemical Impurity Standard/Metabolites; |
| Description &Applications | 1-(Cyanoacetyl)-3-ethylurea is an intermediate in synthesizing E-1-(2-Cyano-2-hydroxyiminoacetyl)-3-ethylurea (C988173), an oxime containing compound that can be used as a reactant in the synthesis of Cymoxanil (C988995), which is a fungicide applied as seed treatment or as foliar application to the plants to control late blight |
| References | Greci, L., et al.: J. Chem. Res., Synop., 1, 655 (2003); Dhingani, J. C., et al.: J. Pure. App. Microbiol., 6, 1683 (2012); Bakirici, G.T., et al.: Food. Chem., 135, 1901 (2012) |
Chemistry is a field that constantly seeks to expand its horizons by discovering and synthesizing new compounds with unique properties and applications. One such compound that has garnered significant attention in recent years is 1-(Cyanoacetyl)-3-ethylurea. This molecule possesses a captivating combination of structural complexity and potential applications in various domains, including pharmaceuticals and materials science.
Chemical Structure: 1-(Cyanoacetyl)-3-ethylurea, often referred to as CEU, is a chemical compound with the molecular formula C6H9N3O2. Its structure is characterized by the presence of a cyanoacetyl group (-C(O)CNH-) and an ethylurea group (-NHCONHC2H5), making it an intriguing molecule for chemical enthusiasts and researchers.
Synthesis: CEU can be synthesized through a multistep chemical process involving the reaction of cyanoacetamide and ethylamine. This synthesis route can be optimized for purity and yield, enabling researchers to obtain CEU in a laboratory setting.
Properties:
- Melting Point: CEU typically has a melting point around 165-167°C, depending on its purity.
- Solubility: It exhibits limited solubility in water but is more soluble in organic solvents, making it a valuable compound for organic chemistry applications.
- Stability: CEU is generally stable under standard laboratory conditions, which enhances its utility in various experiments and applications.
Applications:
- Pharmaceutical Research: CEU has gained attention in the field of pharmacology due to its potential as a versatile intermediate in the synthesis of various biologically active compounds. Researchers are exploring its role in the creation of novel drug candidates with therapeutic properties.
- Materials Science: The unique structure of CEU makes it a candidate for the development of advanced materials. It can serve as a precursor for the synthesis of polymers and other materials with specific properties, such as conductivity or catalytic activity.
- Chemical Reactions: CEU can be used as a reagent in various chemical reactions, allowing chemists to create new molecules with tailored properties. Its cyanoacetyl group can participate in reactions that lead to the formation of diverse chemical compounds.
- Research and Education: CEU serves as a valuable compound in academic and industrial laboratories for research and educational purposes. It provides students and researchers with opportunities to explore synthetic chemistry and develop problem-solving skills.
Challenges and Future Directions: While 1-(Cyanoacetyl)-3-ethylurea holds promise in several fields, there are challenges associated with its synthesis and application. Researchers are actively working to overcome these challenges and further unlock its potential. Future directions include optimizing synthesis methods, exploring its biological activity, and discovering new applications in materials science.
Additional information
| Pack Size | 50mg |
|---|
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