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HS Code |
873942 |
| Chemical Name | 1-Pyridin-2-Yl-Ethylamine |
| Molecular Formula | C7H10N2 |
| Molecular Weight | 122.17 g/mol |
| Cas Number | 3247-90-3 |
| Iupac Name | 2-(2-Pyridyl)ethylamine |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 221-223 °C |
| Density | 1.070 g/cm3 |
| Solubility In Water | Miscible |
| Refractive Index | 1.559 |
| Pka | 9.59 (for the amino group) |
| Smiles | NCCc1ccccn1 |
| Inchi | InChI=1S/C7H10N2/c8-6-5-7-3-1-2-4-9-7/h1-4H,5-6,8H2 |
| Hazard Classification | Irritant |
As an accredited 1-Pyridin-2-Yl-Ethylamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle labeled "1-Pyridin-2-Yl-Ethylamine, 100g." Tamper-evident cap, hazard pictograms, and safety information printed clearly. |
| Shipping | **Shipping Description:** 1-Pyridin-2-Yl-Ethylamine is shipped in tightly sealed containers, protected from light and moisture, and clearly labeled as a chemical substance. Transportation follows all relevant safety regulations for hazardous materials. Packages include proper documentation and handling instructions to minimize exposure and ensure safe delivery to authorized recipients. |
| Storage | 1-Pyridin-2-yl-ethylamine should be stored in a tightly sealed container, away from light, moisture, and incompatible substances such as strong oxidizers. Keep the storage area cool, dry, and well-ventilated. Store at room temperature and avoid excessive heat or direct sunlight. Label the container clearly and ensure it is kept away from sources of ignition and out of reach of unauthorized personnel. |
Applications of 1-Pyridin-2-Yl-Ethylamine in Industrial Manufacturing1-Pyridin-2-Yl-Ethylamine is an advanced pyridine-based amine intermediate used in several demanding industrial processes, especially those requiring stable heterocyclic compounds. As the direct manufacturer, we supply this raw material to customers in chemical synthesis, pharmaceuticals, agrochemicals, high-performance coatings, and advanced catalyst preparations. Each downstream application follows sector-specific regulatory, process, and formulation controls to achieve reliable scale-up and end-product quality. 1. Synthesis of Active Pharmaceutical Ingredients (APIs)Pharma manufacturers use 1-Pyridin-2-Yl-Ethylamine as a nitrogen-containing building block in multi-step synthesis of several drug compounds, including intermediates for antihypertensive and CNS agents. Its primary amine group enables direct incorporation in key condensation and substitution steps. All usage must comply with stringent medicinal standards, and the aromatic amine character supports the formation of heterocyclic drug scaffolds for late-stage reactions. Industry compliance standards
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2. Crop Protection Chemical SynthesisLeading agrochemical producers employ this pyridine amine as an essential intermediate for selective herbicides and pesticide enhancers. During synthesis, it reacts with activated halides and carbonyl compounds to introduce pyridine motifs critical for pesticide target specificity. The amine enables the construction of actives with tailored activity profiles, and all material handling must comply with agrochemical quality and safety mandates. Industry compliance standards
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3. Resin and Specialty Polymer Additive ManufacturingSpecialty polymer and thermoset resin manufacturers dose this compound to impart nitrogen-doped functionalities for anti-static, conductive, and structural properties. In epoxy, polyurethane, and acrylic systems, the amine introduces additional reactivity, allowing resin formulators to design polymers with enhanced bonding, adhesion, and chemical resistance. Consistent raw material quality is vital to meet downstream product performance and sector-specific regulations. Industry compliance standards
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4. Fine Chemical Intermediate for Heterocyclic Compound SynthesisFine chemical manufacturers introduce this raw material at critical stages of heterocyclic synthesis, especially where reactivity toward isocyanates, aldehydes, and carboxylic acid derivatives is required to build complex ring systems. The amine group facilitates selective modifications and provides process versatility for chiral or substituted pyridine derivatives needed in advanced material and flavor chemical sectors. Industry compliance standards
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5. Catalyst Ligand Precursor in Homogeneous CatalysisProducers of homogeneous catalysts and ligand systems utilize this amine to generate bidentate ligands for metal-catalyzed organic transformations. Its pyridine nitrogen and ethylamine provide key coordination sites for metal centers, supporting catalytic processes in pharmaceutical and fine chemical syntheses. Quality of raw material impacts both coordination environment and eventual catalytic activity, requiring precise documentation and control throughout formulation. Industry compliance standards
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Years of manufacturing experience have shown that the real value of 1-Pyridin-2-Yl-Ethylamine goes much deeper than its technical description or catalogue entry. In our daily production work, we handle this compound as a clear example of innovation responding to genuine industry problems. The molecular structure features a pyridine ring linked directly to an ethylamine group, and even this subtle arrangement can lead to meaningful differences in reactivity, process handling, and ultimate end uses compared with substituted anilines, benzylamines, or other pyridinyl amines.
Each batch starts from well-sourced pyridine derivatives. We place strong emphasis on minimizing trace impurities and streamlining the reductive amination, because lab experience and customer feedback both make it clear that minor deviations in material can show up both in analytical control tests and in downstream yield losses. The most demanding pharmaceutical and specialty chemical makers have called for a product with over 99% GC purity, tight control of moisture, and predictable lot-to-lot composition. We do not ignore such requests, and over time we’ve adjusted our process to reliably deliver on this guarantee.
Many years of scale-up in batch and continuous-flow modes have shown that the properties of 1-Pyridin-2-Yl-Ethylamine cannot be left to average values or theoretical estimates. Temperature swings or slight catalyst poisoning can drift the amination or leave color bodies in the product. Our reactors have been tuned for reproducibility; on a day-to-day basis, the operation team routinely monitors color, odor (a faint aminic-pyridine note), specific gravity, and analytical fingerprinting by LC-MS. With each outgoing lot, we test not only for the main peak by GC, but also for residual amines, aldehydes, and traces of water, because nothing sinks a downstream synthesis faster than unexpected side reactivity.
We are direct participants in the ongoing conversation with our customers, ranging from multinational pharma to startup catalyst developers. More than a decade’s work with diverse users taught us how easily a source of 1-Pyridin-2-Yl-Ethylamine can become a variable in their quality records. That is why all product we ship reaches the requested purity threshold, and—equally important—shows consistent impurity profile, so our customers do not need to revalidate their own processes for every batch.
Chemists and formulators often compare 1-Pyridin-2-Yl-Ethylamine to isomers and analogs, including 2-picolylethylamine and standard benzylamines. Through actual bench testing, the core advantage of our compound lies in the way the ethylamine moiety influences nucleophilicity and permits selective reactivity. Laboratory teams have confirmed more controlled reactions with acyl chlorides and aldehydes—not only faster, but also offering cleaner conversion rates, especially in settings such as pharmaceutical intermediate coupling, alkylation steps, or resin modification.
Some partners have pointed out that switching to this molecule from less pure alternatives or different isomers drastically cuts purification overhead. For one customer working on a new CNS-acting agent, gentle purification meant reduction in hazardous waste, lower organic solvent consumption, and faster batch turnaround. In catalysis screening, the difference in ligand formation efficiency is stark: our prep consistently delivers sharper catalytic cycles and improved yields. Years of feedstock adjustment and reaction auditing back this difference; it’s not theory but lived production experience.
From the manufacturing floor, quoted specifications must match what people actually measure—not just what spec sheets declare. Every container dispatched meets an agreed moisture content, so synthetic chemists never face dropped yields because of stray water. GC purity above 99% has become non-negotiable for serious buyers, and analytical chemists want supporting data for residual pyridine and related volatiles, since even low ppm residues can poison catalysts or disrupt downstream chiral separations.
We ship in steel drums with nitrogen backfilling or small HDPE bottles for R&D teams, always controlling for oxygen ingress since oxidative color change is easily visible to practiced eyes. Our warehouses and shipping partners follow protocols preventing exposure to temperature swings that cause product degradation or pressure build-up. This is born not just of regulatory concern, but of hard lessons—one batch damaged by shipping conditions can mean product recall or the loss of a year-long customer project.
Most users know 1-Pyridin-2-Yl-Ethylamine from its function as an intermediate in synthesis—the heart of its appeal for process chemists. In pharmaceutical R&D, teams use it as a building block for substituted pyridine alkyl amines, which appear throughout newer CNS, anti-inflammatory, and antiviral agents. The aminoethyl group opens doors to amide coupling, reductive alkylation, and even the construction of complex heterocyclic systems. Analytical development teams often report a smoother path to purification and higher reproducibility in high-throughput screening projects after switching to our material.
Outside pharma, some coatings engineers employ it as a monomer unit in specialty polymer backbones, imparting unique solubility profiles or electronic properties through the pyridine ring. We have partnered with pigment and additive formulators who rely on its robust N atom, harnessing its ability to anchor metal centers or act as a stabilizer in colorant blends. In agricultural chemistry, some new experimental herbicides use this amine as a reactive handle to explore novel SAR spaces. We ourselves have seen the regulatory shift prompting industrial customers to favor higher purity, fully traceable batches, both for safety documentation and future innovations.
The actual work of making, refining, and packaging 1-Pyridin-2-Yl-Ethylamine exposes what textbooks and datasheets miss. Our team has overhauled glassware washing steps, upgraded venting for pyridine odor, and experimented with both continuous flow and batch hydrogenation to get a cleaner, faster reduction. Operators recognize immediate feedback from changes in feedstock quality, and our QA staff confirm that the laboratory and plant environment must be kept clear of nitrogenous cross-contamination.
Routine visual checks for product color, odor, and crystallinity supplement instrument-based controls. If a batch picks up any yellowing or haze, our team isolates and investigates possible contamination sources before any shipment leaves the plant. Employee-led safety meetings led to small changes—like cooling curve adjustments or better PPE near amine transfer points—which make a major difference over the long term.
Our direct interface with regulatory inspectors and purchasing agents made it clear that end-users want more than a technical analysis. Supply chain transparency and traceability matter, especially as pharmaceutical authorities and electronic material producers raise their standards. Shipments include lot-specific data about impurity tracebacks, storage conditions, and retest intervals, drawn from actual plant records. We avoid "one-size-fits-all" specifications, since R&D labs, scale-up plants, and toll manufacturers all express unique needs and margin tolerances.
Sourcing reliability is one ongoing challenge we openly face. Secure agreements with upstream pyridine suppliers and a backup process for critical reagents have safeguarded production through both surging demand and market shortages. This approach puts us, as the actual manufacturer, in a position to accommodate special orders and guarantee continuity of supply—which matters the moment a customer must meet a clinical development milestone or a scaled-up commercial launch.
Our staff chemists routinely consult with partner R&D teams to interpret analytical issues and troubleshoot synthetic bottlenecks. Such dialogue is direct: we work with customer teams to adjust impurity thresholds, design custom-sized lots, or propose process changes to reduce environmental impact. On several occasions, alerts from client labs uncovered trace-level byproducts undetectable by standard testing. We reviewed and re-optimized our purification steps, yielding not only a better product but also deeper mutual knowledge of reaction pathways and stress conditions.
Conversations with academic and institutional researchers highlight a growing interest in niche applications—such as molecular probes, ligand libraries, or materials science prototypes. Feedback cycles with these customers help us anticipate future regulatory changes, new applications, and shifting purity requirements, so investment in instrumentation and plant upgrades is driven by reality rather than speculation.
Anyone working with 1-Pyridin-2-Yl-Ethylamine quickly realizes it is more reactive and requires tighter handling practices than less functionalized amines. The low vapor pressure under ambient storage helps reduce inhalation risk, but attention to tight seals and localized ventilation still matters, especially in analytical and handling labs. Our shipping crew double-checks that packaging seals properly and that secondary containment is in place to prevent odor transfer or minor leaks, lessons learned from years of customer feedback and incident review.
Some large-scale users have installed in-line monitoring to trace the product as it moves from storage tanks to process vessels. We share flow and storage data gathered over years, helping process engineers anticipate potential bottlenecks or degradation points. For operations in colder regions, we recommend insulation practices to keep the material in range, based on observed changes in viscosity and pourability at lower temperature.
Rigorous customers often ask whether our 1-Pyridin-2-Yl-Ethylamine will support continuous-flow amination or perform as expected in plant-scale hydrogenations. Through repeated production runs, we tracked key parameters (batch size effects, catalyst aging, moisture ingress) and shared optimized run conditions. For example, a major pharmaceutical partner adopted these changes and saw significant reduction in filter clogging and unwanted byproducts. Customers considering switching from other amines consult us about solubility, reactivity, and volatility profiles. We use real-world data—down to melting and boiling ranges, vapor pressure curves, and amine quantification by NMR—rather than resting on standard reference values.
We document and openly communicate shelf life and storage recommendations built on years of retained sample monitoring, not generic supplier claims. If a batch remains stable and shows no impurity drift after 18 months, the records support extending retest intervals, which helps formulators and plant buyers manage inventory more confidently.
Any chemical plant can say they practice “continuous improvement,” but those of us working on the shop floor know the cycle of feedback, analysis, and adjustment never really ends. The best ideas—like refining condensate removal or improving vessel cleaning for cross-batch control—come from the team running reactions, not consultant memos. We keep up with new analytical techniques and regulatory updates, but immediate, practical learnings from observing even small deviations in product are what keep quality and reliability high.
We encourage team members to report process hiccups, even if the final lot makes spec. Short-term fixes become long-term improvements: an operator’s note about color drift led to an overhaul in filtration steps, which in turn made its way into the plant SOP. Years of these incremental gains now differentiate our batches in customer plant trials and regulatory audits.
Practical experience shapes the support we give customers navigating applications or supply challenges. Requests for documentation, impurity clarification, or alternate packaging are filtered through what our plant genuinely can or cannot do, and we do not overpromise. If a project requires extra stability or tighter impurity levels than our normal runs deliver, we flag this right away and work together with the customer’s specialists. The best way to sustain business and trust is through practical partnership built on openness about plant capacity, process constraints, and actual material performance.
Through hundreds of development, scale-up, and shipping runs, we have seen how a manufacturing-focused approach lets us maintain the reliability, safety, and performance our customers depend on in 1-Pyridin-2-Yl-Ethylamine. Direct handling, field experience, and ongoing conversation with users, not speculation or generic words, inform everything we do to keep this essential building block available at the quality the industry really uses.