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HS Code |
846809 |
| Cas Number | 25513-64-6 |
| Molecular Formula | C9H11NO2 |
| Molecular Weight | 165.19 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 270-272°C |
| Melting Point | -8°C |
| Density | 1.113 g/mL at 25°C |
| Refractive Index | 1.505-1.507 |
| Purity | Typically ≥97% |
| Solubility | Slightly soluble in water; soluble in organic solvents |
| Flash Point | 126°C |
| Smiles | CCOC(=O)CC1=CC=CC=N1 |
As an accredited Ethyl 2-Pyridylacetate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Ethyl 2-Pyridylacetate is supplied in a 100g amber glass bottle, sealed with a screw cap, and labeled with safety information. |
| Shipping | Ethyl 2-Pyridylacetate is shipped in tightly sealed containers, compliant with chemical safety regulations. It is typically transported in cool, dry conditions, away from heat sources and incompatible substances. Proper labeling and documentation accompany each shipment to ensure safe handling during transit. Protective packaging guards against leakage and contamination. |
| Storage | Ethyl 2-Pyridylacetate should be stored in a tightly sealed container, away from moisture and direct sunlight, in a cool, dry, and well-ventilated area. Avoid sources of ignition and incompatible substances such as strong oxidizers. Ensure proper labeling and access only to trained personnel. Periodically check the container for leaks or deterioration and always follow local regulations for chemical storage. |
Applications of Ethyl 2-Pyridylacetate in Industrial ManufacturingEthyl 2-Pyridylacetate functions as a high-value intermediate in several specialized chemical production chains worldwide. As a direct manufacturer, we focus on its established roles within pharmaceutical synthesis, crop protection, specialty ligand production, advanced organic synthesis, and fine fragrance formulation, supplying customers who demand product traceability and compliance at every step of downstream integration. 1. Active Pharmaceutical Ingredient (API) SynthesisEthyl 2-Pyridylacetate serves as a key building block in the synthesis of pyridine-derived APIs, particularly in the production of central nervous system and anti-infective agents. It undergoes alkylation, condensation, and ester hydrolysis reactions during multi-step pharmaceutical manufacturing, enabling the construction of pyridyl-based drug scaffolds validated in several registered formulations. Because this sector demands rigorous product characterization and batch control, each lot supports full analytical documentation. Industry compliance standards
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2. Agrochemical Intermediate ProductionWithin crop protection chemical manufacturing, Ethyl 2-Pyridylacetate operates as a precursor for synthesizing specialized pyridyl-containing pesticides and herbicides. It enters at the pyridyl functionalization stage, contributing to the structural foundation of selective active compounds. Our production’s analytical traceability assists downstream QA teams during both pilot and commercial-scale runs for regulatory monitoring of residues and impurities. Industry compliance standards
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3. Specialty Ligand and Catalyst ManufacturingThis material is integral for the development of custom ligands and coordination catalysts used in industrial catalysis and materials science. Downstream manufacturers introduce it for the stepwise assembly of pyridyl-based chelating agents, widely applied in homogeneous catalysis and fine chemical synthesis. Users require batch-specific documentation to support trace metals testing and ligand performance benchmarking in development-scale and commercial programs. Industry compliance standards
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4. Organic Synthesis for Advanced MaterialsEthyl 2-Pyridylacetate supports advanced organic synthesis for next-generation materials, particularly those requiring functionalized pyridine subunits such as optoelectronic devices and sensor substrates. Its purity profile and documented impurity thresholds address the sensitivity of downstream processes involving controlled polymer or oligomer architecture. Our traceable batches help facilitate scaling between laboratory R&D and commercial rollouts. Industry compliance standards
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5. Fine Fragrance Intermediate FormulationIn the fragrance supply chain, Ethyl 2-Pyridylacetate acts as a nuanced aroma building block employed by compounders for high-value perfume bases and aroma chemical design. Its use in constructing pyridyl-ester structures allows for the creation of unique sensory notes. Downstream manufacturers depend on transparent impurity disclosure and batch stability data to ensure consistent organoleptic profiling in both trial and mass-market releases. Industry compliance standards
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In the chemical industry, Ethyl 2-Pyridylacetate draws attention for its performance and versatility. As a chemical manufacturer, every batch we produce reveals new layers of its capabilities, both in synthesis routes and downstream applications. Much of the market focuses on selling finished chemicals, yet few get the chance to watch each flask fill, to test material from raw input to purified product, or to solve bottlenecks during an unexpected step. We know what happens when Ethyl 2-Pyridylacetate is left too long in the reactor, how humidity can affect its storage, or why a subtle color change can signal an impurity. These experiences shape how we approach this molecule—translating technical knowledge into dependable results.
Our Ethyl 2-Pyridylacetate, with the CAS number 27144-12-3, often appears as a clear pale liquid, protected from excess moisture in sealed containers. Every gram we ship traces back to pyridine chemistry’s well-known strengths: a combination of structural flexibility and targeted reactivity. For synthetic chemists, the ethyl ester group unlocks tailored transformations without excess handling or multistep protection, while the pyridine ring posts compatibility with a vast array of functional groups. This makes it suitable for both small-molecule R&D and larger multi-ton projects where consistent quality and scalability come into play.
Each batch of Ethyl 2-Pyridylacetate moves through a set of internal quality benchmarks. After final distillation, we measure purity by gas chromatography—ours commonly exceeds 98%, which remains crucial for downstream reliability. On manufacturing lines, color is not just cosmetic; yellow tint often points to minute byproduct concentrations, potentially influencing sensitive syntheses. When customers request detailed data, we disclose real test values, not just marketing claims. Bulk customers often want confirmation that no phthalates, sulfur, or halogen residues linger from upstream processing. In our shop, discussions about water content or trace metals in each batch go beyond paperwork; they reflect actual production adjustments, cleaning valve junctions, and rechecking filtration media.
Other physical properties come into play across projects. Boiling occurs near 110-115°C at reduced pressures—a property that matters when setting up for solvent removal or column distillation. The ester boasts moderate solubility in common organics, which means it joins both polar and non-polar workflows without requiring special blend protocols. We monitor hydrolysis during long-term storage, always aiming for esters that resist breakdown into free acids and alcohols over time. This reduces shelf-life surprises once a drum reaches a customer’s facility. In sourcing raw materials, we prefer suppliers who provide written analytical data on pyridine precursors, as the purity of upstream intermediates affects the finished ester’s odor, color, and suitability for fragrance or agrochemical blends.
Besides laboratory synthesis, Ethyl 2-Pyridylacetate fits well into multiple commercial settings. Our technical team often collaborates on pharmaceutical projects, where the ethyl group serves as a strategic lever—cleavable by alkaline hydrolysis, but secure enough for multi-step coupling tactics. For instance, a European customer might ask for the compound as an intermediate for antifungal agents, while a local fine chemical house uses it in heterocyclic assembly for dye precursors. Fertilizer manufacturers have also explored it for ligand scaffolds, looking to improve micronutrient stability in specialty applications.
We’ve seen the molecule bridge theory and practice. During scale-ups, small changes like agitation rate, jacket temperature, or order of addition can either protect yield or create unexpected reaction pathways. Our feedback loop comes from the production floor, not just a spreadsheet—one shift leader may catch an anomaly in the evaporation rate; another flags residue where it shouldn’t occur. These human-trained eyes help us ship reliable product for situations ranging from high-end life sciences to large-quantity process chemistry.
Feedback from direct users—chemist to chemist—shapes our understanding of Ethyl 2-Pyridylacetate in the wild. In pilot plants, operators notice which solvents deliver the cleanest separations or which pressure profiles keep column blockages at bay. The ester gets tested as a flavor intermediate, and food chemists sometimes question batch-to-batch trace impurity odors. In these instances, we pull samples off the line and develop chromatograms to verify the absence of trace nitriles or excess pyridine itself, which ensures suitability for downstream blending without risk of off-notes.
At a contract research facility in Asia, we saw Ethyl 2-Pyridylacetate used in metal complexation studies for catalyst design. Their staff praised its consistency in forming chelating agents under mild conditions. Back home, a specialty coatings company needed a consistent supply for polymer modification, and our technical support fielded calls about viscosity changes at cooler storage temperatures. We now pre-warn clients about cold-flow behavior and recommend short warming periods in temperature-controlled rooms before use, based on the experiences our partners share.
Many customers benefit from real-world guidance—can a drum withstand cross-country transport without stratification or phase separation? What happens if a transfer line accidentally exposes the liquid to steel and picks up trace iron? These practical lessons rarely appear in published articles but play a crucial part in keeping production smooth. Over the years, we’ve learned to document not just final assay results, but storage and transit tips based on actual customer encounters and our own monitoring logs.
Choosing between Ethyl 2-Pyridylacetate and other esters reveals important differences that grow obvious on the production line. Methyl 2-Pyridylacetate serves in related roles, yet customers mention its higher volatility brings handling challenges during bulk solvent removal steps. Some alternative esters, such as isopropyl or tert-butyl, offer increased hydrolytic resistance; we import feedback from formulators who sometimes select Ethyl 2-Pyridylacetate as a balance between lability and stability—hydrolysis remains feasible under controlled conditions, but the compound withstands extended processing times without breaking down prematurely.
Several synthetic chemists favor this specific ester because it delivers a predictable leaving group, critical in nucleophilic displacement and cyclization reactions. Pharmaceuticals requiring sequential deprotection events take advantage of its alkyl group profile, which sits between methyl’s volatility and heavier esters’ longer hydrolysis times. In fragrance manufacturing, Ethyl 2-Pyridylacetate holds its own, delivering a mild, nuanced odour profile not found in shorter chain analogs, and without the waxy character of bulkier esters.
Other options for introducing a pyridylacetate motif—including the acid or salt counterparts—pose solubility or stability limitations in organic synthesis. Our partners in medicinal chemistry have reported that technical hurdles surface with free acids (such as salt formation in nonpolar solvents or base-catalyzed decarboxylation). Ethyl 2-Pyridylacetate excels by remaining neutral under a broader range of reaction conditions, providing the flexibility to design more robust synthetic strategies without frequent troubleshooting.
Manufacturing brings unique responsibilities in chemical stewardship. We recognize the importance of traceability, from solvent sources all the way through our own waste reclamation streams. Ethyl 2-Pyridylacetate presents moderate flammability risks and we built our storage and handling plans with enhanced ventilation and real-time vapor monitoring. Operations staff receive regular safety drills focused on liquid containment, not just because regulations demand it, but because every spill or vapor leak in a confined workspace carries a real hazard.
Clients often approach us for guidance where regulatory filings intersect with production needs—REACH registration, custom purity targets, material safety documentation. Rather than deflecting technical questions, our chemists prioritize direct communication, trading notes on analytical data or discussing shelf-life improvements based on actual field experience. We engage with compliance inquiries, but put equal focus on proactive problem-solving to prevent future issues. Our support team fields questions about transport classification, safe drum handling in extreme weather, and revalidation protocols for returning older inventory to the active production floor.
Not all processes go to plan, and occasionally, we confront surprises. Some of our largest customers initially struggled with residue buildup in pilot vessels. Our lead process engineer traced this to subtle pH shifts during saponification of the ester group—a detail that mattered at scale, but often flies under the radar in bench research. We adjusted upstream washing and added final vacuum drying, then provided updated use notes to our clients. This sort of hands-on troubleshooting isn’t abstract process optimization. It grows out of a daily routine of checking, listening, responding—and being honest about failures along the way.
Another recurring situation comes during winter logistics. Liquid esters risk solidification or phase changes at shipping depots. One year, prolonged cold spells at a supplier’s warehouse led to sample rejection because of crystallized product. Close examination showed that trace moisture from an under-dried shipping drum caused minor hydrolysis, transforming a fraction of the ester into a more polar, lower-melting state. Since then, we revamped our container sealing protocol and started using tamper-evident closure indicators. This real-world troubleshooting keeps supply chains flowing and minimizes costly downtime for both ends of the transaction.
These stories cement the reality that chemical manufacturing remains as much about predicting the unexpected as about following standard operating procedures. Each lesson becomes a new line in our manuals, discussed openly with buyers who value transparency and partnership. Adopting new analytical methods or streamlining steps can’t rely solely on literature; instead, it grows through cycles of trial, observation, and community feedback from end-users we respect.
Customers today rightly expect cleaner processes and verifiable sustainability actions from raw material suppliers. For Ethyl 2-Pyridylacetate, we act early, starting with solvent selection and waste reduction strategies upstream. Our in-house reclamation recycles a significant portion of spent solvents, and process chemists regularly review additives or support materials for both workplace safety and lifecycle impact. We favor process changes that minimize byproduct formation—lessen the gaseous pyridine emissions and offer easier post-use solvent removal to our partners.
Staff undergo periodic training, reviewing both spill prevention and advanced first-responder techniques. By tracking each incident (no matter how minor), we reduce long-term environmental risks and reinforce a safety culture that stays practical, not just theoretical. Neighbors, regulators, and employees alike rely on our accountability. On the logistics side, suppliers who bring cleaner packaging options or offer reusable handling solutions receive priority for long-term relationships.
No chemical flows through our facility without tracing its environmental footprint, from the earliest process trial to packaging and distribution. As we upgrade storage and production assets, we choose materials intended to match the reality of specialty ester chemistry—guards against reactive leaks and allows precise monitoring of inventory, all without pinching efficiency or staff morale. Adjustments get made based on facts from the floor, not market speculation.
Markets change swiftly—and so do technical challenges. While Ethyl 2-Pyridylacetate may look like a simple molecule on paper, each year brings new demands for purity, selectivity, or regulatory compliance. Smaller-scale applications often push us to modify process steps for unique color, odor, or stability specifications. At the same time, regulations shift and downstream needs demand documentation that covers not only product but also operational transparency, supply chain origin, and even supplier labor practices.
We welcome the push from these directions. Years ago, buyers rarely asked about batch homogeneity or minor co-product levels; today, these questions arrive routinely and we set up monitoring protocols to meet evolving requirements. We test more frequently for trace elemental impurities and keep detailed logs of analytical verifications. As digital tools grow, we share real-time testing snapshots with qualifying customers, fostering mutual trust and minimizing misunderstandings.
Continuous dialogue with end-users drives our next improvement projects. Feedback loops, technical troubleshooting, and field visits reveal unexpected pain points—container size mismatches, labeling errors, or cross-border documentation hiccups. We integrate those insights into our regular operations. Our aim is always to bring tangible benefits to those using Ethyl 2-Pyridylacetate at the bench or on the production floor.
Every shipment of Ethyl 2-Pyridylacetate represents more than a technical milestone. Each drum reflects continuous improvement, technical risk-taking, and a commitment to both quality and partnership. By sharing lessons, maintaining traceable processes, and grounding our standards in practical feedback, we help partners navigate uncertainties while delivering stable, reliable materials.
Our work with Ethyl 2-Pyridylacetate does not claim to solve every technical or logistical challenge, but draws from the actual experiences of those who run the reactors, fill the drums, and troubleshoot issues at scale. The paths of discovery and production often run together in unpredictable ways, demanding a spirit of honesty and a willingness to adjust, improve, and share. That shapes how we manufacture—and why we choose to keep the process open to questions, scrutiny, and constructive change, every day.