|
HS Code |
799876 |
| Name | 2-Methoxypyridine-5-carbonitrile |
| Molecular Formula | C7H6N2O |
| Molecular Weight | 134.14 g/mol |
| Cas Number | 3430-31-9 |
| Appearance | White to pale yellow solid |
| Melting Point | 56-59 °C |
| Smiles | COC1=NC=C(C#N)C=C1 |
| Solubility | Soluble in organic solvents such as DMSO and methanol |
| Purity | Usually ≥98% |
| Storage Temperature | 2-8 °C |
| Synonyms | 5-Cyano-2-methoxypyridine |
As an accredited 2-Methoxypyridine-5-Carbonitrile factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The 25-gram quantity of 2-Methoxypyridine-5-carbonitrile is packaged in a sealed amber glass bottle with a tamper-evident cap. |
| Shipping | 2-Methoxypyridine-5-Carbonitrile is shipped in tightly sealed containers to prevent moisture and air exposure. It is packed according to chemical safety regulations, typically in amber glass bottles within padded, labeled packaging. The shipment is handled as a chemical substance, requiring appropriate documentation and adherence to hazardous material transport guidelines. |
| Storage | **2-Methoxypyridine-5-carbonitrile** should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from sources of ignition or direct sunlight. Keep it separate from incompatible substances such as strong oxidizing agents. Ensure containers are labeled properly and handled using appropriate personal protective equipment. Store at recommended temperature as per the safety data sheet (typically at room temperature). |
Applications of 2-Methoxypyridine-5-Carbonitrile in Industrial ManufacturingAs an original manufacturer, we supply 2-Methoxypyridine-5-Carbonitrile for specialized sectors that utilize its unique structure for advanced chemical synthesis. Below, we detail its core industrial application scenarios along with specific compliance, ratios, integration steps, and typical finished goods for each downstream field. 1. Pharmaceutical Intermediate for Antiviral Agent SynthesisLeading pharmaceutical companies use this compound as a pivotal intermediate during the multi-step synthesis of heterocyclic antiviral drugs. The pyridine scaffold enables regioselective transformations crucial for active pharmaceutical ingredient (API) assembly, notably in expanded nucleoside analog manufacturing. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Agrochemical Intermediate in Selective Herbicide ProductionProducers of high-value crop protection agents use this material as a building block for pyridine-derived herbicides. It forms the core ring in synthesis routes for selective pre-emergent and post-emergent weed control formulations. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Intermediate in OLED Material SynthesisMajor optoelectronic manufacturers employ this compound as an advanced intermediate for the development of pyridine-derived ligands and cores used in organic light-emitting diode (OLED) emitters and transport materials. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Fine Chemical Intermediate for Analytical Reagent SynthesisProducers of analytical reference chemicals and diagnostic kits adopt this pyridine nitrile for building specialized, functionalized pyridine derivatives used in trace detection, labeling, and bio-conjugation chemistry. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive 2-Methoxypyridine-5-Carbonitrile 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!
Manufacturing 2-Methoxypyridine-5-Carbonitrile is a process that draws upon years of process development and a commitment to quality. The product, often recognized by its precise chemical structure and the clarity of its application, has evolved into a mainstay within laboratories and production lines that value reliability and reproducibility. We produce this compound under controlled plant conditions, drawing lessons from day-to-day operations and real-time conversations with chemical engineers who have worked with pyridine derivatives since before many regulatory frameworks even came into being.
Our standard procedure runs with a lot riding on it; a single inconsistency can jeopardize downstream processes for our partners. Each lot of 2-Methoxypyridine-5-Carbonitrile exits our reactors only after passing rigorous testing, using calibrated instruments that have been triple-checked by operators who have seen what can go wrong if even minor variables are left untamed. The product presents as a pale solid due to our firm control in crystallization and drying, a quality our R&D teams have fine-tuned following countless feedback loops from scaled-up runs.
Typical specifications fall within the range that research-scale buyers and industrial customers have consistently requested. Purity exceeds 98 percent by chromatography, with trace impurities accounted for well below thresholds that would interfere in synthesis or analysis. Moisture content and residual solvents, often overlooked by those outside the manufacturer's sector, remain tightly controlled. Our facility employs vacuum-drying units and closed-system transfer to cut down even on minor chances for atmospheric moisture reabsorption between drying and packaging.
Conversations on the shop floor often revolve around process tweaks and trade-offs. Years of synthesis run under slightly shifting temperature curves or with various solvents have shown us how 2-Methoxypyridine-5-Carbonitrile’s yield and purity respond to genuine, rather than theoretical, parameters. We stick to the optimized route where the methylated pyridine undergoes precise cyanation with select catalysts, adjusting agitation speeds or distillation rates as needed according to in-process monitoring. This prevents by-product formation—a claim any competent chemist can back with HPLC data snapshots across the batch timeline.
Old hands in the plant will tell you about nights spent troubleshooting pressure drops or uneven mixing, chasing that last percentage point of purity. Their knowledge stays rooted in the product we put on the market. Quality is not just in the assay value, but in how the solid behaves during weighing, how easily it dissolves when prepared for the next chemical reaction, and in the sense of confidence it brings when it performs as expected every time.
2-Methoxypyridine-5-Carbonitrile mainly appeals to synthesis chemists developing novel active pharmaceutical ingredients, complex intermediates, and heterocyclic scaffolds in medicinal chemistry. Many teams use it as a key starting material—not an afterthought, but a lynchpin around which reaction schemes turn. Its methoxy group at the 2-position and the nitrile at the 5-position strike a balance between reactivity and stability, taking part in cross-coupling reactions, nucleophilic substitutions, and further modifications that allow for functional group elaboration.
Unlike generic pyridine derivatives, which might come with variable lots and unpredictable impurity profiles, this product sits within a narrow window of physical and chemical properties. End users won’t struggle with clumping, unpredictable melting points, or off-color signals in their NMR reads. The compound’s solubility in common organic solvents, from DMSO to acetonitrile, remains consistent—vital for scalable operations, whether for a kilo lab or a multi-ton campaign.
On the application side, medicinal chemistry researchers often report that cleaner reactions and easier product isolation trace back to the purity and process control behind the starting reagents. In-house, we have supported several API development programs where a deviation in the supply quality led directly to lower yields and extra purification steps. Consistent supply lets research move forward faster and with fewer surprises—a benefit not to be underestimated in competitive environments where a week’s delay might cost thousands of dollars and months of patent advantage.
The world of pyridine chemistry features a dizzying array of modified compounds, each serving its purpose — yet differences matter in practice, not just on paper. 2-Methoxypyridine-5-Carbonitrile varies from its counterparts in more than just the position of a functional group. Its reactivity profile sets it apart from 2-cyanopyridines or 3-methoxy analogs. Chemists tell us the nitrile at the 5-position invites unique reactivity with organometallics and tailored coupling reactions, opening the door for routes impossible with other isomers.
Supplying both isomers and analogs for years has shown us the impact of even a small structural change. While a 3-methoxypyridine may require higher temperatures or harsher conditions to catalyze the same transformations, the 2-methoxy group exerts a different electron-withdrawing influence, lowering activation energies and favoring more selective product outcomes. Our labs have tracked these differences batch after batch, correlating impurity formation and side product profiles with structural features.
Another often-overlooked detail lies in how the compound handles in the warehouse. Some similar nitriles absorb moisture and start to degrade within weeks on the shelf. Our product’s process, with tightly controlled storage parameters, prolongs shelf life and removes one more headache for the chemist counting on every gram to weigh out true to scale.
There’s no substitute for experience in recognizing and controlling the variables that affect a specialty chemical. Even processes well described in patent literature or textbooks fail to account for the truth of industrial-scale production. The solvent quality, vessel material, raw material lot variance—each has changed product yields and specs, sometimes in ways only discovered with the benefit of hundreds of runs and constant feedback between operators and lab staff.
Our process improvements came from repeated challenges, not textbook plans. Over time, we reduced energy consumption by fine-tuning reaction temperatures and replaced less safe reagents with friendlier alternatives—improvements born from things going awry before they ran smooth. Every bottle or drum of 2-Methoxypyridine-5-Carbonitrile comes with the confidence that only a manufacturer who has seen a process from pilot to production can bring. That knowledge touches everything: logistics, storage, packaging choices, and technical support.
Questions from long-term clients have pushed us to innovate ways to reduce residual metallic contaminants without driving up costs. Instead of relying on extra purification steps, which increase solvent waste and complexity, we worked with suppliers to tighten specifications on starting materials. We invested in inline monitoring systems calibrated for the exact transitions this molecule undergoes, allowing real control at the moment of synthesis instead of after-the-fact troubleshooting.
Modern product development is more than just churning out tonnage. Medicinal chemistry teams rely on the reproducibility and documentation provided with each lot, and regulatory demands grow stricter every year. We maintain analytical records that track every lot back to its batch card and operator log. When a question about an impurity or trace metal arises, chemists know they can trace the answer right back to the day and shift it was made.
We’ve put effort into reducing the environmental footprint of pyridine-derivative production. Solvent recovery processes now reclaim more than 85 percent of processing solvents. Waste streams pass through advanced treatment facilities installed on site, informed by years of hard lessons in the environmental costs of specialty chemicals. We openly share our emissions and recovery statistics with clients who request sustainability data for their supply-chain audits.
Years ago, few would have thought to ask about renewable energy usage or closed-loop cooling in a specialty chemical plant. Today, end users are right to demand transparency about origin, safety protocols, and environmental impact. Our manufacturing teams have responded, adopting process tweaks and retrofitting controls as standards evolved—not to check a box, but because it eventually improves yield, operator safety, and community trust around our facilities.
Manufacturers hear every kind of technical request, from the straightforward to the highly novel. An API chemist once contacted us, struggling with a rare by-product formation in a custom synthesis. Years producing both the target molecule and its close analogs gave us the insight to recommend temperature profiling and the addition of a particular scavenger—adjustments that solved the issue in the very next run. This is a level of insight not available to those removed from manufacturing or simply moving inventory.
We encourage open dialogue with customers, especially those scaling up or developing new routes for regulatory filings. Our technical team tracks feedback over time, using it to drive process upgrades or even new product development. Patterns in user challenges, such as solubility shifts or unexpected color changes, may prompt a review of raw material sources or drying conditions. These real-world lessons filter back to the plant floor, closing the loop between initial synthesis and end-use success.
Custom orders, specification tailoring, and advice on scale-up or process troubleshooting—all come standard for clients working directly with us. Having the capability to adjust not just the final product specs but the actual synthetic route has let us say yes to requests that distributors can't touch or don't understand. That’s what direct manufacturing brings to the table: the power to answer challenging questions with both lab data and plant-floor memory.
2-Methoxypyridine-5-Carbonitrile is one of those building blocks that sits quietly at the base of much more complex value chains—yet its quality can accelerate or stall entire R&D and production campaigns. Sourcing straight from the manufacturer removes ambiguity about the product’s history, storage, and compliance, and brings peace of mind to buyers who need answers about consistency, supply continuity, and future-proofing for regulatory changes.
This direct relationship also offers a feedback path that is blunt and honest. If a batch ever fails to perform, our lab is where investigation starts. Results feed right into process improvement. For custom synthesis projects, this approach accelerates not just delivery but innovation itself, as ideas from the user interface directly with the people and equipment that make the product every day.
It all comes down to experience—the lived, often hard-won lessons from doing rather than simply describing. Working close to the plant floor, and listening to chemists and engineers who use these compounds in the real world, has informed every decision from raw material selection to packaging. We’ve seen what happens when a supplier cuts corners, or a process slips below best practice; these lessons have steered us toward stronger compliance, better training, and technical innovation.
Purchasers and R&D chemists value more than just a high-purity number or a tidy certificate. They draw confidence from knowing the handoff happens directly, from those who make, test, pack, and ship the real material. Problems can and do occur in high-stakes chemical operations; what matters is how transparently and quickly they get addressed. That kind of trust can’t be bought or faked; it grows batch by batch, shipment by shipment, through a commitment to clarity and accountability.
Chemical manufacturing never sits still. Increasing regulatory scrutiny, ever-tighter process specs, and new routes appearing in patent literature every month mean our work keeps changing. Yet the core values remain: keep the product consistent, keep the communication open, invest in the facility and its people. Upgrades to control systems, process automation, and analytics feed into putting out 2-Methoxypyridine-5-Carbonitrile that research labs and manufacturers alike can count on today and into the future.
Our eyes remain fixed on both current customer needs and the near horizon. Whether developing greener synthesis options or collaborating on innovative intermediates, we leverage deep experience of actual manufacturing to partner in advancing the specialty chemical field. Direct manufacturing of 2-Methoxypyridine-5-Carbonitrile is not just about producing a compound—it’s about enabling progress, supporting innovation, and building relationships grounded in a shared dedication to chemical excellence.