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HS Code |
730277 |
| Chemical Name | 2-Ethoxy-4,6-Dichloropyrimidine |
| Molecular Formula | C6H6Cl2N2O |
| Molecular Weight | 209.03 g/mol |
| Cas Number | 86227-25-0 |
| Appearance | White to off-white solid |
| Melting Point | 62-66°C |
| Solubility | Soluble in organic solvents such as DMSO and dichloromethane |
| Purity | Typically ≥98% |
As an accredited 2-Ethoxy-4,6-Dichloropyrimidine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle containing 25 grams of 2-Ethoxy-4,6-Dichloropyrimidine, sealed, with hazard labeling and tamper-evident cap. |
| Shipping | 2-Ethoxy-4,6-Dichloropyrimidine is shipped in tightly sealed containers to prevent moisture and contamination, typically under ambient conditions. The packaging complies with relevant safety regulations for chemicals. Transport is handled by certified carriers, and all relevant documentation, including Safety Data Sheets (SDS), accompanies the shipment to ensure safe and compliant delivery. |
| Storage | 2-Ethoxy-4,6-dichloropyrimidine should be stored in a tightly sealed container, kept in a cool, dry, and well-ventilated area away from direct sunlight, moisture, and incompatible substances such as strong oxidizing agents. Handle under inert atmosphere if possible. Store at room temperature and avoid exposure to heat or ignition sources. Ensure proper labeling and access to safety data sheets. |
Applications of 2-Ethoxy-4,6-Dichloropyrimidine in Industrial Manufacturing2-Ethoxy-4,6-Dichloropyrimidine serves as a key intermediate in advanced chemical synthesis across multiple specialized sectors. As an original manufacturer, we maintain strict control over quality parameters, formulating this intermediate for downstream users who contribute to regulated market segments with demanding process and compliance requirements. Below are several proven industry scenarios reflecting the focused use of this intermediate compound. 1. Synthesis of Crop Protection Actives for Agrochemical FormulatorsResearch-driven agrochemical producers employ this pyrimidine derivative as a building block in the synthesis of proprietary herbicide and fungicide active ingredients. Its selectivity as a chloro-substituted heterocycle supports structural modifications that directly impact bioactivity and field persistence. Typical users adopt this precursor for targeted synthesis pathways aligned with current regulatory limits on crop chemical residues. Industry compliance standards
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2. Pharmaceutical Intermediate in API Synthesis (Non-Steroidal Antivirals & Oncology Drugs)API manufacturers employ ethoxy-dichloropyrimidine intermediates in the assembly of specific non-nucleoside heterocyclic drugs, particularly within antiviral and emerging oncology product classes. This compound’s reactivity and stability benefit multi-stage processes, enabling formation of core pyrimidinyl pharmacophores recognized by global regulatory authorities. Industry compliance standards
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3. Specialty Dye and Pigment Intermediate for Technical Textile FinishingProducers within the technical textile sector utilize this pyrimidine intermediate for synthesizing high-performance azo and anthraquinone dye molecules. The distinct electronic properties of the ethoxy and dichloro substituents facilitate chromophore design, enabling finished dye molecules with precise coloring, washfastness, and UV stability suited for industrial textile processing lines. Industry compliance standards
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4. Intermediate in Agrochemical Analytical Standards ProductionProducers of certified reference standards for regulatory and analytical laboratories use this compound as a precursor for synthesizing internal and external quality control standards. Reliable lot-to-lot purity and traceability enable users to create benchmark solutions critical for multi-residue pesticide analysis and environmental monitoring according to government agency protocols. Industry compliance standards
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5. Fine Chemical Intermediate for Advanced Electronic Materials SynthesisManufacturers producing intermediates for optoelectronic and specialty polymer industries incorporate this pyrimidine derivative in the construction of organic frameworks for semiconducting films and electronic inks. The compound’s substitution pattern allows precise tuning of electronic and solubility properties required for high-purity, application-driven materials science projects. Industry compliance standards
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In the world of fine chemical manufacturing, some intermediates end up standing out for their reliability under demanding conditions. 2-Ethoxy-4,6-Dichloropyrimidine comes from methodical synthetic routes that balance performance and consistency. Our direct involvement in its development has offered us a first-hand view of how subtle changes in molecular structure translate to function, shelf life, and downstream compatibility. At the production plant, every batch gets its repeatability judged by eyes that know the practical consequences of variability—not only for our own efficiency, but for the stability and yield of the end product where this pyrimidine derivative takes a leading role.
We craft 2-Ethoxy-4,6-Dichloropyrimidine with attention to every detail in extraction and purification. Our operations have honed the process, starting from raw material selection, moving through a controlled chlorination approach, and finishing with solvent-free isolation techniques that respect both environment and customer priorities. Rather than chasing theoretical purity, we have focused on what real-life applications demand: no avoided pitfalls of excess moisture, stringent control on trace halide impurities, and practical tracking of storage conditions. This hands-on discipline shapes specifications, providing a clear line between what ends up useful in a lab and what actually meets commercial benchmarks.
With this compound, target values are not just ink on a certificate. What matters goes far beyond hitting a number on HPLC or NMR printouts; the reaction consistency matters day after day over production runs. Inevitably, customers talk to us about things like lot-to-lot reproducibility, and our answer draws directly from decades on the production floor. If a process calls for 99%+ assay confirmation, we go beyond that figure to check absence of shuffle products or solvent residues that could foul up scale-up protocols. That practical belt-and-suspenders view keeps things working, saving everyone from rework and the headache of lost product runs.
Pharmaceutical R&D teams and agrochemical researchers both rely on our 2-Ethoxy-4,6-Dichloropyrimidine to open new pathways in synthesis. Having supplied it in tons over the years, we know where the compound faces the most process scrutiny. Its dichloropyrimidine core offers versatility—reactive enough to take the next nucleophilic step, but not so sensitive that it degrades or becomes hazardous in routine handling. The ethoxy group brings an extra twist, shaping reactivity with enough electron donation to keep side reactions in check, especially during oxidative coupling or amidation steps.
End users appreciate the way this material responds in the presence of strong bases, making it popular for selective substitution, often with aromatic amines or thiols. Not every variant of this pyrimidine behaves so well; the balance we achieve with the ethoxy and dichloro groups ensures moderate, predictable reactivity without the common issue of uncontrolled aromatic substitution. As a result, pharmaceutical and pesticide intermediates that stem from this backbone often show more favorable yields, cutting back on waste and strengthening project economics.
Working at the manufacturer level gives us a unique lens. Experience has taught us that even minor tweaks in solvent selection or temperature profiles leave a long shadow over the stability of this pyrimidine derivative. Instead of simply ticking off purity, we pay close attention to byproduct suppression and ease of workup—a lesson learned through each step of scale-up, where the lab-scale literature method rarely survives its first industrial run. We design our process not only for safety and throughput, but also to head off any surface-active contaminants or trace byproducts that can derail catalytic downstream steps.
This attention to hands-on practicality means end users encounter fewer problems re-dissolving the material in downstream solvent systems. It can move directly into most condensation or amination stages, avoiding extensive preconditioning that would otherwise waste precious time. Our team builds this reliability at every production step, earning the loyalty of chemists who cannot afford to babysit their starting materials batch after batch.
Chemists and process engineers often weigh alternatives: 2,4,6-trichloropyrimidine, 2-ethoxy-6-chloropyrimidine, and other halogenated analogs all compete in the reagent inventory. In our own hands, we’ve seen the trade-offs when switching structures. Swapping one chlorine for an ethoxy group does more than shift reactivity; it changes solubility, resistance to hydrolysis, and downstream compatibility. Colleagues in process scale-up have told us how much easier our 2-Ethoxy-4,6-Dichloropyrimidine dissolves in polar aprotic solvents compared with its trichloro cousin, making it a logical choice for multi-step syntheses.
We’ve seen some demand for mono-halogenated versions in processes focused on cost-cutting or regulatory simplicity, but those tend to lose out for critical steps requiring precise electronic tuning. Removing one chloro functionality often reduces reactivity to a level that forces chemists to heat or coax reactions far beyond safe operating parameters. Instead, the two-chloro, one-ethoxy balance grants a sweet spot of manageable activity and ongoing shelf stability. Manufacturing teams who want to avoid batch-to-batch headaches consistently return to this specific structure once they’ve tried the variants.
Manufacturing, unlike trading, doesn’t let you stand at arm’s length from the material. If a partner’s process runs into snags, we’re the first to hear about sticking points or unexpected side reactions. Years of these conversations inform not only how we run our reactors, but also what goes onto the delivery truck. For example, our attention to particle size distribution grew out of a pharmaceutical team’s observation that aggregate formation in storage tanks caused unpredictable dosing during continuous flow synthesis. Fixing the root problem in our plant protected product performance at their site, not just on paper.
Feedback often pushes us to rethink crystalline habit, moisture content, or even packaging approach. Direct experience with the perils of moisture intrusion has shaped our controlled environment policies, not out of some abstract quality measure but because a single wet bag can ruin an entire line’s output downstream. This is the kind of solution that comes only when a company owns both challenge and fix.
In our daily reality, the spec sheet must live up to customer expectations on the bench and at scale. That means more than listing numbers. To call something 99% pure only matters if the other percent won’t sabotage a sensitive catalytic hydrogenation or slow a Suzuki cross-coupling. By designing processing steps that control each contaminant at the source, we protect not just theory, but every run that follows. Missed targets and allowable impurities hurt the reputation of both supplier and buyer, so we treat specification as a living standard, subject to field conditions and application-centric revision.
Specific gravity, assay methodology, key trace metallic or residual solvent content—all get tightened based on what matters most in the field. We only apply extra analytical scrutiny when the downstream effect justifies it. Years of delivering into diverse pipelines, with each having its own regulatory and scale-up quirks, have given us the humility to ask where we can trim the superfluous and beef up crucial aspects. Every analytical adjustment gets validated from a production-run perspective, not just a research pilot batch, so users can trust what the numbers mean every day, across multiple shipments.
Years of warehouse and operational oversight have given us familiarity with the material’s quirks beyond basic SDS compliance. 2-Ethoxy-4,6-Dichloropyrimidine doesn’t generate the same handling risks as ultra-reactive intermediates, but it still benefits from a dry, sealed environment and proper ventilation. Our own handlers know to watch container seals and to avoid incompatible stack storage because spilled product can cause corrosive effects on sensitive alloys or equipment seals. Human error creeps in at the most annoying places—our work routines and training reveal points where simple visual checks pay off in material integrity and worker peace of mind.
Safe handling grows from practical familiarity, not rote learning. Our teams rotate through materials regularly, cross-training in best practices not to meet an audit, but to reinforce shared knowledge. Over time, this shapes a culture that actually reduces real-world incidents, turning theoretical safety margins into practiced habits. We take worker feedback seriously: a misplaced drum or mislabeling on a hectic morning can cause hours of unnecessary sorting. Organized, labeled storage backed by double-check protocols reflects lived needs, not remote policy.
We have operated under an array of inspection regimes, so we recognize the practical meaning of regulatory compliance for a niche intermediate like ours. Instead of applying a cookie-cutter approach, our compliance policies evolve in step with changing market expectations and evolving classification frameworks. For substances like 2-Ethoxy-4,6-Dichloropyrimidine, which sometimes straddle regulatory categories based on usage, we maintain internal records and traceability at a level that matches demanding end-use profiles. That reduces regulatory surprises, giving process engineers confidence in each supply batch.
Audits and product registrations do not always flow seamlessly through bureaucratic systems. Our documentation follows best practices because our customers ask for it: clear batch records, clarity on country of origin, and ready access to analytical reports. If a buyer in a tightly regulated market raises an inquiry, we answer from direct understanding, not from a handbook. This responsiveness comes from living close to both the product stream and the end-use realities that define regulatory oversight.
Competitors can copy a reaction, but operational knowledge grows from sweat, troubleshooting, and unflagging attention to what works at ton scale versus flask scale. We discover incremental improvements—like controlled addition rates or new drying techniques—by evaluating failed runs, learning from unexpected byproducts, and tracking every input’s true impact. Genuine know-how doesn’t come off a page; it arrives when last-minute adjustments save both product and delivery timelines.
The quest for higher-quality 2-Ethoxy-4,6-Dichloropyrimidine never ends with one optimization. Teams collaborate across shifts to test procedural variations that reduce energy load, cut down solvent emissions, or limit waste byproduct. Every success or setback builds institutional memory, shared openly so the next crew doesn’t start from scratch. That real-world team learning shows up in fewer supplier complaints, greater process up-time, and measurable environmental benefit.
Our direct dialogue with end users shapes what we make now and what we will offer next. Feedback from chemists guides our packaging improvements, such as moving from bulk sacks to smaller, sealed drums for sensitive operations. Research partners pushing into greener chemistry have prompted us to explore more sustainable inputs and power-saving operations, aiming for a better total life-cycle impact without sacrificing molecular consistency.
Large batch industrial users may appreciate bulk volumes, but a growing segment wants agile supply in modest lots, optimizing cash flow and warehouse space rather than buying more than they can store. We respond to these shifting needs because our business is built for flexibility, not rigid production scripts set by distant management.
We have weathered logistics bottlenecks, market price swings, and endotoxin scares not by outsourcing but by investing deeper in our own capabilities. The value we bring with 2-Ethoxy-4,6-Dichloropyrimidine does not rest on abstract claims or certificates alone—it grows from the direct, sometimes difficult relationship between process, product, and end result. Each step in production reflects lessons written into our operation by experience, not just compliance. We see the full product journey, from reactor startup to the final application in a customer’s hands. That root-level knowledge supports every partnership we foster, whether with long-standing clients or teams just starting a new project.
Chemical applications keep evolving under shifting regulatory regimes, expanding consumer expectations, and tightening environmental limits. Experience warns us never to treat a molecule as “finished”—market needs change, regulatory standards get stricter, and new uses surface unexpectedly. By keeping close watch on these factors and investing in research and team development, we can support partner innovations, deliver better batch-to-batch consistency, and reduce environmental impact.
Continuing investment in process analytics, solvent recovery, and emissions control reflects our understanding that manufacturer credibility rests not only on delivering product, but also on ensuring responsible stewardship of both people and environment. By tracing feedback from application chemists back through plant floor operations, we maintain both regulatory standing and process excellence, setting a standard not just for compliance but for genuine partnership with every customer who relies on our 2-Ethoxy-4,6-Dichloropyrimidine experience.