|
HS Code |
742587 |
| Chemical Name | N-Cyanoacetylmorpholine |
| Molecular Formula | C7H10N2O3 |
| Molecular Weight | 170.17 g/mol |
| Cas Number | 13635-07-7 |
| Appearance | White to off-white solid |
| Melting Point | 112-114°C |
| Solubility In Water | Slightly soluble |
| Purity | Typically >98% |
| Storage Conditions | Store in a cool, dry place |
| Synonyms | Morpholine, 4-(cyanoacetyl)- |
As an accredited N-Cyanoacetylmorpholine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | N-Cyanoacetylmorpholine, 100g, is supplied in a sealed amber glass bottle with a tamper-evident cap and clear labeling. |
| Shipping | N-Cyanoacetylmorpholine is shipped in tightly sealed containers under temperature-controlled conditions to prevent moisture and light exposure. The packaging complies with chemical safety regulations, with proper hazard labeling. Transport follows international guidelines for non-flammable, potentially harmful chemicals, ensuring secure handling and prompt delivery to maintain the compound’s integrity during transit. |
| Storage | N-Cyanoacetylmorpholine should be stored in a cool, dry, well-ventilated area, away from direct sunlight, sources of ignition, and incompatible substances such as strong acids and bases. Keep the container tightly closed when not in use, preferably in a chemically resistant container. Proper labeling and secure storage minimize the risk of spills or exposure. Follow all relevant safety and regulatory guidelines. |
Applications of N-Cyanoacetylmorpholine in Industrial ManufacturingN-Cyanoacetylmorpholine functions as a specialized intermediate, driving efficiency and quality improvements in selected chemical manufacturing sectors. As the direct manufacturer, we supply material that consistently meets the stringent needs of global downstream users, ensuring stable performance in every approved field of application. Below, we detail key industry scenarios where this intermediate plays a critical role, defining its place in precise process integrations, compliance standards, and the resulting end products. 1. Advanced Pharmaceutical Intermediate SynthesisIn pharmaceutical active ingredient development, downstream producers use our intermediate to construct highly functionalized heterocyclic cores with improved safety margins compared to legacy cyanating agents. This enables target molecule customization, especially for CNS-acting and anti-infective agents, by supporting mild, low-side-product N-cyanoalkylation steps suited for regulatory-compliant pipelines. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Agrochemical Azo Dye and Herbicide ManufacturingN-Cyanoacetylmorpholine serves as a key intermediate to introduce morpholine and cyano functionalities into advanced herbicide and colorant molecules. Its defined structure ensures precise substitution without unwanted side reactions often observed with alternative nitrile sources, supporting consistent field performance and regulatory compliance in end markets. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Specialty Polymer Additive FormulationWithin the engineering plastics sector, compounders utilize our intermediate as a functionalizing additive to impart cyano-morpholine side chains. This modification confers improved thermal stability, compatibility with polar co-monomers, and increased resistance to oxidative degradation in key engineered resin families, especially where high-purity intermediates minimize downstream discoloration and unwanted off-gassing. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Fine Chemicals for Electronic Materials SynthesisMajor electronics-grade additive producers employ this intermediate for cyanomorpholine-group introduction in the fabrication of photoresist agents and specialty semiconducting materials. With controlled metal impurity and moisture levels addressed by our dedicated QC, downstream manufacturers achieve reliable photoresist sensitivity and uniformity in the microfabrication of advanced circuit patterns. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
5. Chemical Building Block for Carboxamide-Functional SurfactantsGlobal surfactant formulators rely on this intermediate to introduce both the cyano and morpholine functionalities in high-performance carboxamide surfactants, which demonstrate enhanced solubility profiles and improved stability in oxidative or high-shear cleaning environments. It provides the essential backbone for targeted structure-activity relationships, addressing green chemistry and biodegradability requirements for detergent innovation. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive N-Cyanoacetylmorpholine prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.
We will respond to you as soon as possible.
Tel: +8615371019725
Email: admin@sinochem-nanjing.com
Flexible payment, competitive price, premium service - Inquire now!
Pulling together a batch of N-Cyanoacetylmorpholine in the reactor, you can sense which processes demand extra attention and which steps build value for downstream specialists. This compound, with its solid morphology and dependable chemical profile, holds a distinct spot in our product lineup and plays a crucial role in a series of demanding synthesis routes. N-Cyanoacetylmorpholine keeps coming up in conversations with colleagues working on pharmaceutical intermediates as well as fine chemical building blocks. For those who run scale-up or handle kilo-lab work, it has become a trusted raw material owing to its performance and consistency during critical transformations.
Our manufacturing teams do not take shortcuts: crafting each batch demands rigorous attention from solvent selection to crystallization and final drying. In our experience, users in the pharmaceutical sector seek materials with minimal residual moisture, high chemical purity, and trace metal residues kept as low as possible. For N-Cyanoacetylmorpholine, our lab teams monitor each lot for chemical purity above 99%—analytical profiles show clean NMR and HPLC traces, and stable melting points. Internal discussions focus on keeping process impurities predictable; we know synthetic chemists rely on reliable lot-to-lot performance to hit their downstream yield and purity targets. That reliability helps research labs cut out unexpected variables and makes larger production runs more efficient.
In routine feedback from formulators and route scouts, one question matters most: does the compound behave the way you want under the conditions you’re running? Our production supervisors test random lots in house to track for reactivity, solubility in common organic solvents like acetonitrile or dichloromethane, and handling under normal and slightly elevated temperatures. We’ve put it in front of customers trying to make heterocyclic ring closures, and plenty of time has been spent refining particle size and drying protocol to match the requirements of larger reactors and smaller research quantities alike.
In a market crowded with similar acylating agents, we recognize that the morpholine ring and the cyanoacetyl group offer a unique combination for downstream reactivity. For those who rely on alternatives such as N-acylmorpholines or acetoacetyl analogs, the distinctive cyano and morpholine functionalities in our product open up specific reaction pathways that are often off-limits with other reagents. We have seen this benefit in routes where the chemist wishes to protect a nitrogen atom, introduce a readily cleavable group, or construct building blocks for more complex scaffolds.
Compared to straight-chain cyanoamide or classic morpholine derivatives, the N-cyanoacetylated morpholine delivers enhanced stability in storage and resistance to unintended hydrolysis when stored properly. Producers who have experience with less stable acylating agents often confront issues with premature decomposition, clumping, or even off-odors. Our process takes precautions to exclude excess water and air at critical stages, preventing hydrolysis or oxidative patches seen in materials from less careful sources.
Being the manufacturer makes a real difference in how we approach continuous improvement and customer requests. Every metric stemming from yield optimization, impurity knockdown, and waste reduction feeds right back into the shop floor. Having full authority over the raw material supply chain allows us to select input chemicals with consistent certificates of analysis, and we control purification steps so closely that we can trace differences between individual drying cycles or filtration sequences.
Distributors and traders may only verify appearance or basic assay. Our factory team gets granular: they track particle flow, bulk density, blendability with other solid reagents, and flow behavior in reactors tailored from 50 liters up through 2000 liters. If a customer reports caking or fines that dust too easily, we can directly adjust drying times or particle handling in the next batch. It is factory control and direct oversight that tightens that feedback loop and encourages loyalty—and trust.
Grabbing a sample for in-process control, you sometimes spot subtle changes in color or flowability that can hint at small shifts in drying or temperature exposure. Because N-Cyanoacetylmorpholine reacts slowly with moisture, production staff make sure every lot cools under dry nitrogen to cap oxygen exposure. If downstream processes require even tighter moisture limits, we can employ vacuum transfer or package the product in moisture-barrier drums or liner bags. Handling requests for ultra-low impurity lots, we scale up extra purification steps even if yield dips slightly, because our experience has shown customers often prefer giving up a few percentage points of mass for clean reaction profiles.
We know that supply interruptions or purity swings impact research timelines, so weekly meetings bring manufacturing, QA/QC, and technical sales together. If a batch ever presents off-standard analysis, our response team investigates root causes—from a drum seal worn thin during transport to a minor shift in solvent lot. This factory-level vigilance distinguishes our reputation in the market.
Chemical manufacturing isn’t just selling a compound. We learn from formulation partners in agrochemical labs and pharmaceutical developers running first pilot trials. They ask about how the product holds up under pressurized hydrogenation, how it mixes in automated solid-feeding systems, and what sort of thermal stability margin exists if they scale into jacketed reactors.
A recurring topic is selective reactivity. The N-cyanoacetyl group proves both robust and reactive, allowing efficient introductions of cyano and carbonyl units without excessive byproduct formation. Chemists exploring new routes value this dual functionality—they can drive coupling, cyclization, or deprotection steps with more precision, and often with milder reagents downstream. Through decades of supporting these efforts, we’ve fine-tuned our process to keep byproducts under strict control. Equipment maintenance and periodic audits help prevent accidental cross-contamination with any similar morpholine or cyano compounds made elsewhere in our facility.
For research teams used to acylating alternatives—think N-acetylmorpholines, N-chloroacetylmorpholines, or dicyanoketones—switching to N-Cyanoacetylmorpholine brings observable changes. Batch reproducibility improves, fewer colored impurities arise under heat, and isolated yield after workup sees a step up. We see less tendency for thickening or viscosity jumps during solvent switching operations, which often occurs with less pure analogs. Downstream processes see fewer unexpected spots on TLC or unexplained peaks on HPLC. This not only improves compliance in regulated spaces but cuts the burden on post-reaction purification.
Every kilo delivered goes out with a traceable certificate, and our QA lab documents not just purity, but also impurity profile and physical inspection results. Customers juggling sensitive transformations or high-value APIs share positive feedback when they pull our N-Cyanoacetylmorpholine and see no batch-to-batch surprises.
We carry a sense of duty with every drum and carton heading out from our warehouse. Ensuring reliable delivery means more than quick turnaround; it means safe, compliant packaging, with full documentation provided for regulatory teams and transport partners. Our logistics planners schedule shipments to avoid extreme temperature swings, and loading crews secure each lot in compliance with safety standards.
Factories producing sensitive fine chemicals must act as stewards, not just suppliers. We run regular safety and process audits, carefully separating hazardous operations from product packing areas. Batch trace records and tracking support customer audits and comply with quality management standards. We also listen to customer feedback on labeling, traceability, and secondary repackaging, adapting processes to enhance transparency for both large-scale industrial users and smaller research buyers.
Chemical manufacturing remains one of the most closely scrutinized sectors for regulatory compliance and environmental stewardship. As the entity producing N-Cyanoacetylmorpholine at scale, we recognize the responsibility that rests on us—not only do audits evaluate product quality, but authorities check solvent usage, emissions management, and safe disposal of byproducts.
Our plant engineers have pushed for closed-loop solvent recovery and energy heat-exchange systems that keep waste output minimized, while environmental monitors maintain an inventory of waste and side stream material. We’ve reduced wash volumes and solvent loss by deploying more efficient separation and drying equipment. Where possible, we direct off-spec or waste batches through licensed destruction partners, documenting each step for government agencies and local communities. For employee health, we invest in training on safe handling—not just for N-Cyanoacetylmorpholine but for every raw material used.
Direct oversight from manufacturing through packaging and delivery keeps our practices in alignment with current regulatory expectations. Hands-on collaboration with local inspection teams and external auditors rounds out our efforts to ensure safety, minimize spill risks, and operate as part of the local community.
Operators at our facility handle the compound every day, so we know what works for transport and longer storage. Dry, cool spaces, away from direct sunlight—this formula keeps the product’s physical properties stable. N-Cyanoacetylmorpholine resists quick degradation, yet a careless seal left undone in humid air leads to clumping or slow hydrolysis. All our packing and shipment methods revolve around preventing moisture ingress, and we support customers with specific guidance for long-term storage or repackaging to suit their environment.
Feedback from users regularly influences improvements: if a pharmaceutical client notes a problem with caking during dispensing or a research operation requests smaller lot sizes to keep materials fresh, we respond by retooling filling lines, adjusting liner bags, or labeling procedures. Working closely with the receiving chemist or storeroom technician, we focus solutions on real-world needs rather than theoretical optimization.
Direct customer access means our job rarely stands still. Research groups and pilot plant specialists bring forth new requests: a lower particle size for use in liquid feeds, a tailored impurity specification for a sensitive route, or a custom drying step for extra storage time. Being a manufacturer, we can reroute process steps, run pilot batches for performance testing, and provide technical data that helps our partners upgrade or adapt their synthetic pathways.
Interest from green chemistry advocates pushes us to explore different solvent systems, better energy economies, and new catalyst regimes. Our in-house R&D and process engineering teams not only respond to market demand but also invest in new purification and analytical techniques, feeding those lessons straight back into full-scale production. As regulations and research priorities shift, we keep lines open to innovation and collaborative problem-solving.
Every pallet of N-Cyanoacetylmorpholine carries more than just a chemical—it brings the sum of our experience, the lessons from every batch cycle, and daily feedback from people who rely on consistent quality. Open feedback channels, direct process control, and years of working side-by-side with researchers and production engineers form our foundation for reliability. From supporting new drug synthesis to innovating better agrochemical pathways, our focus stays on doing the right thing, batch after batch, for every customer who trusts us to deliver.