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Methyl 1-Methylpyrrole-2-Carboxylate

    • Product Name Methyl 1-Methylpyrrole-2-Carboxylate
    • Alias Methyl 1-methyl-2-pyrrolecarboxylate
    • Einecs 'EINECS 688-500-0'
    • 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
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    Specifications

    HS Code

    972979

    Chemical Name Methyl 1-Methylpyrrole-2-Carboxylate
    Molecular Formula C7H9NO2
    Molecular Weight 139.15 g/mol
    Cas Number 118408-70-7
    Appearance Colorless to pale yellow liquid
    Boiling Point 88-90°C at 18 mmHg
    Density 1.143 g/cm³
    Smiles Cn1cccc1C(=O)OC
    Purity Typically ≥ 98%
    Storage Temperature 2-8°C
    Solubility Soluble in organic solvents

    As an accredited Methyl 1-Methylpyrrole-2-Carboxylate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle containing 10 grams of Methyl 1-Methylpyrrole-2-Carboxylate, sealed with a screw cap and clear labeling.
    Shipping Methyl 1-Methylpyrrole-2-Carboxylate is shipped in tightly sealed, chemical-resistant containers, protected from light, moisture, and incompatible substances. Ensure labeling complies with hazardous materials regulations. Handle with care during transit, maintaining temperatures between 2–8°C if required, and follow all local, national, and international shipping regulations for laboratory chemicals.
    Storage Methyl 1-methylpyrrole-2-carboxylate should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from sources of heat, ignition, and moisture. Protect from direct sunlight and incompatible substances such as strong oxidizers and acids. Label the storage container clearly, and keep it in a chemical storage cabinet designed for organic compounds to ensure safety.
    Application of Methyl 1-Methylpyrrole-2-Carboxylate

    Applications of Methyl 1-Methylpyrrole-2-Carboxylate in Industrial Manufacturing

    As a direct manufacturer of Methyl 1-Methylpyrrole-2-Carboxylate, we support specialized downstream sectors that require reliable, high-purity heterocyclic intermediates. Our product consistently integrates into advanced synthesis workflows across select fine chemical and pharmaceutical markets. Below, we provide detailed information on principal application areas reflecting real-world industry adoption and technical requirements.

    1. Active Pharmaceutical Ingredient (API) Intermediate Synthesis

    Leading pharmaceutical producers deploy our product in multi-step synthesis routes for nitrogen-containing heterocyclic APIs, including certain antipsychotics and anticonvulsants. Its role as a building block for pyrrole-based core structures makes it indispensable in regulated drug manufacturing pipelines where robust traceability and batch control prove critical for regulatory approval processes.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP-NF (United States Pharmacopeia – National Formulary)
    • European Pharmacopoeia (Ph. Eur.) monographs for relevant final APIs
    • 21 CFR Part 210/211 cGMP (FDA)

    Typical usage ratio

    • Included in molar excess (1.05–1.25 mole ratio) versus target coupling partners; optimized based on stoichiometry of API synthesis route

    Downstream process integration

    • Charged during intermediate condensation or amidation steps, prior to core ring closure or N-alkylation in multi-stage batch reactors

    Final product types

    • Pyrrole-based psychotropics (e.g., antipsychotic tablets)
    • Anticonvulsant active ingredients
    • Heterocyclic API intermediates for further derivatization

    2. Agrochemical Intermediate Production

    Agrochemical formulators utilize our pyrrole ester during the synthesis of selective soil-treatment actives and crop protection ingredients, particularly where stable nitrogen heterocycles contribute to target-specific herbicidal or fungicidal activity. High reproducibility and purity have proven essential for scaling up multi-ton seasonal production runs to meet agricultural planting windows.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products (including technical material standards)
    • REACH Registration, Evaluation, Authorisation, and Restriction of Chemicals (EU)
    • China Pesticide Registration (ICAMA)
    • ISO 9001:2015 certified process management

    Typical usage ratio

    • 0.3–2.0% by weight in intermediate batch syntheses, fine-tuned based on reactivity and downstream purification losses

    Downstream process integration

    • Dosed as a coupling component in heterocyclic ring formation or as a methylation substrate during early intermediate stages

    Final product types

    • Pyrrole-based herbicide actives (e.g., formulations for broadleaf weed control)
    • Nitrogen-heterocycle fungicidal agents
    • Precursor compounds for seed treatment products

    3. Advanced Material Monomer and Oligomer Synthesis

    Specialty polymer manufacturers incorporate our methylpyrrole ester as a monomer or co-monomer precursor to introduce nitrogen heterocycles into functional materials, such as conductive polymers or optical films. Careful control of purity and moisture levels facilitates effective chain-growth reactions, supporting advanced electronics and sensor markets where batch-to-batch consistency affects product specifications.

    Industry compliance standards

    • RoHS Directive (Restriction of Hazardous Substances, EU)
    • ISO 9001:2015 for quality managed chemical processing
    • Internal Corporate QC for impurity profiling and trace contaminant limits (ppm detection)
    • Specific technical standards for polymer electronics (e.g., IEC 62341 for OLED materials, as applicable)

    Typical usage ratio

    • 5–20 mol% as a co-monomer compared to main polymer feedstock, adjusted to target electrical, mechanical, or optical property requirements

    Downstream process integration

    • Fed into solution or melt-polymerization routes, either batch or continuous, during initial monomer blending prior to initiation of polymer chain formation

    Final product types

    • Conductive pyrrole-based polymer films for flexible electronics
    • Pyrrole-embedded optical coatings and sheets
    • Custom oligomer intermediates for sensor applications

    4. Fine Chemical Intermediate for Dye and Pigment Synthesis

    Dye and pigment manufacturers leverage our product as a source of functionalized pyrrole rings, integrating it into colorant synthesis for high-performance industrial and textile applications. The controlled reactivity of the ester group enables selective transformations, leading to enhanced batch coloration uniformity and product brightness.

    Industry compliance standards

    • REACH (EU), with focus on substance purity and trace metals
    • ASTM D3872 for color pigment intermediates
    • ISO 14001:2015 for environmental management during dye manufacture
    • GHS Safety Data Sheet compliance

    Typical usage ratio

    • Varies 1.0–5.0% of total colorant reaction mass, adapted according to pigment yield and chroma targets

    Downstream process integration

    • Added as a key reactant during initial heterocycle formation or after primary azo coupling, prior to final pigment precipitation and filtration

    Final product types

    • Pyrrole-derived dyes for synthetic fibers and technical fabrics
    • Specialty pigment dispersions for automotive coatings
    • Functional colorants for lightfast inks and markers

    5. Specialty Chemical Research and Custom Synthesis

    Research institutions and custom synthesis firms commission our product to access unique substitution patterns on pyrrole scaffolds. These workflows drive innovation in probe molecule development, combinatorial libraries, and proprietary chemical entity discovery, where the traceable origin and batch-characterized quality of our material ensure downstream reproducibility.

    Industry compliance standards

    • ISO 17025:2017 for laboratory calibration and analytical methods
    • Controlled substance precursor declarations as per national law (where applicable)
    • GLP (Good Laboratory Practice) for traceability and documentation
    • Internal R&D and project-specific quality control protocols

    Typical usage ratio

    • 0.1–1.0 mmol scale in library synthesis; up to multi-gram batch sizes for scale-up studies—determined by library scope or target molecule yield

    Downstream process integration

    • Dosed during stepwise synthetic transformations, usually in controlled-temperature reactors at the scaffold diversification stage, followed by chromatographic purification

    Final product types

    • Novel heterocyclic scaffolds for pharmaceutical research
    • Probe molecules for analytical and bioassay screening
    • Reference compounds and standards for LC/MS workflows
    Free Quote

    Competitive Methyl 1-Methylpyrrole-2-Carboxylate prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Methyl 1-Methylpyrrole-2-Carboxylate: Real-World Perspective from the Producer's Floor

    What Sets Methyl 1-Methylpyrrole-2-Carboxylate Apart in Our Lineup

    Every compound that leaves our reactors comes with a story—of non-stop adjustments, careful monitoring, and the grit embedded in chemical craftsmanship. Methyl 1-Methylpyrrole-2-Carboxylate stands out in our current range, both for its chemistry and the business it helps build. Over the years, we have watched customers gravitate toward it for its performance in the lab and production line. As a manufacturer, we've seen that tiny variations in process parameters spell the difference between routine yields and the level of reproducibility that researchers expect from a reliable partner, not just a shop front.

    Methyl 1-Methylpyrrole-2-Carboxylate carries a pyrrole ring with a methyl group tacked to the nitrogen and an ester group at the second position. This subtle structure keeps the molecule versatile, offering a launching pad for downstream chemistry—especially in medicinal synthesis and specialty intermediates. Many of our clients count on this specific scaffold as a building block. It does not just sit in a bottle awaiting some textbook reaction. Its role in fine-tuning physiochemical traits of candidate drugs and helping to generate harder-to-oxidize intermediates plays out every day in real projects.

    The feedback that comes straight from scientists—not procurement offices—guides how we set our specifications and qualify each lot. For Methyl 1-Methylpyrrole-2-Carboxylate, we consistently hear the same request: clear, impurity profiles and a narrow GC trace. Keeping impurities low is a hands-on process at our facility. We manage starting raw material quality, review catalyst residue after each run, and fine-tune purification steps. Unlike off-the-shelf commodity esters, every run gets a tailored approach, which reflects the complexity of working with heterocyclic substrates. We do not gamble with off-spec batches or pass along costly reworks. The work happens in real time, with plant operators sweating out the details.

    The Difference Experience Makes

    Compare Methyl 1-Methylpyrrole-2-Carboxylate to some of the standard ester products common in the market. Many esters lack this molecule's sensitivity to both air and trace metals during synthesis. Anyone who has ever tried to scale up a heterocycle with such substitution patterns will recognize the fine margin for error. One degree off on a reflux or tiny changes in nitrogen flow during alkylation reactions and the batch can veer off-spec without warning. Our technical team learned real lessons troubleshooting unexpected side products—especially those stemming from unintended ring opening or double-alkylation. Each batch is tested rigorously right before dispatch; we do not keep large reserves on the floor because freshness counts with these heterocycles.

    Some distributors sell a version of this compound sourced from multiple small operators. Their lots can show evidence of inconsistent process control—higher aldehyde content, excess pyrrole byproduct, or odors suggesting side reactions. That pattern does not help anyone aiming to map out a reproducible study or prepare regulatory filings based on consistent impurity profiles. In our hands, product that moves from our plant to your process arrives with transparency—clear CoA, traceability back to every key variable, and unwavering focus on stability.

    Meeting the Real Needs of Laboratories and Scale-up Teams

    Years ago, most demand came from academic groups pushing the chemistry of pyrrole derivatives. Now, the bulk of our shipments go to small start-ups, pharmaceutical research labs developing new scaffolds, and contract research organizations. Many of these teams do not just want a simple “yes/no” answer on specification conformity. We get direct queries on batch history, storage, and even the history of how we adapted our process—questions that push us to keep open records and stick strictly to actual run data.

    Research chemists running reactions that involve Methyl 1-Methylpyrrole-2-Carboxylate need assurance about trace moisture, residual solvents, and photo-instability. Traditional commodity esters rarely pose such concerns—but here, they can influence how the product performs in coupling, alkylation, and reduction reactions. Our facility built protocols around these real worries. After each lot hits final purity, we conduct moisture checks using Karl Fischer titration, focus on minimizing residual DMF and DCM from workups, and train our warehouse team to check UV exposure risks before packing. Chemical supply should never sink a project’s reproducibility.

    We field regular requests for very small lots, high-purity cuts intended for combinatorial synthesis, and larger orders meant for pilot plant trials. This range of asks has shaped both our plant design and warehousing. Each time a new spec shows up on a purchase order, our lab gets together with our production engineers. Decisions about batch size, filtration setup, or tweaks to reflux times aren’t tossed off to distant tech centers—they get hammered out right on our floor, with oversight by staff who understand why this molecule’s behavior matters.

    What Value-Driven Manufacturing Looks Like

    Production realities teach us to stay humble. There is always room for improvement. Anyone can list chemical properties. But only those who’ve spent time in a reactor bay know that the end-use for Methyl 1-Methylpyrrole-2-Carboxylate dictates the work that goes into each gram. On-the-ground operators see how raw materials—especially the sensitive methylpyrrole precursors—demand careful storage and rapid use to prevent hydrolysis or polymerization. The slightest contamination shifts the odor profile and knocks a batch out of specification.

    Our team tracks not just the primary product but the byproducts, waste solvents, and handling safety. Data gets logged for every temperature, every batch quench, and every analytical test. We keep up with local and international standards, especially as pharma and agrochemical applications warrant closer scrutiny. From the recycler who manages spent solvents to our safety advisor approving ventilation upgrades, every step matters. Safety assessments focus on both the chemistry and the worker on shift whose judgment must stay sharp, from the first drum charge to the final packaging.

    What separates Methyl 1-Methylpyrrole-2-Carboxylate from simpler products is the way it bridges classic heterocyclic chemistry with the ongoing demand for customization. Many downstream pathways—especially medicinal chemistry—lean hard on substitution patterns that avoid halogenated intermediates. As more regulators tighten scrutiny on genotoxic impurities, customers choose this product for tests in clean, low-residue, and non-halogenated environments. We never take purity claims lightly. Each lot’s release includes a set of impurity thresholds and full retention of relevant analytical spectra.

    Packed with Purpose: From Tank to Technician

    A lot of care goes into packaging, too. No big surprises there—customers who work under tight timelines want to know that every shipment lands on their dock without loss in purity or function. Our process involves flushing with argon before sealing, double-lining each drum, and using non-reactive liners to keep performance intact no matter what climate the box travels through. An extra hour making sure caps get double-checked often means fewer complaints and reduces costly rework downstream. Customers learning to trust a product demand more than promises; our approach delivers what the spec sheet can’t.

    It didn’t take long for us to learn that quality does not simply mean “high purity.” It means understanding that certain applications might prefer a specific isomer ratio or lower threshold for metal contamination. The finer details running through a well-maintained batch record include sample splits, extra tracking of storage time, and the willingness to rerun a batch if anything falls short of target parameters. We invest in trace-level elemental analysis for each product run, because not every metals-removal technique fits the sensitive nitrogen-containing rings at play here.

    Customers who contact us are rarely interested in just acquiring another bottle for a shelf; they are staking their projects and reputations on timely, reliable shipments. Many have walked away from unreliable sources after seeing lots turn yellow in storage or finding extra peaks in GC-MS runs. Their frustrations push us to keep our standards above the average. We ship what we would use ourselves, and the same people who synthesize the product pick up the phone when technical questions drop in.

    Bridging Lab and Plant: Lessons Learned with Scale

    Many suppliers label themselves “full-range producers,” but few own their reactors, troubleshoot their scale-ups, and stand behind the outcomes when gram quantities become multi-kilo quantities. At our site, process scale-up for Methyl 1-Methylpyrrole-2-Carboxylate has called for patience and perseverance. What responds well to small lab runs on a magnetic stir bar can rebel during a 500-liter run. Temperature stratification, inconsistent stirring, and thermal gradients lead to real problems: unexpected side reactions, low yields, or a spike in unwanted oligomers. Our staff have faced these issues head-on, redesigning process flow and cooling systems, and sometimes dialing back throughput in favor of reproducibility.

    One of the biggest breakthroughs in recent years involved addressing trace moisture’s impact on downstream reactivity. Research teams developing complex active pharmaceutical ingredients (APIs) rely on our ability to keep water levels below specifically identified cutoffs to avoid competing hydrolysis. Instead of treating dryness like an afterthought, we adjusted our packaging workflow—using low-humidity zones, monitoring desiccant usage, and double-validating with in-house and independent labs. These steps add time to the process but pay off in consistency once the product leaves our plant.

    Our experience with customer audits has further influenced day-to-day practice. Teams arriving for facility tours or remote assessments ask about not only the synthetic process but also documentation, daily logs, waste handling, and consistency across shipments. Lessons from those visits filter into regular staff training—both in technical skills and communication. Every lab sample, every drum, every handling step illustrates our belief that chemistry works better when done with a sense of responsibility to both science and the end-user.

    Looking Forward: Innovation in Sourcing and Synthesis

    Staying at the front end of specialty heterocycle production means ongoing investment in both R&D and process optimization. With Methyl 1-Methylpyrrole-2-Carboxylate, we keep a close eye on incoming raw materials. Several years ago, a global shortage of pyrrole derivatives pushed us to qualify new sources, redesign supplier audits, and update in-house purification. We have partnered with select growers and chemical precursors’ providers to maintain stability and consistency in the supply chain—even if costs rise. Many companies simply switch vendors when prices fluctuate. At our facility, we take the time to conduct deep-dive assessments and verify that new sources do not compromise downstream purity or introduce new risks.

    In synthesis, small improvements create lasting returns. Our technical team evaluates new catalysts, tries novel solvents, checks reaction vessels for fouling, and swaps out traditional work-ups for greener, less harsh options. Despite this, the core synthetic pathway—making use of reliable alkylation with quality methylating agents—has proven resilient to scaling, with incremental tweaks that keep unwanted byproducts away from the main fraction. We continue to test automation in work-up and purification, allowing us to lift bottlenecks without losing sight of the nuances that separate low-quality lots from trusted material.

    Quality monitoring runs through each batch. Sophisticated chromatography setups give us in-depth impurity analysis, while spectral data travels with every order. Our lab keeps up with regulatory shifts, especially for pharma and ag players concerned about trace-level nitrosamine content, residual metals, or cross-contamination. By investing in next-generation analytical equipment, we provide customers with current and historic data on every lot—an approach that raises the bar for trust and transparency.

    The Human Element: Trust Built on Daily Practice

    What keeps us committed to producing Methyl 1-Methylpyrrole-2-Carboxylate is the people behind the product. Each shift sees skilled operators, analysts, engineers, and safety specialists working in tandem to deliver results, not just specifications. We value conversations with research scientists who care about reaction yields and impurity profiles. Every improvement we invest in comes from a shared aim to deliver more than a generic bottle of chemicals—it is chemistry built on accountability.

    Our door is always open to critical feedback. Problems rarely come with textbook answers. A batch that looks perfect by HPLC might give a lower-than-expected result in a customer’s process, leading us to retrace steps, share chromatograms, and troubleshoot side-by-side. We recognize that real-world chemistry takes relentless communication, not just the exchange of order numbers.

    Our plant’s rhythm reflects the requirements of global labs running round the clock. Whether a customer works in a university startup, a biotech lab, or a multination pharmaceutical research center, our product bridges the realities of discovery and commercial production. The molecule does not change—the difference comes from the stewardship guiding it from reaction flask through purification, packaging, and direct technical support.

    Methyl 1-Methylpyrrole-2-Carboxylate, as synthesized and packaged by our own operators, stands as a marker of what happens when experience and commitment shape chemical manufacturing. In a market often defined by faceless trading, we bring a hands-on, transparent approach—delivering products that not only meet, but are shaped by, the needs of those who use them.