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HS Code |
852139 |
| Productname | 5,6-Dimethoxypyrimidin-4-Ylamine |
| Molecularformula | C6H9N3O2 |
| Molecularweight | 155.16 g/mol |
| Casnumber | 23628-32-2 |
| Appearance | White to off-white solid |
| Purity | Typically >98% |
| Meltingpoint | 160-163°C |
| Solubility | Slightly soluble in water, soluble in DMSO and methanol |
| Smiles | COC1=NC(=NC(=C1N)OC)N |
| Inchi | InChI=1S/C6H9N3O2/c1-10-4-3-8-6(7)5(11-2)9-4/h3H,1-2H3,(H3,7,8,9) |
| Storage | Store at 2-8°C, protect from light and moisture |
As an accredited 5,6-Dimethoxypyrimidin-4-Ylamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The 10g of 5,6-Dimethoxypyrimidin-4-ylamine is packaged in a sealed amber glass bottle with a tamper-proof screw cap. |
| Shipping | 5,6-Dimethoxypyrimidin-4-ylamine is shipped in tightly sealed containers to prevent moisture and contamination. The package includes labeling compliant with chemical regulations. Transport follows safety guidelines for non-hazardous organic compounds, avoiding extreme temperatures. Appropriate documentation and safety data sheets accompany the shipment for proper handling upon delivery. |
| Storage | Store 5,6-Dimethoxypyrimidin-4-ylamine in a tightly sealed container, protected from light and moisture, in a cool, dry, well-ventilated area. Keep away from incompatible materials such as strong oxidizing agents. Utilize appropriate personal protective equipment (PPE) when handling, and clearly label the storage container. Ensure access is limited to trained personnel to prevent accidental exposure or environmental release. |
Applications of 5,6-Dimethoxypyrimidin-4-Ylamine in Industrial ManufacturingAs a high-purity manufacturer of 5,6-Dimethoxypyrimidin-4-Ylamine, we supply this specialty intermediate to established industrial clients across regulated segments. Our technical support focuses on compliance, processing efficiency, and consistent integration to meet routine and custom project requirements in fine chemicals, pharmaceuticals, and advanced materials. 1. Synthesis of Antiviral Drug IntermediatesThis compound serves as a building block within multistep synthesis routes for nucleoside analogues. Leading pharmaceutical groups employ it during the early stage of preparing active intermediates for approved antiviral agents. Processing teams utilize high-purity lots to control impurity profiles, minimize by-products, and support batch-to-batch reproducibility, particularly in pilot and commercial scale campaigns. Handling requires validated procedures for reaction charging and post-reaction isolation under cGMP facilities to ensure traceability throughout the API development chain. Industry compliance standards
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2. Crop Protection Active Ingredient SynthesisAgrochemical formulators order this compound for its role in manufacturing selective herbicides and fungicides. Chemists introduce it at controlled dosing to achieve target substitution patterns on core scaffolds. The raw material underpins critical C-N and N-heterocycle building steps, enabling fine control of structure-activity relationships in finished actives. Production protocols require tight monitoring of residual precursor levels in technical-grade agrochemical actives, aligning with global safety and residue standards. Industry compliance standards
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3. Pharmaceutical Impurity Reference Standard SynthesisGlobal reference laboratories and QC units require this raw material to synthesize certified impurity standards for regulated pharmaceutical products. By employing tightly controlled isolation and purification protocols, quality units ensure precise characterization using NMR, MS, and chromatographic methods. Customer SOPs necessitate validated batch certification for use in ICH-compliant impurity profiling, stability studies, and release testing of finished dosage forms. Industry compliance standards
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4. Research Reagent Production for DNA/RNA SynthesisLife science reagent producers use this compound in the preparation of modified pyrimidine bases for oligonucleotide synthesis. Each batch undergoes high-resolution QC to ensure compatibility with automated DNA/RNA synthesizers. Technicians employ the material as a precursor when generating nucleotide analogues for gene editing, genetic diagnostics, and research probe libraries. Stringent cleanroom protocols and detailed documentation support integration within ISO-accredited reagent manufacturing suites. Industry compliance standards
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Competitive 5,6-Dimethoxypyrimidin-4-Ylamine prices that fit your budget—flexible terms and customized quotes for every order.
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Every molecule tells a story, and for those of us involved daily in its production, 5,6-Dimethoxypyrimidin-4-Ylamine holds a unique significance both as a precision chemical and as a key component driving innovation across several sectors. In our experience, the journey from raw material to the finished compound requires strict attention to consistency, safety, and performance benchmarks. We wake up early to ensure each batch is produced under controlled, well-defined conditions, because this compound often ends up in high-stakes research or large-scale synthesis streams where stake and cost-per-gram matter. Real-world questions—about purity, how impurities shift outcomes, or how subtle process deviations can impact performance—come up in labs and during pilot projects. This commentary shares our hands-on knowledge, not an impersonal summary, so that researchers and buyers alike can connect with the chemical at the heart of their project.
The compound 5,6-Dimethoxypyrimidin-4-Ylamine features a pyrimidine core with methoxy groups at the 5 and 6 positions and an amino group at carbon 4. Chemically, its structure offers straightforward entry points for further modification, which expands its value both for custom synthesis and for researchers looking to build libraries or develop analogs. In the plant, controlling the methylation and amination steps brings its own set of challenges. Too much temperature drift, or inconsistent pH, and you start fighting unwanted side reactions that hurt yield and create impurities that are difficult to remove on a large scale. Standard specifications in our facility often depend on the requirements of our most discerning partners, but using highly pure solvents and fine-tuned reaction monitoring enables us to deliver a product with purity exceeding 99%. A consistent melting point and clear NMR spectrum are among the benchmarks we verify for each lot.
Most of the demand for 5,6-Dimethoxypyrimidin-4-Ylamine comes from the pharmaceutical sector. Beyond being just another intermediate, this compound helps create heterocyclic scaffolds that can serve as the backbone for anti-viral, anti-cancer, and agrochemical molecules. These industries require high-purity starting materials to avoid false positives in bioactivity screening or interference in downstream processing. Over years of fulfilling bulk and specialty orders, we’ve seen our product flow into both early-stage discovery efforts and later-stage commercial manufacturing. Each application can bring its own requirements. Academic researchers, for example, tend to order smaller custom-sized lots, sometimes asking for slight modifications or isotopic labeling. Contract research organizations and GMP-certified manufacturers often demand multi-kilogram batches with full documentation and traceable quality reports.
On the process chemistry side, this compound’s ease of further derivatization stands out. The methoxy groups offer modifiable sites, which facilitate nucleophilic substitution, coupling reactions, or even cyclization chemistry. For manufacturers scaling up to pilot or commercial levels, its physical stability helps. It stores well under typical warehouse conditions and does not degrade quickly under moderate light or temperature exposure, reducing unplanned wastage or the need for exotic packaging. Our experience has shown that some customers may overlook handling precautions when moving up in scale, but detailed consultations and transparent documentation help avoid these pitfalls.
As we compare 5,6-Dimethoxypyrimidin-4-Ylamine to similar pyrimidine analogs, some practical differences stand out from a bulk producer's viewpoint. Where some derivatives introduce halogens or alter amine positions, the methoxy pair at positions 5 and 6 balances electronic properties with reactivity. Products like 4-aminopyrimidine or 5,6-dichloropyrimidine-4-amine behave differently both in the reactor and in downstream transformations. Methoxy substitutions tend to make solubilization easier in polar and slightly nonpolar solvents. This attribute gives formulation scientists and process chemists more flexibility, particularly in multi-step sequence development.
From a process safety perspective, methoxy groups offer less volatility and lower intrinsic toxicity compared to their halogenated cousins. The production line deals with fewer issues related to hazardous off-gassing or need for elaborate containment engineering. By contrast, chlorine-containing analogs can bring about regulatory red tape surrounding emissions and operator exposure. In daily production, that means lower operating expenses and faster changeover between syntheses. We also note that disposal of spent solvents and minor side products faces fewer hurdles for methoxy chemistry compared to halogen-laden waste, which adds up to lower waste-handling costs and cleaner environmental profiles.
Pyrimidin-4-ylamine without the methoxy substitutions does not dissolve as readily in organic mediums and often requires higher energy input for complete solubilization, an experience corroborated both by our scale-up teams and downstream partners. Storage stability also improves with the methoxy variant—customers storing material for months at a time rarely report signs of degradation, provided normal containment is in place. That’s not always true for less substituted analogs, which may take up moisture or oxidize, leading to variation in performance batch-to-batch.
After years of production, we learned that no two customer applications weigh purity exactly the same. Some clients order as fine a grade as possible, especially for medicinal chemistry, while those running large chemical transformations may accept slightly broader specification ranges to control costs. For our part, we rely on high-performance liquid chromatography, NMR, FTIR, and Karl Fischer titration to confirm each batch. We notice that the key issue isn’t just total purity, but which impurities are present. Some minor byproducts from methylation have proved surprisingly difficult to remove on an industrial scale, so we improved column options and solvent washing to address them without reducing yield or raising solvent load unnecessarily.
On the documentation front, full spectral data and lot traceability create confidence. Regulators and external auditors sometimes visit our facilities to review batch records and purification logs. This is especially important for pharma-bound material, where every deviation must get logged and reviewed—or it can jeopardize an entire drug development campaign downstream.
Safety concerns have always shaped how we design and operate our synthesis processes. 5,6-Dimethoxypyrimidin-4-Ylamine manages to avoid some of the hazards seen with more reactive or toxic analogs. Its relative stability and moderate hazard profile mean we can use standard engineering controls and PPE without major investments in fume capture or containment. Operators in our plant drive each synthesis under well-lit, ventilated conditions wearing typical protective gear. Bulk transfers get monitored by inline sensors and sometimes spot-checked by experienced staff who know where bottlenecks or leaks might occur in the process.
For those downstream, we provide clear material safety documentation emphasizing proper handling, spill protocols, and disposal recommendations. Some industries, especially those working at pilot-plant or kilo scale, have their own local safety practices. Our technical team consults regularly with clients scaling up, ensuring they don’t overlook thermal load issues or vapor hazards in larger reactors.
Sustainability continues to rise as a purchasing criterion. In our plant, we recover and reuse solvents wherever possible. Methoxy chemistry aligns better with modern green chemistry imperatives than halogenated analogs. Less toxic ingredient profile simplifies local compliance, as waste incineration can be managed with fewer side processes or after-treatments. We are investing in pilot programs to minimize overall energy consumption and shrink carbon footprint per kilogram produced, an ongoing effort that draws attention from both internal teams and visiting partners.
Making 5,6-Dimethoxypyrimidin-4-Ylamine sounds easy enough in a textbook, but keeping a plant running at industrial scale demands ongoing vigilance and adaptation. Feedstock volatility, shifts in energy pricing, or minor disruptions in the supply of certain catalysts can force process tweaks week by week. Our R&D and production teams meet regularly to review yields, waste load, and the quality of finished lots. Improvements in crystallization and wash protocols, or minor tweaks to reactor feed schemes, often translate to notable cost savings and more competitive product pricing for our customers.
Quality doesn't stop at the reactor. Each kilogram passing through the final filter gets monitored until packaging. We use specialized sealed bags and ship under climate-controlled conditions for clients with longer supply chains. Reports from clients indicate this careful approach cuts down on returned lots or complaints about product not matching COA. We keep fielding requests for custom packaging or specialized analytics—expectations keep rising as companies advance their own quality controls. We respond by training staff on advanced analytical techniques and updating our tracking systems.
Relationships anchor the way we manufacture and supply 5,6-Dimethoxypyrimidin-4-Ylamine. Open communication with customers and real-time tech support keep projects on schedule and products properly deployed. We share relevant batch data, update clients about ongoing process changes that might impact their orders, and welcome third-party audits into the plant. Our experts visit partner sites, especially during new project launches, to ensure trouble-free material transfers and seamless integration.
Over years of supplying research labs and production sites, we have adjusted not only processes but the way we interact with project managers, procurement teams, and end users. They know to expect accountability, not just for finished materials but for how those compounds reach them. Many stories we hear from our partners revolve around other suppliers who fail to disclose changes or struggle to meet agreed-upon timelines. By doing the work in-house, with our own team, and maintaining exacting quality benchmarks, we guarantee a transparent path from synthesis to shipment.
The market for 5,6-Dimethoxypyrimidin-4-Ylamine continues to evolve, shaped by drug discovery, fine chemicals, and agricultural science. Each year, new patent applications and technical reports cite its structure, hinting at new downstream chemistries and higher-value applications. We track regulatory developments and participate in technical symposia to keep pace with emerging scientific advances.
Automation and analytics now play a larger role in controlling batch consistency and reducing errors. Our investment in process automation tech ensures fewer deviations and better yield predictability year over year. Customer feedback feeds directly into our process-improvement cycle—a successful launch or a rare off-spec incident both teach valuable lessons that ripple through our team.
Greater focus on sustainable sourcing and compliance with changing international regulations drives us to collaborate more closely with both suppliers and customers. Whether by switching to alternative solvents, improving energy efficiency, or developing new packaging options with reduced plastic content, the production and distribution of 5,6-Dimethoxypyrimidin-4-Ylamine now carries social and environmental accountability side by side with cost and performance.
As chemical manufacturers, the daily experience of producing 5,6-Dimethoxypyrimidin-4-Ylamine reveals a balance of meticulous attention and practical expertise. Each challenge, whether rooted in scale-up dynamics, customer demands, or shifting regulatory environments, offers an opportunity for deeper learning and continuous improvement. We strive not just to meet market demands, but to advance the standards of quality, transparency, and sustainability our partners have come to expect. For those who rely on this compound—whether in a research setting or on the production floor—partnering with a producer grounded in hands-on experience and technical authenticity can make all the difference in project success.