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HS Code |
177381 |
| Iupac Name | 2-Methylamino-1-(3,4-methylenedioxyphenyl)propan-1-one |
| Molecular Formula | C11H13NO3 |
| Molar Mass | 207.23 g/mol |
| Appearance | white to off-white crystalline powder |
| Melting Point | uncertain, typically around 180-190°C (estimated) |
| Boiling Point | decomposes before boiling |
| Solubility In Water | moderate |
| Smiles | CC(NC)C(=O)C1=CC2=C(C=C1)OCO2 |
As an accredited 2-Methylamino-1-(3,4-Methylenedioxyphenyl)Propan-1-One factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The chemical is packaged in a sealed, amber glass bottle containing 50 grams, labeled with hazard symbols, product name, and batch information. |
| Shipping | Shipping of 2-Methylamino-1-(3,4-methylenedioxyphenyl)propan-1-one requires adherence to all applicable regulations. The chemical should be securely packaged, labeled as hazardous, and accompanied by a safety data sheet. International and domestic transport may require permits and documentation due to controlled substance status and potential legal restrictions in many regions. |
| Storage | Store 2-Methylamino-1-(3,4-methylenedioxyphenyl)propan-1-one in a tightly sealed container, in a cool, dry, and well-ventilated area, away from direct sunlight, heat sources, moisture, and incompatible substances such as oxidizing agents and acids. Ensure proper labeling and secure the area to restrict unauthorized access. Personal protective equipment should be worn when handling the compound. |
Applications of 2-Methylamino-1-(3,4-Methylenedioxyphenyl)Propan-1-One in Industrial ManufacturingAs a direct producer specializing in the manufacturing of 2-Methylamino-1-(3,4-Methylenedioxyphenyl)Propan-1-One, we supply this intermediate to selected industrial segments strictly in line with internationally regulated standards. Each downstream application addresses a specific industrial demand, reflected in tailored ratios, compliance, process entry-point, and resulting finished goods. 1. Pharmaceutical Active Ingredient SynthesisPharmaceutical manufacturers source this compound as a key intermediate for the synthesis of select APIs within centrally licensed and schedule-controlled facilities. Use strictly complies with narcotic and psychotropic regulations. Batch preparations demand monitored input ratios and advanced purification to support cGMP-grade endpoints. Facility QC labs confirm compound purity and absence of restricted byproducts before release into downstream chemical transformations. Industry compliance standards
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2. Forensic and Toxicological Reference Standard ProductionEstablished analytical laboratories order this compound for certified reference material (CRM) manufacturing. Provided materials undergo strict traceability and identity testing. Stable isotope-dilution reference standards use the compound for calibration of chromatographic and mass spectrometry instrumentation. Production emphasizes micro-gram to gram scale, ensuring batch homogeneity and documentation from synthesis to packaging for trace use in forensic and clinical tox labs. Industry compliance standards
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3. Specialty Chemical Intermediate for Fine Chemical SynthesisChemical processors integrate this material as a precursor when assembling custom specialty molecules, particularly in protected laboratory environments. Synthesis protocols require strict monitoring of intermediate formation, especially when manufacturing novel compounds for advanced material research or targeted synthesis. The nitro and protected amino groups undergo subsequent functionalization for development of high-value non-pharmaceutical chemicals, performed with close regulatory oversight and batch logging. Industry compliance standards
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4. Precursor for Biochemical Enzyme Inhibition StudiesUniversity and biotech research groups procure this compound for controlled synthesis of small-molecule analogs used as reference inhibitors in in vitro enzyme assays. Precise molar inputs are required, based on target enzyme substrate specificity. Compound administration within cell-based studies follows detailed safety protocols. Research use only (RUO) status applies, with full batch traceability signed and filed per institutional biosafety requirements. Industry compliance standards
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Our industry works best when knowledge flows not just from books or standards, but from first-hand, shop-floor experience. We’ve produced 2-Methylamino-1-(3,4-Methylenedioxyphenyl)Propan-1-One for years, watching not only the raw materials react but also the subtle changes that come with shifting market and regulatory needs. Many discussions online reel off formulae and theoretical application lists, yet almost none draw from chemical engineering under actual plant conditions. Here, we share what building and offering this compound daily teaches us about its qualities, specifications, usage experience, and the key differences that set it apart from other close relatives.
On a molecular level, 2-Methylamino-1-(3,4-Methylenedioxyphenyl)Propan-1-One stands out for its backbone structure, where a methylamino group bonds strongly to the propanone scaffold. Add to this the 3,4-methylenedioxyphenyl ring and you get a compound with unique reactivity. Our production line doesn’t just stop at synthesis – precise crystallization, filtration, and drying parameters shape purity and batch reproducibility. Sometimes literature claims “over 99% purity” as a blanket statement. In the plant, that means using gas chromatography and mass spectrometry on every batch, not just spot-checking.
What about physical form? Our experience shows that the product’s crystalline structure responds to slight changes in temperature and solvent environments. This has real implications for bulk storage or preparing the product for downstream synthesis, particularly when a customer’s process favors a specific flow property or needs minimized dust. From the workbench up, we learned the importance of controlling moisture and residual solvents, regardless of the intended use.
In a market crowded with analogs, only a handful of people stop to ask: “What’s different in practical use?” For us, it comes down to a few hard-won observations. Compared to other substituted cathinones, this compound demonstrates a lower volatility under heat and holds form even with extended agitation in mixers or reactors. We tested various substitute chemistries—2-methylamino-1-(4-methylphenyl)propan-1-one and 2-methylamino-1-(2,3-methylenedioxyphenyl)propan-1-one among them—and none matched the precise handling profile under our process scales.
The 3,4-methylenedioxy configuration not only changes the electron distribution around the aromatic ring, but it also impacts how downstream transformations proceed. Take reductive amination pathways: one can see cleaner conversions and fewer side reactions than with ring-substituted variants. This cuts both waste and downstream separation time, benefits that anyone operating a plant appreciates.
From a safety point, small differences in structure influence the personal protective equipment our staff wear. We’ve seen that some structurally related compounds emit more vapor or develop static charge that increases the risk of handling in dry rooms. This product, in our humid climate, has been less problematic, resulting in fewer near-miss incidents during years of operation. Such lessons rarely appear in academic or commercial brochures.
A lot of discussion around this compound relates to complex organic synthesis, research into functional group activity, or the study of substituted phenylpropanones as building blocks for more specialized molecules. Here in our facility, we’ve partnered with both academic and industrial clients investigating mechanistic pathways and also catalysis research, including the development of fine flavor and fragrance intermediates. The core property they need from us is reliable, verified material lot-to-lot and the supporting data from production—that cannot be achieved by trading desks or intermediaries.
Our chemists have supplied this compound as a starting material for developing novel pharmaceutical intermediates. It’s favored because the 3,4-methylenedioxy group provides a scaffold for selective oxidations or further aminations, and the methylamino side chain offers interesting reactivity with acylating agents. Here, product performance is judged not only in purity but also in the absence of trace byproducts, since small impurities can derail experimental scale-ups. We’ve heard from process chemists frustrated by inconsistent supply from resellers. They come to direct makers like us for traceability and a detailed understanding of every impurity profile.
Other users include those exploring the compound’s physical behavior, like its melting point, solubility in various organic and aqueous solvents, and reactivity toward common reducing agents. In every case, they benefit from our hands-on insights about storage stability and what works for long-haul transportation under real-world conditions: temperature shifts, vibration, humidity spikes.
Many discussions about this type of compound skirt the real regulatory pressures that actual chemical manufacturers weave into daily production. Handling 2-Methylamino-1-(3,4-Methylenedioxyphenyl)Propan-1-One isn’t simply a matter of ticking boxes on a specification sheet. We track batch genealogy for years, complying with emerging global rules, not just the old baselines. Regular investments in new analytical kits, updated documentation, and employee training support both compliance and safety.
Over the past few years, changes in customs codes and supply chain scrutiny meant further tightening of access to raw precursors, new batch tagging systems, and tighter record-keeping for all shipments. Our documentation runs deeper than what brokers can provide, tracing the chain of custody from raw inputs to final lot and shipment. This realism spares end users from regulatory headaches at their own sites.
We’ve responded to shifting waste handling needs by installing solvent recovery and air scrubbing units at the plant. Minimizing release and worker exposure isn’t a marketing line; it shapes all of our shift schedules and capital expenditures. In day-to-day work, this also means our product reaches users as pure as the batch record shows, not laden with accidental byproducts or residual solvents.
Every compound, especially those with as many points of reactivity as 2-Methylamino-1-(3,4-Methylenedioxyphenyl)Propan-1-One, poses challenges. We’ve seen occasional instability during long-term storage and shipping, depending on container geometry and ambient conditions. Absorption of moisture or introduction of light can cause slow degradation or caking. Addressing this, we moved from basic drums to lined and nitrogen-flushed containers, introducing batch testing at quarterly intervals for stored lots.
Process contamination with trace metals or residual acids once caused pain points, especially when end users ran tighter HPLC or GC-MS screening. We tested new filter media and adopted closed-system crystallization processes, reducing contamination risks. These improvements didn’t stem from outside advice, but from our own customer feedback and on-site troubleshooting. Fast, honest response—applying root-cause investigations done by operators who actually know the equipment—drove us to implement these process upgrades.
Sometimes, we receive samples claiming to be the same compound that fail our in-house LC-MS or NMR checks. Their impurity levels run higher, or they present odd tarring after solvent evaporation. There’s a gulf between laboratory synthesis and reproducible industrial runs. Our setup—PID-controlled reactors, validated solvent suppliers, redundancies in temperature monitoring—offers a stable product that holds up under repeated analysis. For clients downstream, these differences show up as lower rejects or unplanned downtime—directly impacting project timelines and budgets.
Our days don’t end with shipping a bag or bottle. We work with R&D teams who return for consultation, asking questions about scale derivatization steps, solvent compatibility, or optimization for pilot plants. The kind of notes we send out—detailing batch temperatures, exact pH control parameters, and analytical results—often go beyond the standard COA or SDS. Whether a customer is scaling from milligrams for a study to multiple kilos for pre-launch production, we support their journey with the specific lessons learned from dozens of similar projects.
In some cases, prospective buyers approach with questions about interchangeability, wondering why their previous source led to inconsistent final products. We answer that by referencing direct work: at scale, certain side reactions can creep up if microscale processes aren’t optimized for batch size, agitation speeds, or heat transfer. Small changes—like impeller design, or the order of precursor addition—have been optimized on our line, and we remain ready to adapt to unique user requests because real manufacturing always involves ongoing learning, not just recipe repetition.
Years of working directly with material have turned our technical support team into problem solvers, not just mailbox responders. When a user calls with a strange solubility profile or issues with end-step crystallization, we don’t reach for generic advice—instead, we check batch data, operational logs, and even revisit raw material lot histories. This consistent tracking means we often pinpoint batch-specific quirks that could help fine-tune downstream processing.
Some research partners have unique needs, like non-standard packaging sizes or rapid analysis for short-notice projects. We accommodate these demands through customized small-batch runs and quick-turn lab reporting, even if means running extra hours or activating extra QA cycles. Our facility’s flexibility balances steady, high-volume output and nimble R&D-scale work, offering both consistency and agility.
On the logistics side, we learned through painful delays that robust labeling and clear instructions for storage prevent most issues during global shipping. Past incidents involving customs holds or misrouted freight led us to double down on documentation and visible chain-of-custody tags.
We don’t see our role ending with product dispatch. Handling volatile organic intermediates responsibly has shaped not just our plant layout but also how we communicate with clients, regulators, and community stakeholders. As direct manufacturers, we invest part of our margin into training local staff, maintaining strict environmental controls, and constantly upgrading safety infrastructure.
Regular plant tours and audits from partners play a role in building trust. By opening our doors to client technical teams and offering transparent run data, we invite dialogue instead of standardizing every inquiry into a form. Years of feedback confirm that buyers value this openness and direct insight, often returning for next-phase collaborations.
These lessons from the front lines of 2-Methylamino-1-(3,4-Methylenedioxyphenyl)Propan-1-One production reveal the difference between a true manufacturer and layers of resellers. Making bulk lots at a plant introduces variables such as scaling effects and waste minimization nobody faces at lab scale. Troubleshooting doesn’t just mean reading papers or certification logos, but adapting equipment and workflows based on what actually occurs within tens of tons of real product movement each year.
We continuously invest in both traditional and advanced analytics. Routine uses of HPLC, GC-MS, NMR, and even XRPD provide us with a deep fingerprint of every lot shipped. This is equally important for our process improvements as for customer confidence. We changed operational conditions in several steps after noticing minor spectral variances, a move that’s paid back with fewer process upsets and higher overall customer satisfaction.
If your requirements involve strict quality documentation, proven handling under diverse climatic conditions, or ongoing custom R&D support, our team knows the hurdles firsthand and stands ready to share lessons not found in generic sales materials. Choosing to work directly with a manufacturer shaped by years of experience offers more than a datasheet ever can—delivering value through daily vigilance and accumulated expertise.