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HS Code |
992127 |
| Chemicalname | Methyl 2-Amino-3,4,5-Trimethoxybenzoate |
| Molecularformula | C11H15NO5 |
| Molarmass | 241.24 g/mol |
| Casnumber | 31756-95-9 |
| Appearance | White to off-white solid |
| Meltingpoint | 117-121°C |
| Solubility | Soluble in organic solvents like ethanol, methanol |
| Density | 1.28 g/cm3 (approximate) |
| Smiles | COC(=O)C1=C(C(=C(C(=C1OC)OC)N)OC) |
As an accredited Methyl 2-Amino-3,4,5-Trimethoxybenzoate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White, sealed, HDPE bottle labeled "Methyl 2-Amino-3,4,5-Trimethoxybenzoate, 25g," with hazard warnings and lot number. |
| Shipping | Methyl 2-Amino-3,4,5-Trimethoxybenzoate is shipped in tightly sealed containers, protected from moisture and light, and clearly labeled for laboratory use. The package complies with relevant chemical transport regulations, ensuring safe, prompt delivery. It is shipped by certified carriers, suitable for both ambient or controlled temperatures as required by stability data. |
| Storage | Methyl 2-Amino-3,4,5-Trimethoxybenzoate should be stored in a tightly sealed container, in a cool, dry, well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers. Protect from direct sunlight and moisture. Label clearly, and ensure access is restricted to authorized, trained personnel. Follow all relevant safety and chemical storage regulations. |
Applications of Methyl 2-Amino-3,4,5-Trimethoxybenzoate in Industrial ManufacturingMethyl 2-Amino-3,4,5-Trimethoxybenzoate serves core functions as a synthetic intermediate for fine chemical industries. As a direct factory producer, we supply to downstream manufacturers engaged in regulated and process-intensive sectors. Below are industrial application scenarios, each reflecting current market demand, established production practices, and compliance requirements. 1. Active Pharmaceutical Ingredient (API) Intermediate SynthesisThe compound functions as a core intermediate in the multi-step synthesis of certain APIs, especially kinase inhibitors and CNS active agents. Downstream pharma clients use this ester to introduce amine groups under controlled reaction environments. Process chemists rely on its high purity, traceability by batch, and full documentation traceability to comply with stringent regulatory expectations for human therapeutics. GMP-grade material supports continuous production, minimizing batch-to-batch variability in synthesis routes, and meets the needs of scale-up operations. Industry compliance standards
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2. Agrochemical Synthesis for Crop Protection AgentsAgrochemical formulators utilize this compound as an intermediate to construct selective herbicide and insecticide classes. The chemical reactivity of the amino and methoxy groups enables further functionalization, crucial for producing performance-specific molecules. Only registered crop protection manufacturers handle this material at industrial scale, with rigorous environmental and occupational safety monitoring as required by agrochemical legislation in primary export destinations. Industry compliance standards
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3. Fine Chemical Synthesis for Advanced MaterialsProducers in advanced materials incorporate this methyl amino trimethoxybenzoate in the synthesis of functionalized building blocks used in specialty polymers and coatings. The electron-rich aromatic ring with substituent positions offers routes to further derivatization for optoelectronic materials and resins. Specialty chemical makers demand strict conformance with environmental handling and trace impurity restrictions for downstream performance reliability. Industry compliance standards
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4. Custom Chemical Synthesis for Research and DevelopmentContract R&D labs, pharmaceutical research institutes, and specialty chemical startups demand this compound in scalable, reproducibly documented lots for custom molecule synthesis. It serves as a key scaffold for heterocycle construction, SAR library expansion, and medicinal chemistry projects. Documentation supplied directly from factory-specific QC provides critical support for patent filings, scientific reporting, and international technology transfers. Industry compliance standards
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Every run of Methyl 2-Amino-3,4,5-Trimethoxybenzoate brings our team another lesson in the art of fine chemical production. It’s more than a series of reactions or a neat chemical equation. Working with this compound, formula C11H15NO5, you quickly learn the difference small details can make in yield, purity, and performance. This molecule sits right at a busy intersection for research laboratories and development hubs, where aromatic chemistry serves as a launch pad for bigger ideas.
People often ask about the purpose behind this benzoic acid ester. Over the years, the scope has grown. Chemistry programs started paying attention to it not just for academic curiosity, but for concrete progress in synthesizing pharmacophores. No high-handed mystery here—its backbone with the three methoxy groups supports targeted transformations, crucial when advancing building blocks for active pharmaceutical ingredients. A customer looking to explore substituted anthranilic acids, for example, often begins with this ester. The methyl group adds a reliable point for hydrolysis or conversion, so synthetic chemists can shape the pathway without unnecessary detours.
Walk through our operations and you’ll see that getting to the right specifications hasn’t happened by accident. The starting material, 3,4,5-trimethoxybenzoic acid, carries subtle habits that can trip up anyone rushing the process. Moisture content, solvent selection, timing—all these steps have demanded careful tuning on our end. As a manufacturer, each parameter connects directly to results people outside never notice, but researchers downstream appreciate. Purity has remained one of the toughest lines to hold: any trace of acidic or methylating byproducts can quickly throw off your final set of reaction options. We’ve seen first-hand how a single percent off in residual solvents during esterification can gum up later steps.
Chemically speaking, we talk about the molecule as a white to off-white crystalline powder. That sounds mundane, but in the plant, the difference between needle and prism, glisten and outright clumpiness, becomes very real. Getting the solid-state form consistent means managing slow evaporation rates, solvent ratios, and even the humidity on the line. Each adjustment offers a chance at smoother filtration and drying, reducing carryover of unwanted remainders.
An academic project investigating neurotransmitter analogs and a manufacturer of diagnostic reagents both need reliability in their substrate. We deal mostly with research institutions, pilot plants in pharmaceutical development, and to some extent dye and pigment innovators. The most demanding users have always pointed out the same thing: it’s easy to underestimate how troublesome minor contaminants or batch inconsistencies can be.
Methyl 2-Amino-3,4,5-Trimethoxybenzoate often serves as a precursor—its structure supports nucleophilic substitution, oxidative coupling, or hydrolysis depending on the synthetic aim. Materials with unknown trace impurities clog up downstream purification steps, stall runs, or behave unpredictably during scale-up. In pharma, the risks multiply fast. That’s why we have invested directly in online monitoring, upgraded vacuum filtration, and HPLC-based batch analytics, not to just tick the boxes, but to shield our partners from setbacks we ourselves have battled.
Use in coloring agents or specialty dyes might not demand the same degree of control as pharmaceutical work, but the principle holds. Contaminated or off-spec material colors differently, forms hazes, or yields unwanted downstream reactions. One pigment customer faced repeated chromatic shifts with off-market alternatives that failed to meet basic threshold for iron and sodium residues, both of which impact final product luster and shelf stability. Years of support have shown us that even with a seemingly niche compound like this, purity and batch uniformity mean more than quick sourcing.
The market offers a whole family of amino benzoate esters, and the differences become clear if you’ve spent enough time running syntheses at the kilogram scale. The placement of the three methoxy groups in Methyl 2-Amino-3,4,5-Trimethoxybenzoate sets it apart from isomers such as the 2,4,5- or 3,4,6-substituted counterparts. These positions guide electronic effects and steric accessibility in later cross-coupling or alkylation steps, making 3,4,5-trimethoxy substitution particularly well-suited to certain condensation and amidation routes. We often point researchers to this product if they hope to tune reactivity without introducing too much instability at room temperature.
Other methylamino benzoates, especially without methoxy groups, tend to fall short of the flexibility needed for tailored reaction series. Bulkier ester groups like ethyl or propyl derivatives can slow down cleavage, which may have knock-on effects for scale or economic returns. Experience has shown that methyl ester represents a careful balance: volatile enough for clean removal during saponification, but not so fragile as to complicate storage or shipment.
Presence of the amino group in the 2-position allows access to routes unavailable with straight methoxybenzoates. We see demand surge when academic or corporate groups push for more advanced heterocyclic syntheses. The added reactivity of this ortho amino setup means our product works both as a nucleophile in ring closures and as a handle for other functionalizations. Someone running multi-step syntheses counts on this feature to build molecules that less-substituted esters simply cannot.
Throughout years of direct manufacturing and packaging, common themes appear in handling questions. Shelf life remains stable as long as the contents get protected from excess humidity and direct sunlight. We often use double polyethylene liners and moisture scavengers in bulk drums based on hard-earned lessons with product caking or partial hydrolysis. Unlike some more volatile intermediates, methyl 2-amino-3,4,5-trimethoxybenzoate rarely poses inhalation risks at normal temperatures, but fine dust from milling can carry further than most imagine. Our process improvement team upgraded fume extractors after observing fine particle buildup in a worker-accessible corridor, which eliminated reports of transient discomfort.
Thermal stability ranks high too—no spontaneous decomposition at typical storage conditions, which gives labs more flexibility with inventory. Transport by standard land or sea freight planes out smoothly, though humidity fluctuations during monsoon shipping seasons had forced us to adapt our drying sequence and packaging seals. These adaptations cut spoilage and waste rates by almost thirty percent over the last five years. It comes down to respecting the quirks of the molecule, not just the numbers published in older handbooks.
Our product’s popularity has fluctuated in pace with broader research directions: new demand peaks occurred as interest in small-molecule kinase inhibitors took off, then plateaued before a recent uptick through advances in fluorescent probe chemistry. The theme always circles back to reliability and readiness. Customers rely on us not only for the finished chemical, but also for insight—does this batch’s melting range shift slightly in high humidity? Is there underlying microcrystalline residue that might affect scale-up? Routine feedback cycles link us back to the people working at the bench. By directly supporting pilot synthesis runs, offering documentation with batch samples, and fostering extra communication when odd results appear, problems remain contained rather than ballooning into costly headaches.
Collaboration with end-users features prominently across our production meetings. Synthetic strategy doesn’t stand still, so technical teams work closely with researchers developing new analogs. Sometimes just a change in solvent, or mainline assay specifications, cascades into the way our output integrates into programs exploring new therapeutic areas. These conversations mean ongoing process adaptation, not static recipes. As a manufacturer, we’ve found the most lasting lessons always emerge from the minor issues up close—clumping, microtraces of byproduct, packing stress on final cooling, then adjusting our process for the next production run.
Anyone interested in fine chemicals eventually finds out that lab-scale success doesn’t always translate cleanly to bulk output. Early on, our batch processes ran at the mercy of operator feel—timing reaction quench, regulating temperature ramps, or drying times came down to notes and instinct. Over time, real-time analytics and guided process control sharpened results: in-process HPLC sampling during esterification allowed us to identify incomplete conversions, while digital moisture monitors at drying stations nearly eliminated complaints about tackiness or caking in packing lines.
Process waste streams often get overlooked in basic product introductions. We’ve worked hard to limit chlorinated solvent use and minimize leftover acidic washes that need post-processing. Experience with this molecule taught us which wastes persist after crystallization, what extraction methods reduce them, and how much real energy savings can be made by dialing in solvent recovery units. Not only does this keep our costs in check, it provides downstream assurance to customers with strict environmental or disposal requirements.
Finishing the process means thinking past the reactor. Before drums leave our hands, multiple test checks line up to guarantee quality. Trace-level impurity profiling (think sub-PPM metal residues), particulate distribution analysis, and repeat melting point checks reduce outlier batches. In one memorable case, a problematic filtration mesh led to a spike in fiber-based particulates—a minor source of trouble for most, but enough for a leading pharma client to flag. Improvements made on that front didn’t just solve the immediate headache; they raised awareness about the “invisible” pieces that become visible only when things go wrong.
Over years of making Methyl 2-Amino-3,4,5-Trimethoxybenzoate, some patterns stand out. Buyers with failing syntheses or unexpected yields from third parties visit us to troubleshoot. They look for data, transparency about starting materials, and experience overcoming hurdles. Having direct oversight of every process—from raw material sourcing through final QC—lets us guarantee a level of traceability that brokers or resellers simply can’t. We know the supply chain quirks, the risks of sudden price spikes in ortho-substituted anilines, and the headaches unstable intermediates can create during long-haul container transport.
Direct manufacturing experience means we can match requests with grounded advice: which impurity profiles cause trouble, what temperature swings affect crystallization, what shipping method best preserves particulate properties. Time spent on our floor tracking a questionable drum, dealing with pilot-plant scale clogs, or resolving a filter rupture builds more knowledge than anything the catalogs say. These lessons become advantages we pass along: smoother syntheses for end-users, confidence in scaling up, and solutions before issues become emergencies.
Every kilogram of this compound shipped factors into larger research, whether for new drugs, dyes, or smart material prototypes. As a manufacturer, we share the pressure and pride in each step along the way. By committing to process rigor and supporting partners throughout development cycles, we see technical progress not as isolated delivery, but as ongoing teamwork. Feedback loops and shared stories about where things did—and didn’t—work best drive us forward.
In the world of Methyl 2-Amino-3,4,5-Trimethoxybenzoate production, the stakes hide in the details: dust control, solvent recovery, trace impurity tracking, real feedback from partners, and the ability to adapt as projects evolve. This isn’t just about filling bottles or printing specs. It’s about knowing the path from raw material storage through the last QC check, fixing what breaks, and handing off a product others can depend on in their ambition to create something new. Experience working through failures and adjustments continually sharpens the final quality that reaches our customers’ doors.
Sharing these day-to-day experiences, and not just technical data or vague claims, lies at the heart of delivering true, tested value in specialty chemicals like Methyl 2-Amino-3,4,5-Trimethoxybenzoate. This approach builds lasting confidence long after the shipment leaves the warehouse.