| HS Code | 577553 |
| Chemicalname | Diethylaminocyanide |
| Molecularformula | C5H10N2 |
| Molarmass | 98.15 g/mol |
| Casnumber | 871-68-5 |
| Appearance | Colorless or pale yellow liquid |
| Boilingpoint | 142-143 °C |
| Density | 0.85 g/cm3 |
| Solubilityinwater | Decomposes |
| Meltingpoint | -36 °C |
| Flashpoint | 40 °C (104 °F) |
| Refractiveindex | 1.408 |
| Smiles | CCN(CC)C#N |
As an accredited Diethylaminocyanide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Diethylaminocyanide, 25g, is supplied in a tightly sealed amber glass bottle with a warning label, stored under inert atmosphere. |
| Shipping | Diethylaminocyanide should be shipped in a tightly sealed, chemical-resistant container, protected from moisture and light. It must be labeled properly as a hazardous material and handled in accordance with local regulations. Transportation should be via specialized carriers, with appropriate documentation, and in compliance with safety protocols for toxic and flammable chemicals. |
| Storage | Diethylaminocyanide should be stored in a tightly sealed container under an inert atmosphere, such as nitrogen or argon, to prevent hydrolysis and decomposition. Keep it in a cool, dry, and well-ventilated area, away from moisture, heat sources, and incompatible materials like acids and oxidizing agents. Handle and store under fume hood with appropriate personal protective equipment. |
Diethylaminocyanide serves as a specialized intermediate in the synthesis of advanced organic compounds, supporting high-purity downstream production in fine chemicals, pharmaceuticals, agrochemicals, and specialty polymer industries. Our factory-grade product integrates into established manufacturing processes, meeting the stringent requirements of regulated markets and end-use performance specifications.
In pharmaceutical manufacturing, diethylaminocyanide is employed as a reactive cyanation agent and building block for nitrogen-containing heterocyclic structures within active pharmaceutical ingredients (APIs). Its utility is favored for specific syntheses where other cyanide reagents could pose regulatory or impurity concerns. Process chemists incorporate it primarily in the multi-step synthesis of antiviral and cardiovascular drug molecules, where its purity and reactivity profile enable compliance with global pharmacopoeia standards and trace impurities control.
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Agrochemical producers use diethylaminocyanide as a core nitrile source in the construction of selective herbicide and pesticide intermediates, especially in the synthesis of compounds where direct cyanation steps are required for triazine or pyridine ring formation. The raw material’s high reactivity reduces side product formation and ensures tight batch-to-batch reproducibility, a critical factor for regulatory acceptance in crop protection active ingredient manufacturing.
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Producers of specialty dyes and organic pigments select diethylaminocyanide for ring closure and colorant precursor formation, particularly in the manufacture of cyanine and azo dye segments that require stable, electron-rich intermediates. Its consistent reactivity minimizes color variability and byproduct formation, which is crucial for achieving precise spectral properties in high-value dyes for electronics or imaging applications.
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Manufacturers in the field of advanced electronic chemicals utilize diethylaminocyanide as a reagent in the assembly of imine and nitrile functional groups, underlying the production of charge-transport materials and photoactive monomers. Its high purity ensures consistent device performance, making it suited to the synthesis of small-molecule semiconductors and functional monomers for organic LED layers and photovoltaic applications.
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High-performance polymer engineering integrates diethylaminocyanide into the synthesis of chain-modified acrylates and amide-type monomers, which benefit from the presence of reactive nitrile moieties for thermal, electrical, or barrier property enhancement. Compounders and resin formulators employ it specifically during the design of polymers with customized end-group functionality, supporting innovation in adhesives and specialty coatings sectors.
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Competitive Diethylaminocyanide prices that fit your budget—flexible terms and customized quotes for every order.
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Decades of synthesizing specialty chemicals have taught us that some compounds never quite attract much attention outside the labs, but quietly keep process chains running across research and production lines. Diethylaminocyanide belongs to this group. Chemists recognize it for its reactivity and versatility, and manufacturers like us keep steady supplies on tap, even when its name rarely makes the rounds at industry fairs. Here’s a closer look at our approach to producing, packaging, and delivering this specialty amid shifting trends in pharmaceutical innovation and complex organic synthesis.
Our plant began manufacturing Diethylaminocyanide over two decades ago after requests from research groups pursuing specific carbon-nitrogen bond connections. The initial models relied on batch processes, which meant tight controls, careful parameter monitoring, and plenty of patience. Over the years, our teams refined the pathway, trimming side reactions that often crept up when handling cyanide intermediates. We invested in newer distillation setups to ensure purity levels could consistently reach the standards that high-stakes projects demand. A typical batch today achieves over 99 percent purity, with every shipment tied back to a traceable lot number and a full analysis sheet. This approach addresses what matters most to our long-term partners: reproducibility, clarity, and quick answers if something unexpected comes up. We send nothing out that hasn’t already met our internal benchmarks for color, odor, and volatility—three immediate tells if a run has picked up contaminants or veered off specification.
We standardize our Diethylaminocyanide as a clear, colorless-to-light yellow liquid. Chemists often notice its sharp, penetrating odor, a reminder that it falls under the broader family of aminonitriles. Our production draws from tried-and-tested routes, leveraging diethylamine and cyanogen chloride as starting materials under tightly regulated temperature and pressure profiles. Our model—DEAC-99—serves as both a batch identifier and a nod to our established purity threshold. Each run passes through in-line monitoring for both moisture and byproduct content because unwanted water impacts downstream reactions in ways that don’t show up until later stages. We package the product under inert atmosphere in sealed glass ampoules or fluoropolymer-lined containers to block atmospheric moisture, which helps protect both efficacy and shelf life.
Most requests for Diethylaminocyanide come from pharmaceutical and agrochemical projects in R&D or pilot-scale synthesis. The compound’s strong nucleophilic properties allow for controlled insertion of the —CN group into aromatic and aliphatic compounds. This opens doors not only for building blocks in active pharmaceutical ingredients but also for fine chemicals destined for materials science. Over the years, we’ve seen increasing demand in high-throughput discovery labs, where chemists lean on reliable aminonitrile intermediates to enable parallel synthesis of candidate molecules. We field technical questions almost weekly around compatibility with solvent systems, temperature profiles, and scalability—a sign that customers trust manufacturers who handle their own analytical work.
Feedback from repeat customers changed how we handle packaging. Early models used standard glass, but trace etching and product breakdown cropped up in samples stored for several months. After batch testing multiple lining materials, we switched to a multilayer fluoropolymer setup for all outgoing containers. This shift cut down on shelf life complaints and product discoloration, especially for overseas shipments subjected to wide temperature swings.
Diethylaminocyanide requires thoughtful handling. On the plant floor, fume hoods and airtight processing lines are the norm. The cyanide component, while solidly bound in this molecule, can break free if mishandled, especially in the presence of strong acids or oxidizers. We train crew members to spot early signs of vapor leaks and rely on continuous atmospheric monitoring. Our shipping department enforces double-sealing, offering both peace of mind and insurance as it moves through customs or regulatory checkpoints. This strategy comes from lived experience—decades ago, a mis-sealed container led to a detectable odor on arrival, prompting a top-to-bottom review of our process. We learned that ongoing vigilance, rather than one-time audits, keeps everyone safe.
Unlike resellers or traders who depend on variable suppliers, we formulate every batch under our roof, sticking to a single-component specification model. This direct control cuts out inconsistencies seen with outsourced lots, which sometimes reach the end user below stated purity or with unpredictable byproducts. We catch subtle batch-to-batch differences fast—maybe a trace impurity flagged by GC-MS trending up over successive runs, or a shift in physical properties after a maintenance cycle. This vigilance allows us to tweak parameters on the fly and reset standards before out-of-spec material leaves our facility. This hands-on approach matters most for chemists who stake their research on narrow tolerances. Recent customer feedback confirmed that our directly produced Diethylaminocyanide exhibits tighter control over melting and boiling points compared to third-party sourced material, supporting precision in medicinal chemistry and exploratory catalysis projects.
Manufacturing brings with it a deep, practical understanding of how a chemical behaves over time. Take shelf stability: customers often ask about long-term storage. We draw on historical analysis of retained samples, noting that properly sealed material stored between 2°C and 8°C maintains color and reactivity for well over 18 months. Tanks and transfer lines see regular cleaning to block cross-contamination, which would otherwise compromise purity in subsequent runs—a safeguard missing from many offsite blending operations we’ve reviewed. We keep a technical service line open, staffed by chemists who have physically handled the product, not just read a manual. Some customers need tailored advice—how to minimize hydrolysis risk when scaling up, what to expect with various solvent pairings, or how to monitor for trace decomposition in long-term experiments. Our support isn’t based on scripts or generic guides; it builds on what we’ve observed batch after batch.
Each production cycle begins with well-characterized raw materials collected from established suppliers, many of whom we’ve worked with for years. Our QC department runs spectroscopic and chromatographic checks on every lot before use; even minor anomalies prompt quarantine and investigation. Once the batch process kicks off, staff log temperature, pressure, and flow rate data to catch drift before it turns into quality loss. The years have taught us that consistency depends on both diligent record-keeping and the instincts honed by working with these intermediates daily. Completion brings a final battery of checks—IR spectrum, GC profile, visual exam, and odor test—before we sign off on release. Shipment logs tie every outgoing package back to the raw data, a trail valued by both our customers and regulators during audits.
Global supply disruptions and tightening safety regulations push every manufacturer to adapt. We responded to supply chain pressures by holding larger in-house reserves of key precursors. Planners now work months ahead, examining patterns and flagging shortages early. The move away from certain hazardous intermediates on the market prompted us to refine our synthetic route, eliminating a particularly problematic chlorinated byproduct that regulators began targeting for phase-out. We retooled one reactor train, upgrading seals and control systems, so that routine maintenance no longer interrupts output. Every tweak arises from concrete feedback—either our own team noticing trends or a customer flagging unexpected downstream reactivity. We track these issues in real time, build searchable records, and revise SOPs with team-wide training sessions. By logging both successes and failures, we keep raising the standard in each operation.
Downstream applications—especially in pharmaceuticals—demand uncompromising control over starting material. Too often, stories circulate about material with a purported 99 percent assay that turns out to carry trace secondary amines or oxidized debris, derailing multi-step syntheses and wasting research time. Handling both synthesis and QC in-house means stray peaks in the NMR spectrum become puzzles for our team, not headaches for our customers. Chemists reach out for re-tests, and we share archived analytical data rather than pointing to third-party certificates. Our lab personnel run tandem analyses to recreate customer scenarios, stepping through reaction conditions to confirm reported discrepancies. This way, both parties learn from outliers and build trust over months and years.
Applications keep evolving: from classic nucleophilic substitution to positive findings in novel heterocycle creation, materials science, and even dye work. Smaller biotech firms have approached us for pilot lots to explore new chemical libraries, while established firms draw on our larger-scale output for late-stage clinical compound synthesis. Our ability to respond flexibly traces back to direct control over each unit operation. We can pivot from a high-purity analytical grade for university research to a larger, process-grade lot suited to bulk process settings. All documentation and regulatory support travel with the shipment, answering questions at customs and during on-site audits.
Real, sustained improvements stem from open exchanges with users. One example: several years ago, a customer flagged an off-note in the product’s smell after long transit. We tracked it to trace amounts of an early-stage side product accumulating under certain shipping climates. This finding led to changes in how we age product prior to bottling, which now includes a week-long stabilization period under inert nitrogen. These small shifts, driven by feedback and internal follow-up, build value far beyond what’s possible from brokers or importers with no production oversight. We encourage site visits and audits, as transparency sets the right expectations and clears away doubts—especially for clients navigating rigorous regulatory environments. Each stage, from raw material screening to finished product shipment, opens for customer review. This approach forms the baseline for long-term trust and smoother technical exchanges, making downstream problem-solving much faster.
The world keeps changing how it invents and produces chemicals. Automated synthesis, green chemistry, and continuous flow production demand that every input meet tighter standards for both purity and documentation. Our in-house chemists monitor proposed regulatory changes in real time, preparing to adapt our processes before new thresholds go into effect. Recent upgrades automate sampling and trend analysis, flagging subtle deviations faster than previous manual logs could manage. We collect and preserve production records for every run, extending up to ten years, backing up every lot sold for traceability. As synthetic methods evolve, we maintain open dialogue with research groups to learn what starting material qualities drive better outcomes—whether it’s tighter control on water content, specific packaging for sensitive reactions, or new formats that streamline handling on automated platforms.
Sustainability starts inside the fence. We treat all effluent streams with multiple redundancy, neutralizing cyanide compounds on site before discharge. Recovered solvents pass through an in-house purification program, keeping both costs and waste in check. Every new process starts with a rigorous safety and environmental review, looping in feedback from each department. Regular drills and hands-on training, not just annual refreshers, keep staff primed for dealing with leaks or accidental exposures. Years without a reportable incident underscore the power of practical vigilance and personal accountability on the plant floor. We share safety improvements and process adjustments openly, both among our peers and in customer conversations, since what protects a manufacturer’s staff often translates into cleaner, safer products reaching every end user.
Our outlook grows from decades of real-world production experience. Unlike hands-off approaches that come with contract blending or anonymous sourcing, our people live daily with the sights, sounds, and nuances of specialized chemical manufacture. They sense developing trends in product quality and respond quickly—tightening specs, reinforcing packaging, adjusting scheduling to buffer busy months, and troubleshooting alongside customers. This cycle—repeatable analysis, direct feedback, and prompt solution—forms the backbone of how we bring Diethylaminocyanide from concept to container. The end result: material that matches the evolving needs of innovative scientists while supporting broader industry shifts toward safety, reproducibility, and transparency, batch after batch and year after year.