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N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide

    • Product Name N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide
    • Alias Formylaminopyrimidine
    • Einecs 609-391-7
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    279646

    Product Name N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide
    Cas Number 4318-56-3
    Molecular Formula C5H4Cl2N4O
    Molecular Weight 207.02
    Appearance White to off-white crystalline powder
    Melting Point 230-235°C
    Solubility Slightly soluble in water
    Boiling Point Decomposes before boiling
    Purity Typically ≥98%
    Storage Conditions Store at 2-8°C, protected from light
    Pubchem Cid 63702
    Smiles C1=C(N=C(N=C1Cl)Cl)NC=O

    As an accredited N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The packaging is a 25g amber glass bottle, sealed with a screw cap and labeled with chemical name, formula, and hazard information.
    Shipping N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)formamide is shipped in tightly sealed, chemical-resistant containers to prevent moisture and contamination. It should be transported at ambient temperature, protected from light and incompatible substances, in compliance with local and international regulations. Appropriate hazard labeling and safety documentation are included to ensure safe handling during transit.
    Storage Store **N-(2-Amino-4,6-dichloro-5-pyrimidinyl)formamide** in a tightly sealed container, protected from light and moisture. Keep it in a cool, dry, well-ventilated area, preferably at 2–8°C (refrigerator). Avoid contact with incompatible substances such as strong oxidizers. Clearly label the container and ensure proper chemical safety procedures are followed during handling and storage.
    Application of N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide

    Applications of N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide in Industrial Manufacturing

    N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide serves as a critical intermediate and key ingredient in highly regulated sectors. The following downstream scenarios illustrate its targeted application in real-world industrial use, reflecting process needs, compliance demands, and end-product specifications.

    1. Pharmaceutical Intermediate for Antiviral Drug Synthesis

    This compound acts as an essential intermediate in the synthesis of select pyrimidine-based antiviral pharmaceuticals, especially where precise chlorinated pyrimidine moieties are required. Our manufacturing partners use it in multi-step syntheses, specifically in the early to mid-stage nucleoside analog assembly. Its chemical purity and controlled reactivity support reaction reproducibility and minimize byproduct formation, with traceability maintained throughout the supply chain for full pharmacovigilance.

    Industry compliance standards

    • Current Good Manufacturing Practice (cGMP, ICH Q7)
    • United States Pharmacopeia (USP) where applicable for final API
    • European Pharmacopoeia (Ph. Eur.) requirements for intermediates
    • FDA 21 CFR Part 211

    Typical usage ratio

    • Typically 0.45–0.68 molar equivalents per batch, with the ratio adjusted based on nucleoside analog structure and targeted yield.

    Downstream process integration

    • Integration in the condensation step of nucleoside analog synthesis, following halogenation and amidation procedures and prior to heterocycle coupling or ring closure.

    Final product types

    • Active pharmaceutical ingredient (API) precursors for antiviral drugs
    • Finished antiviral tablets
    • Antiviral injection formulations

    2. Agrochemical Synthesis—Selective Herbicide Manufacture

    Producers of advanced agricultural chemicals utilize this pyrimidine derivative in the design of next-generation selective herbicides. It contributes as a key structural building block in the selective inhibition of specific plant enzymes. Chemical plant operators dose and handle it at specific stages to preserve its functional group integrity, allowing for consistent downstream coupling or substitution. Batch quality assurance supports residue and impurity control to meet crop safety protocols.

    Industry compliance standards

    • FAO/WHO Technical Guidelines for Pesticide Specifications
    • ISO 9001:2015 (agrochemical manufacturing)
    • REACH registration (Europe)
    • China GB/T 18388.1-2016 for agrochemical intermediates

    Typical usage ratio

    • Usually 0.75–1.2 equivalents per synthesis batch, adapted based on target herbicide molecular structure and crop application guidelines.

    Downstream process integration

    • Incorporation in the early formation of pyrimidine chloro-aniline intermediates, preceding esterification or methylation steps, within sealed reactor systems to safeguard environmental compliance.

    Final product types

    • Pre-formulated selective herbicide active ingredients (technical grade)
    • Commercial emulsifiable concentrate herbicides
    • Granular herbicide blends

    3. Electronic Chemicals—Semiconductor Etchant Precursors

    Manufacturers in the electronic chemicals sector rely on this compound as a precursor for specialty etchant formulations, targeting the selective patterning of thin film circuitry in advanced microelectronics. Control of batch consistency and purity remains critical, as even minor process impurities may impact etch profiles or residue. Material is introduced at synthesis stages sensitive to halogen atom distribution, maximizing compatibility with cleanroom protocols and high-purity etchant needs.

    Industry compliance standards

    • SEMI C64 (Electronic Grade Chemicals Specification)
    • IEC 62474 (Material Declaration for Electronic Products)
    • ISO 9001:2015, focusing on electronic chemical applications
    • RoHS Directive (for downstream electronic assemblies)

    Typical usage ratio

    • Between 1.0–1.3 moles per mole of final etchant molecule, ratio fine-tuned per customer proprietary synthesis protocols and targeted impurity profile.

    Downstream process integration

    • Dosed in the condensation or ring modification stage of etchant precursor production, prior to post-synthesis purification or blending with electronic solvent carriers.

    Final product types

    • High-purity chemical etchants for semiconductor wafer fabrication
    • Thin film patterning reagents
    • Microelectronic cleaning agents with pyrimidine core structures

    4. Dye and Pigment Manufacturing—Specialty Ink and Coating Ingredients

    Chemical formulators use this compound in the synthesis of advanced pyrimidine-based colorants for specialty printing inks and high-performance coatings. The molecule's dichloro substitution patterns impart unique colorfastness and chemical resistance, responding to stringent performance specifications in industrial inkjet, packaging, and automotive coatings. Production teams prioritize tight control on formamide and chlorinated moiety levels to ensure batch-to-batch reproducibility and pigment stability.

    Industry compliance standards

    • ISO 2846-1 (Color and transparency standards for printing ink)
    • EN 71-3 (Safety of toy inks for specialty applications)
    • AP(89)1 European Resolution (for inks in food packaging coatings)
    • SGS heavy metal content testing for export markets

    Typical usage ratio

    • Typically 0.6–0.9 equivalents per pigment synthesis, proportion adjusted to realize target hue intensity and solvent compatibility.

    Downstream process integration

    • Introduced during the pigment core assembly, either before sulfonation or amidation stages to build the chromophore's conjugated system.

    Final product types

    • Pyrimidine-based pigment concentrates for industrial inks
    • Solvent-based printing inks for flexible packaging
    • Weather-resistant automotive and industrial coatings
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    Certification & Compliance
    More Introduction

    N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide: A Manufacturer’s Perspective on Its Role and Real Advantages

    Understanding the Core Value of N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide

    In the world of fine chemical manufacturing, few compounds come with the combined specificity and versatility of N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide. Day in and day out, our operations handle the synthesis, purification, and inspection of this key intermediate for countless customers in pharmaceutical and crop science companies.

    We do not distribute, we do not outsource: our experienced chemists watch each batch from the first raw material addition to the final packed drum. This process lets us observe the characteristics—which truly dictate how this substance meets a project's demands. Over the years, we've found that our control over the reaction conditions leaves us with a product that meets high purity standards time after time, something much harder to guarantee in a trading world full of repackaged intermediates. If you are reading this as a technical specialist wondering what really divides products from the factory floor versus those passed through multiple hands, our long-term observations should give clear insight.

    Specifications That Make an Impact

    For a product like this, purity is non-negotiable. In active synthesis campaigns, even a half-percent impurity can cause reaction shutdowns or expensive purification workarounds downstream. Our standard batch purity reads as 99 percent by HPLC, with complementary GC and NMR results taken for process validation. Particle size is kept within a narrow range to ensure handling comfort for both automated and manual dosing systems. Moisture content can swing the performance of similar heterocyclic intermediates; careful drying and rapid airlock sealing keeps our product within a tightly measured band, usually under 0.3 percent.

    We deliberately avoid broad claims and instead rely on concrete, batch-documented analytics. No one wants uncertainty once a campaign begins; we supply full COA and batch traceability for each lot so that process chemists and supply managers know exactly what gets delivered, every single time.

    Applications and Operator Experience

    This formamide derivative carves out its primary use as a pyrimidine intermediate, heading into the synthesis routes of antineoplastic, anti-infective, and occasionally herbicidal compounds. Our colleagues in R&D have run routes using N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide to prepare key pharmaceutical building blocks. These syntheses often rely on the dichloro pattern for further substitutions or to introduce site-specific modifications, essential for subsequent bioactivity.

    Operators who spend years charging and monitoring these reactions have taught us a few practical lessons. Fine particle control helps avoid clumping that leads to feeding errors—more than once, we've heard process engineers commend the flowability of our finalized material compared with generic market offerings. On the product handling line, those differentiators keep campaigns steady and flexible at scale.

    Practical Distinctions Between Factory-Made and Sourced Materials

    We hear a lot about “grade this” and “pure that,” but over time, the performance of N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide shows what truly differentiates factory-direct supply from material shuffled through agents and traders. Repackaged material frequently comes with inconsistent appearance—caking, odd coloration, or trace contamination. Our direct manufacturing team addresses these so they never even leave the plant. Recently, our batch records flagged a short-lived color shift; plant managers traced it to a hot-spot in a new drying chamber. That instance underscored why factory oversight means more than paper statistics—physical consistency protects end-use processes, reducing downtime and wasted resources.

    We keep a continuous log of customer feedback addressing more than just purity spec. Customers who have previously purchased bulk-packed intermediate from third parties describe cases of packing material shedding, leaks, and batch-to-batch inconsistencies. Our switch to anti-static inner liners and spear-headed packs was the direct result of hands-on operational troubleshooting—an improvement you won’t find listed on standard spec sheets but felt in every safe, spill-free transfer.

    Real Impacts in Pharmaceutical and Agrochemical Synthesis

    A huge proportion of N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide ends up in complex synthesis campaigns, ultimately bound for regulated industries. For pharmaceuticals, this intermediate often forms the backbone of molecules targeting metabolic or microbial pathways, especially where site-directed substitution patterns are needed. Many project chemists value our lot-tested pattern of low residual solvent content, since this minimizes side-reactions in critical condensation or substitution steps.

    A recent collaborative project saw this compound serving as the linchpin in a multi-step route to a fungicidal agent. Real-world results tracked higher yields—and fewer isolation steps—using our in-house kept intermediate compared to external market samples previously sourced by our partner. Project managers attributed this to a statistical reduction in total impurity load and measured crystalline consistency, showing how upstream control echoes throughout the value chain.

    Handling and Storage Realities from a Manufacturer’s Angle

    People designing production floors often overlook material behavior under variable warehouse temperatures, humidity, or light exposure. N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide’s slightly hygroscopic nature requires special procedures in the last steps of drying and packing. Early in our production, we recognized how even a small rise in drum headspace humidity can reduce shelf stability, so we standardized controlled nitrogen blanketing and rapid-seal protocols.

    Our own logistics team trained in safe handling protocols and regular drum rotation, ensuring inventory turnover that keeps product at peak performance. More than once, customers shared stories of off-odors or soft caking on similar intermediates that sat too long or weren’t packed under controlled conditions. Because direct shipment leaves little room for guessing, each drum from our warehouse comes fully sealed and with storage instructions based on both lab and real-world field-testing. The integrity shows through when opened at any qualified pharmaceutical or agrochemical facility.

    Difference in Process Implementation—Not Just Grade

    Many ask us directly about the difference between our material and market alternatives: Why does factory-made N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide fare better in multi-step reactions or scaled-up campaigns? Experience dictates that it’s not just about a higher assay number, although ours consistently measures by independent analytics. Control over the entire synthesis line, plus monitored purification with traceable SOPs, shapes the actual performance of the compound.

    Material repacked or sourced from multiple origins brings unpredictables: moisture slip, accidental hot spots, inconsistent color, or micro-aggregations. Over the years, customers running long syntheses told us the difference in filtration time, yield, and process stability is visible after just a few completed batches—factory-owned lines provide real accountability, and that equals smoother process chemistry.

    From Specific Use Cases Back to Overall Supply Chains

    Manufacturers like us live alongside and support chemical research teams and process development specialists. We receive ongoing reports on the behavior of N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide in new synthetic pathways, which helps us tweak parameters and preemptively solve future issues. Finer crystal control and process alarms on the drying line came from a single “sticky batch” complaint from a pilot plant two years ago. Since then, batch uniformity complaints dropped to near zero. Our upgrades stem directly from production feedback, not generic trends.

    We view each new specification change or purity requirement as an opportunity for improvement rather than a hurdle. Some users require tailored moisture specs or alternate packaging to suit unique environmental controls in their facilities; our flexible plant scheduling and direct customer engineering support mean we can respond on their timeline. Several partners have expressed appreciation for our willingness to adjust timelines or packing methods on short notice—a flexibility majorly shaped by our in-house production and integrated logistics.

    Transparency and Traceability: From Raw Material to Finished Drum

    We have observed a growing market expectation for upstream transparency and regulatory compliance, particularly in life sciences and food chain applications. As factory-direct producers, we keep complete logs on raw material origins, plant processing times, and final packaging runs. Each lot enters a monitoring program—involving short and long-term stability checks—with records available for qualified audits.

    By keeping everything under one roof, we lay out an open book for inspection, be it by a regulatory body or a multinational procurement division. Traceability has proven its value during rare circumstance recalls; every product lot can be traced backwards by a single batch code, ending uncertainty for our partners.

    Direct manufacturing responsibility carries another benefit: rapid adjustment to regulatory or market-triggered recall events. When either raw material supply or process operations see disruption, we communicate immediately with partners—this puts contingency plans in place and keeps business continuity strong for everyone down the chain.

    Supporting Innovation and Process Chemistry at the Source

    Genuine experience with process chemistry means hearing not just from procurement officers but also from on-the-ground chemists and plant operators. We encourage pilot plant teams to share unusual observations about our N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide—foggy solution? Slower than expected reaction rates? Our technical team dives into root causes directly, often sending out alternate lot samples or running micro-scale tests in parallel.

    By interacting regularly with R&D, we stay ahead of required specification changes, new analytical method development, and regulatory shifts. Mutual trust grows with speed and transparency; one chronic customer request led directly to an alternative drying protocol that now speeds up their downstream filtration. This feedback loop does not happen through distributors: it comes from open ears at the manufacturing source.

    Comparing Side-by-Side With Other Pyrimidine-Based Intermediates

    Where N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide finds its distinction is in its dichloro configuration and its ability to function as both a nucleophile and an acceptor in specialized condensation reactions. Chemists often compare this with less substituted pyrimidine options or mono-chloro derivatives, noticing measurable differences in reactivity and selectivity. This product’s unique electronic profile, defined by the two electron-withdrawing chloride substituents, facilitates particular step chemistries in both pharmaceutical syntheses and crop protection development.

    During process development, teams often juggle several pyrimidine building blocks. Our direct plant testing has demonstrated that reaction yields and impurity profiles vary significantly, depending on the substitution pattern. The dichloroformamide delivers both stability during handling and increased specificity during downstream chlorination or nucleophilic displacement. As formulators, we see these effects firsthand; the product keeps showing its value in yield improvements and cleaner isolations.

    Addressing Real-World Manufacturing and Supply Chain Issues

    Every chemical plant faces evolving challenges—raw material fluctuations, evolving safety regulations, and shifting customer needs. Our on-site team constantly reviews our sources for key starting materials, maintaining multi-level supplier checks so we can react quickly when market shortages pop up. A tight grip on all production steps pays off: delivery times remain short, and our customers avoid the disruptions common in turbulent sourcing cycles.

    On several occasions, we’ve implemented secondary supply lines, so critical buyers—especially in pharmaceutical manufacturing—have redundancy and avoid costly downtime. This direct supply reliability holds as much value to an integrated manufacturer as any performance metric.

    Active Quality Management and Scale-Up Support

    No batch ever leaves our gates without a full suite of analytical checks—this isn’t just about ticking boxes for compliance, but about protecting downstream synthesis routes and supporting documentation for regulatory bodies. Years of refinement have left us with robust protocols for impurity fingerprinting, moisture quantitation, and even particle size distribution.

    For scale-up teams, this assurance takes a real weight off their shoulders. They can design process steps knowing what attributes will hold fast from the kilo lab to the full plant scale. A handful of times, we’ve even re-ran test batches in collaboration with end-users to validate process transfer or troubleshoot unexpected outcomes. That is the confidence that comes with direct engagement—something resellers cannot replicate.

    A Real Partner in Evolving Chemistry Demands

    Our commitment to N-(2-Amino-4,6-Dichloro-5-Pyrimidinyl)Formamide runs deeper than just supplying material. It includes troubleshooting, supporting pilot runs, and responding flexibly to specification evolution. Manufacturers carry the long-term view: performance isn’t measured just by this month’s shipment but by cumulative reliability, batch after batch.

    We have experienced the value of investing in process upgrades, transparency, and direct feedback loops, which keep us attuned to the needs of both global industrial giants and agile start-ups exploring new uses for this molecule. As regulatory and market expectations evolve, customers find genuine value in working with the plant that makes their chemical—from synthesis to shipment to startup troubleshooting—because partnership makes the difference.