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Methyl 2-(Methylamino)Benzoate

    • Product Name Methyl 2-(Methylamino)Benzoate
    • Alias Methyl o-toluidinobenzoate
    • Einecs 629-576-8
    • 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

    471094

    Chemical Name Methyl 2-(Methylamino)benzoate
    Molecular Formula C9H11NO2
    Molecular Weight 165.19 g/mol
    Cas Number 17434-66-5
    Appearance Colorless to pale yellow liquid
    Boiling Point 282-283°C
    Density 1.10 g/cm3
    Solubility In Water Slightly soluble
    Smiles COC(=O)C1=CC=CC=C1NC
    Inchi InChI=1S/C9H11NO2/c1-10-8-6-4-3-5-7(8)9(11)12-2/h3-6,10H,1-2H3
    Refractive Index 1.586
    Flash Point 155°C

    As an accredited Methyl 2-(Methylamino)Benzoate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing White crystalline powder, sealed in a 100g amber glass bottle with tamper-evident cap, labeled with chemical name, CAS, and safety information.
    Shipping Methyl 2-(Methylamino)benzoate should be shipped in securely sealed containers to prevent leaks, protected from moisture and light. It requires proper labeling according to chemical transport regulations and must be handled by trained personnel. Store and transport at room temperature, avoiding extreme conditions to maintain product integrity and ensure safe delivery.
    Storage Methyl 2-(Methylamino)benzoate should be stored in a tightly sealed container, away from light, moisture, and incompatible substances such as strong oxidizers. Keep it in a cool, dry, well-ventilated area, preferably in a designated chemical storage cabinet. Properly label the container and ensure compliance with local regulations for the storage of potentially hazardous chemicals.
    Application of Methyl 2-(Methylamino)Benzoate

    Applications of Methyl 2-(Methylamino)Benzoate in Industrial Manufacturing

    Methyl 2-(Methylamino)Benzoate serves as a reliable key intermediate within several advanced chemical manufacturing sectors. As an original producer, we support customers through scale-up, regulatory documentation, and consistent material availability. This section offers a detailed view of industry-specific downstream practices, compliance guidelines, usage ratios, process considerations, and finished products.

    1. Active Pharmaceutical Ingredient (API) Intermediate Production

    Many established pharmaceutical companies select this benzoate derivative as an essential intermediate during the synthesis of specific APIs, especially within the fields of local anesthetics and pain management drugs. In multi-step routes, precisely controlled batch addition minimizes side reactions and ensures stringent impurity profiles. In-process analytical controls maintain purity, responding to requirements set by regulatory authorities for API traceability. Our technical support team frequently assists with integrated documentation for DMF and stability studies in regulated markets.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • EU GMP Part II for API manufacturing
    • USP-NF Monographs (for downstream API)
    • EDQM CEP guidance (when used within the EEA)

    Typical usage ratio

    • 0.15–0.35 molar equivalents per API batch; adjusted based on batch size, downstream target, and purity grade

    Downstream process integration

    • Introduced during second or third synthesis step of the local anesthetic API route, subjected to controlled amination and subsequent purification

    Final product types

    • Local anesthetics in injectable and topical forms (e.g., analgesics for dental and minor surgery use)
    • Pharmaceutical-grade intermediate compounds
    • Reference standards for regulated QC analysis

    2. Fine Chemical Synthesis for Agrochemical Ingredients

    A major application area includes fine chemical synthesis lines producing key building blocks for selective agrochemical actives. Downstream manufacturers apply tight analytical monitoring for trace contamination to comply with global residue standards. During pilot and full-scale runs, users implement controlled dosing schedules and inert atmosphere handling. We provide technical documentation for hazard communication and batch traceability, critical for Japanese and EU registration dossiers in agrochemical innovations.

    Industry compliance standards

    • ISO 9001-2015 Quality Management for chemical synthesis
    • REACH registration (Europe)
    • Japan CSCL compliance documentation
    • FAO/WHO pesticide specification guidelines for related actives

    Typical usage ratio

    • 5–12% of total reactants by weight; adjusted to substrate reactivity and desired product yield

    Downstream process integration

    • Added early as a core aromatic substrate within multistep condensation or substitution reactions for herbicide or fungicide intermediates

    Final product types

    • Precursor compounds for novel herbicides, fungicides, or insecticidal actives
    • Standard samples for residue studies
    • Pilot-scale active ingredients for agrochemical R&D

    3. Synthesis of Specialty Dyes and Pigment Intermediates

    Several specialty dye manufacturers use this methylamino-benzoate as a key intermediate for creating high-purity pigment precursors. Compliance with heavy metal and aromatic amine content limitations remains essential for colorant producers supplying textiles, coatings, and plastics markets. Engineers employ continuous-feed or semi-batch reactors for better pigment uniformity and batch reproducibility. We partner with processors to establish analytical protocols and document raw material traceability to meet downstream brand requirements for textile and plastics coloration.

    Industry compliance standards

    • Oeko-Tex Standard 100 for colorant components (applicable for textile dyes)
    • EN 71-3 Safety of Toys (for pigments in plastics/paints)
    • ISO 9001 for pigment synthesis QC procedures
    • REACH Substance of Very High Concern (SVHC) declaration when needed

    Typical usage ratio

    • 1–7% of reaction mass in dye-formulation batches; precise ratio controlled according to target chromophore

    Downstream process integration

    • Charged as the methyl-amino donor in the initial condensation or reduction stage to form core dye scaffolds

    Final product types

    • Intermediate aromatic amines for high-value pigment classes
    • Finished textile colorants for fabric printing
    • Specialty dyes for plastics and coatings industries

    4. Custom Synthesis Services for Biotechnology Reagents

    Leading biotechnology firms rely on this molecule as a starting point in limited-scale custom synthesis of specialty reagents, especially for fluorescent probes and labeling compounds. These processes demand scrupulous batch tracking and analytical confirmation to fulfill bioreagent documentation standards. Formulators often operate under nitrogen with dry solvents and low-ppm moisture controls to protect sensitive intermediates. We support customer-initiated projects with supply chain transparency and streamlined COA and TDS packages aligned with global research reagent requirements.

    Industry compliance standards

    • ISO 13485:2016 for in vitro diagnostic reagent suppliers
    • IUPAC nomenclature practice in reagent labeling
    • National Institute of Standards and Technology (NIST) traceability (USA)
    • ISO/IEC 17025 Laboratory Quality for analytical data

    Typical usage ratio

    • Typically, 0.5–3 mmol per reagent synthesis batch; modified as required for target molecular structure

    Downstream process integration

    • Added as an initial aromatic component for further derivatization into fluorophore backbones or conjugatable linkers

    Final product types

    • NHS-ester labeling reagents for biomolecule tagging
    • Specialty fluorescent dyes for cell imaging protocols
    • Aromatic linker and labeling compounds for oligonucleotide synthesis
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    Certification & Compliance
    More Introduction

    Methyl 2-(Methylamino)Benzoate: Practical Insights from the Source

    A Closer Look at the Role of Methyl 2-(Methylamino)Benzoate

    Work in chemical manufacturing puts us face-to-face with countless compounds, but some reliably prove themselves in both versatility and performance. Methyl 2-(Methylamino)Benzoate, known to those of us in the industry by its CAS number 13623-25-1, has earned a solid place on our production line and in downstream research labs. Over the past years, our team has dealt with its manufacture from raw material sourcing through to final purification and quality testing. We’ve seen how this particular ester brings together practicality and structural nuance, opening doors for more advanced chemical synthesis, especially where selectivity is paramount.

    Manufacturing with Precision

    Few things motivate us like the challenge of refining a process, and the pathway to producing Methyl 2-(Methylamino)Benzoate has proven both demanding and rewarding. The process starts with reliable benzoic acid derivatives, then moves into methylation and amination steps, where controlling temperature and stoichiometry makes a measurable difference. Over time, we've adopted solvent systems and catalysts that limit impurities without driving up waste. Each batch that leaves our facility carries a consistent melting point—a sign that the chemistry went right—and always meets HPLC purity of at least 99%.

    Handling this compound every day, we see up close how even minor process variations can affect the color, odor, or stability. Our technicians monitor moisture carefully, since excess water can reduce shelf life or cause hydrolysis, even before the product reaches users. For storage, we stick to airtight containers, keeping them in cool, dark, and dry locations, because light and air exposure quickly degrade ester bonds. It’s humbling to realize that routine attention to these details can make or break downstream reactions for our customers.

    Specifications that Matter in Daily Use

    On paper, customers see melting points, HPLC area percentages, and trace impurity profiles, but for us, these are more than numbers—they represent thousands of hours spent balancing lab work and feedback from end-users. Typical batches run with a melting point in the 62-64°C range, which lets buyers know they’re starting with the genuine article. The methylamino group remains structurally intact under careful handling, supporting further N-alkylation or acylation. We tune our protocols so that color never strays from white to pale yellow, which signals purity and simplifies monitoring during analytical procedures later on.

    Sometimes, chemists come to us with demanding GC-MS requirements. We keep residual solvent content below trace thresholds, and ensure targeted ion peaks, so downstream reactions won’t stall due to interference. These controls reflect years of troubleshooting, not just adherence to a checklist. Occasionally, we see requests for customized particle sizing—a reminder that every synthetic pathway has its own quirks, and that firsthand discussions with other makers and researchers leads to smarter production, not just routine replication of old methods.

    Upstream and Downstream: The Value in Every Batch

    Manufacturing means spending time not only with the product itself but also learning from those who use it. Methyl 2-(Methylamino)Benzoate finds a home in research labs focused on pharmaceuticals, dye intermediates, and specialized building blocks for agrochemicals. It steps into the role of a coupling partner or forms the scaffold for more complex systems, thanks to its reactive amine and ester groups. We’ve supplied it to teams exploring new CNS-active candidates, exploiting the compound’s ability to yield methylamino substitutions where traditional methods hit a dead end.

    Because we see the final product at a stage where it’s stable and pure, compared to many intermediates, it travels well and typically survives moderate transit conditions. We use that storage and transport stability as an assurance of quality—a factor we consider indispensable for both research and pilot-scale synthesis. Whenever researchers want to introduce substitution onto the aromatic ring without unwanted rearrangement, this molecule becomes a go-to. Our years of reliability have turned occasional buyers into regular partners.

    What Sets This Material Apart From Its Relatives

    Experience reveals differences that data sheets can’t capture. For instance, many labs rotate through series of methylamino- or methoxy-benzoate analogues, but only a handful offer the mix of reactivity and shelf life seen with Methyl 2-(Methylamino)Benzoate. Analogues bearing bulkier alkyl groups, or compounds with N,N-dimethyl substitutions, often trap moisture or degrade quickly. Our product holds up to repeated exposure, allowing researchers to set up reactions without worrying about every incremental shift in color or texture.

    Some compounds featuring ortho substituents on the benzoate backbone bring in more steric hindrance, leading to unpredictable side reactions or lower selectivity in condensation steps. In contrast, this methylamino group gives a balance—reactive enough for targeted acylations or condensations, but not so bulky as to hinder planar reactions needed for ring closures or cross-coupling procedures.

    Turning Lab Scale into Real-World Supply

    Transitioning from hundreds of grams in the pilot plant to regular bulk demand, we keep quality control as the core of our workflow. Market need for this molecule once fluctuated, depending on pharmaceutical trends, but in the past few years, demand has increased as several synthetic routes have emerged that need flexible aromatic esters. We directly manage every aspect—raw material verification, process optimization, finished product quality, even packaging engineering. We’ve found the best batches emerge when chemists, engineers, and logistics work closely right from the start, looking at both the wet chemistry and packaging that keeps every lot in specification all the way to its destination.

    Feedback loops sit at the heart of our operation. If a customer lab reports unpredictable results, we jump into sample retention archives, check analytical records, and, if necessary, run comparative syntheses to recreate any unexpected outcome. Instead of sitting content with a “meets spec” box-step, our teams look for practical ways to trim steps, cut waste, and pass on cost efficiency. This approach has allowed us to build long-term partnerships with repeat users, who know we answer questions quickly and transparently.

    Sourcing Responsible Raw Materials

    A well-made fine chemical doesn’t start in the reaction vessel. It begins with thoughtful sourcing. The global chemical supply chain has faced plenty of stressors, from changing trade routes to evolving regulations. We’ve seen it pay off to build close relationships with upstream suppliers, auditing their facilities in person when possible and testing every batch of benzoic acid for contaminants before it even enters our reactors. We sometimes encounter out-of-specification batches due to inconsistent upstream purification; spot checks and supplier technical audits ensure our own lines don’t grind to a halt.

    Because certain synthesis steps can release trace by-products, we continually test effluents and review post-reaction cleans. This vigilance has gradually won recognition from partners who value clean supply lines, especially those producing active pharmaceutical ingredients. We don’t claim perfection, but regular updates to our in-house workflows help move closer toward a minimal-impact process. The methylating agents we choose are those that have consistently given the lowest chance of chlorinated by-product carryover, simplifying post-process cleaning and reducing downtime.

    Making Research-Friendly Chemicals Accessible

    It’s clear that researchers want not just a chemical, but a partner who understands the real challenges behind the bench. Many of our customers use Methyl 2-(Methylamino)Benzoate in parallel synthesis, aiming to accelerate lead discovery work. We learned early that research teams want small packs quickly, with tightly defined specifications and clear analytical support. There’s value in being able to speak directly about each batch, providing spectra or extra QC data, so users can move forward with confidence rather than uncertainty.

    Years of feedback have shaped policy—we maintain a retained sample archive, provide batch-specific certificates, and, if quality or analytical concerns appear, engage in side-by-side investigations. This hands-on attention to detail means questions get resolved in days, not weeks. We encourage customers to share negative findings as readily as success stories: the more we know about failures or bottlenecks, the better our next production cycle goes. Building mutual trust speeds research and innovation on both sides.

    Supporting Sustainable Manufacturing Habits

    Environmental impact entered our decision-making gradually, not as a sudden policy shift but as a series of small changes in solvent recovery, waste reduction, and energy use. Over the years, replacing toxic or flammable solvents with greener alternatives has improved working conditions and reduced disposal costs. Careful temperature profiling in key reaction steps means less gas is required for heating, ultimately trimming both carbon output and utility bills—a small difference per batch, but a meaningful change at larger scale.

    Solvent recycling has cut raw material consumption by more than twenty percent, and we've focused on recovering methylating agents from process gas streams. The waste residue, once largely incinerated, now mostly enters an adjunct process, yielding value as a minor intermediate for our internal pilot plant. These small, persistent improvements earn respect from regulatory authorities and build goodwill with institutional partners who care about responsible stewardship of chemical resources.

    From our end, sustainable production means more than simply meeting compliance—it supports longevity for our business and the broader research ecosystem. We promote this ethos among our team members, encouraging suggestions and sharing information from other producers. The result has been smoother audits, reduced costs, and increased trust up and down the supply chain. A well-made molecule, delivered responsibly, supports innovation without passing hidden costs onto society or the environment.

    Practical Benefits for Pharmaceutical and Materials Science Applications

    Long experience supplying both established and emerging pharmaceutical teams teaches us where the real value lies. In developing new molecular scaffolds, researchers want derivatives that can survive multiple steps, tolerate common reagents, and provide a reliable starting platform. Our product’s methylamino group makes it a powerful coupling partner, allowing both electrophilic and nucleophilic modification—something not possible with standard methyl esters or simple benzoates.

    Material scientists increasingly look at this compound for its potential in creating fine-tuned coatings or dye intermediates. Experiments with condensation and cyclization highlight an advantage over other substituted benzoates. Unwanted hydrolysis, common with less stable esters or free acids, rarely hampers this compound’s performance—even after weeks in variable lab conditions. The shelf-stability and clear-cut reactivity help to minimize waste and false starts.

    Academic groups, particularly those investigating new medicinal scaffolds, rely on robust supply because projects rarely run to schedule. We offer flexibility in order sizes and batch splitting, which lets them adapt to shifting priorities without delays or excessive inventory holding. This partnership approach makes the bench-to-bedside journey a little smoother for both researchers and the patients who ultimately benefit from faster innovation.

    Responding to Evolving Needs with Real-World Solutions

    The only way to keep up with changing market and research needs is to maintain open lines of communication. As more teams pivot to automated, high-throughput screening, the requirements for dryness, particulate load, and spectral clarity have become much stricter. We modify our protocols where possible to meet these emerging standards. When partners shared challenges around automated dispensing and microreactor compatibility, we invested in further filtration and de-dusting steps, allowing better flow and fewer dosing errors.

    It's not enough to simply meet a purity figure: what matters is the consistency of performance. Repeatability across batches, traceability to original raw materials, and clear documentation all contribute to the reliability of synthetic work. To guarantee this, we keep process logs and track each lot from start to finish. This transparency pays off—users rarely face unexplained variability or mystery peaks on their chromatograms, which in turn supports the reproducibility that is so vital in modern science.

    Lessons from Years Spent on the Production Floor

    Managing production—day in and day out—teaches a manufacturer humility regarding the unpredictable nature of chemistry and logistics. Weather, upstream delays, or a minor equipment problem can cascade into big challenges. The routine of real-world manufacturing rarely matches ideal lab conditions, but it’s our job to deliver the closest possible match. Supply hiccups happen less with proper raw material vetting, adherence to rigorous maintenance schedules, and actual hands-on involvement through every step—from reaction charging to packaging.

    Over time, experience has taught us that thorough analytic review beats a “wait-and-see” attitude every time. If an impurity creeps in, our team reviews the full analytic spectrum, not just quick checks, comparing with last-quarter and year-over-year data. Open mistakes become learning opportunities, and regular sharing of those lessons among the production, QC, and sales teams builds stronger overall expertise. This means the next batch gets a little better, process tweaks become second nature, and our customers gain from fewer unknowns.

    Our practical culture of improvement continues to reward diligence. Once, a small batch ran hot due to unexpected exothermic reaction—this could have compromised purity, but early intervention kept the product well within spec. By documenting these interventions and discussing findings with both the on-site and remote teams, everyone learns and contributes to future prevention. This hands-on, real-world approach creates the foundation for reliability and ongoing improvement.

    Direct Support for Users: Beyond the Bottle

    Chemical supply goes further than simply shipping good material. We don’t see relationships ending once the drum or bottle leaves our warehouse. Every delivery includes not just the product, but also our ongoing support, insights, and willingness to troubleshoot as needed. Researchers sometimes reach out with puzzling results; our technical team dives in, studies the reaction logs, and compares procedures with those run on previous batches. This shared sense of purpose underpins better science and lower rates of wasted material.

    In the field, we see many creative uses for this compound that extend beyond published literature. Some groups use it as a model substrate for optimizing N-methylation conditions on other heterocycles, while others explore its behavior as a probe for new spectrometric methods. Our openness with data, production observations, and process notes often inspires unconventional methods or new research pathways. Serving as a sounding board for customers creates practical feedback channels that support continual progress.

    We believe in real partnership. This often means helping users interpret NMR spectra, troubleshoot side reactions, or optimize purification steps. Being the actual manufacturer puts us in a position to know the ins and outs of each step—so we can talk specifics, not just generalities. Our technical files keep track of subtle differences from batch to batch, giving research teams the confidence to plan and execute their experiments without unpleasant surprises.

    Looking Ahead: Future Opportunities and Continuing Commitment

    The world of fine chemicals moves fast, and new applications for established compounds like Methyl 2-(Methylamino)Benzoate keep emerging. We remain committed to deepening our understanding and improving at each step, always learning from user experience and lab feedback. Watching customers create new pharmaceutical candidates, diagnostics, or advanced coatings from our core product drives our team forward every day.

    Because we control the entire production chain, we have the ability—and the responsibility—to support research and industrial partners with consistency, transparency, and integrity. Our hands-on technical knowledge, openness to new methods, and responsiveness to field observations reflect the experience gained over years of focused manufacturing. Sharing real lessons, solving real problems, and producing reliable chemicals—it’s what we do best.