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HS Code |
161757 |
| Cas Number | 2140-02-7 |
| Molecular Formula | C11H14O4 |
| Molecular Weight | 210.23 g/mol |
| Iupac Name | 1-(3,4,5-Trimethoxyphenyl)ethan-1-one |
| Appearance | White to off-white crystalline powder |
| Melting Point | 72-75 °C |
| Boiling Point | 177-178 °C at 16 mmHg |
| Density | 1.15 g/cm³ |
| Solubility | Slightly soluble in water, soluble in ethanol and ether |
| Smiles | COC1=CC(=CC(=C1OC)OC)C(=O)C |
| Refractive Index | 1.532 |
| Pubchem Cid | 352473 |
As an accredited 3',4',5'-Trimethoxyacetophenone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The chemical `3',4',5'-Trimethoxyacetophenone` is packaged in a sealed 25-gram amber glass bottle with a secure screw cap. |
| Shipping | 3',4',5'-Trimethoxyacetophenone is shipped in tightly sealed containers to prevent moisture entry and contamination. It should be kept in a cool, dry, and well-ventilated area, away from incompatible substances. All packaging is clearly labeled, and transport complies with chemical safety regulations to ensure safe delivery. |
| Storage | 3',4',5'-Trimethoxyacetophenone should be stored in a tightly closed container in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers. Avoid exposure to direct sunlight and moisture. Ensure proper labeling, and store at room temperature. Follow all applicable safety guidelines for handling and storage of organic chemicals. |
Applications of 3',4',5'-Trimethoxyacetophenone in Industrial Manufacturing3',4',5'-Trimethoxyacetophenone serves as a pivotal intermediate for various industrial sectors, particularly in specialty chemicals, pharmaceuticals, and fine organic synthesis. As a direct manufacturer, we produce this compound to stringent quality benchmarks, ensuring its suitability in demanding downstream production environments. Below are the most common and technically grounded application scenarios with detailed process-oriented information for industrial customers. 1. Pharmaceutical Intermediate for API SynthesisPharmaceutical manufacturers use 3',4',5'-Trimethoxyacetophenone as a key building block in synthesizing several active pharmaceutical ingredients, especially in the development of certain antihypertensive and anti-inflammatory drugs. The compound enters the synthetic route during early-stage aromatic acylation steps, supporting the construction of complex molecular frameworks required for patented small-molecule drugs. Industry compliance standards
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2. Intermediate for Agrochemical Synthesis (Herbicides & Plant Growth Regulators)Agrochemical formulators adopt 3',4',5'-Trimethoxyacetophenone as a precursor for the manufacture of selected herbicide and plant growth regulator actives, especially those utilizing methoxyphenyl-acetyl substructures. Industrial integration focuses on precision control of side-reaction by-products to fulfill regulatory maximum residue standards. Industry compliance standards
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3. Synthesis of Fragrance and Flavor IntermediatesThe fine fragrance and flavor industry incorporates 3',4',5'-Trimethoxyacetophenone as an intermediate to derive specialty aromatic ethers and esters with nuanced olfactory notes. Chemical engineers manage formulation ratios tightly to optimize odor intensity and functional performance in end-use accords, especially for complex flavoring bases and niche perfumery notes. Industry compliance standards
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4. Functional Additive in Polymer ModificationPolymer modifiers integrate 3',4',5'-Trimethoxyacetophenone as a reactive additive to modify polymer backbone properties in specialty plastics and engineering materials. The methoxy substituents facilitate targeted copolymerization, enhancing flexibility, UV resistance, and processability in technical grade resin production. Industry compliance standards
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5. Fine Chemical Intermediate for Dye and Pigment SynthesisSpecialty dye and pigment manufacturers rely on 3',4',5'-Trimethoxyacetophenone as an intermediate in synthesizing high-purity methoxy-containing chromophores. Tight specification control ensures residual trace impurities remain below detection limits, supporting clean color development and high reproducibility in textile or specialty ink applications. Industry compliance standards
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3',4',5'-Trimethoxyacetophenone represents a niche but critical intermediate in several fine chemical synthesis pathways. We have been producing this compound for years, and its role in various downstream processes stands out in our daily operations. With a molecular formula of C11H14O4 and a precise melting point, this aromatic ketone boasts three methoxy groups on the benzene ring, lending distinct reactivity and stability. The compound’s white crystalline form and reliable purity level—routinely checked at 98% or higher in our QC labs—ensure that every shipment fits the benchmarks researchers and formulators need for demanding applications.
Day after day, the quality of our 3',4',5'-Trimethoxyacetophenone ties directly to the consistency in each stage of our batch process. We monitor reaction temperature and stoichiometry with a hands-on approach. Every flask, batch vessel, and filtration unit gets meticulous care. It’s not just a question of hitting lab targets—on our factory floor, we see firsthand how moisture, air exposure, and packaging choices change the stability and lifespan of this compound.
We sample each production lot throughout the process, not only at the end. This helps us catch any early drift in purity, color, or solubility, addressing potential issues before a product leaves our facility. In spectroscopic analyses, we scan for extraneous signals or peaks that might hint at byproducts, even those below the visible threshold—a habit learned from a few costly lessons early in our operations.
Technicians and formulation chemists trust that every kilogram arriving from our site upholds a clear color, sharp melting point, and a solubility profile that doesn’t throw off downstream extraction or purification. The consistency arises from tight controls. Strict drying ensures water content stays well below 0.5%. Over the years, we fine-tuned our crystallization method to reduce dustiness and avoid unwanted polymorphs. Each specification follows real-world concerns: how quickly it dissolves in ethanol, whether particulate impurities appear after sitting on a shelf for months, and—crucially—how easily one can filter or redissolve the compound during scaling up or reformulating.
A few decades ago, we dealt with unreliable supplies for some precursors. That uncertainty pushed us to secure multiple upstream sources and test incoming raw materials just as rigorously as we test our own finished product. We built special drying and storage provisions to avoid seasonal humidity affecting our trimethoxyacetophenone lots. Failures in those early days still shape the way we approach testing and specification development now.
Our 3',4',5'-Trimethoxyacetophenone moves primarily into pharma R&D pipelines and specialty chemical synthesis. Researchers favor it for introducing specific methoxy patterns onto more complex molecules. It serves as a treasured intermediate for certain APIs in clinical trials, where the position and integrity of its methoxy groups influence downstream biological activity.
In practice, a minor change in impurity levels or physical form can complicate pilot runs. Having spent years working closely with clients, we know firsthand how tricky late-stage synthesis can get. Many of our customers rely on our compound for reactions where little room exists for error—whether in Friedel-Crafts acylation, dazzling oxidative couplings, or specific esterifications. Batch-to-batch reproducibility isn’t a luxury; for our partners, it’s a lifeline throughout process optimization and scale-up.
Aromatic acetophenones with various methoxy substitutions come up together in the catalog. Our compound’s unique triple methoxy positions confer a different steric and electronic environment than 2',4',5' or 3',5',6' analogs. Over countless syntheses, we have observed that reactions using 3',4',5'-Trimethoxyacetophenone yield higher selectivity in certain pathways, avoiding side products that crop up with other isomers. Downstream, this reduces waste and the number of purification cycles, saving both time and reagents.
From a physical perspective, the melting point offers clues to differences in lattice energy and crystallinity. Storage conditions—such as temperature and humidity tolerance—also reflect these subtleties. Our packaging approach for this variant differs from the handling of 3',5'-dimethoxyacetophenone because it clumps less and resists caking. Handling characteristics might sound minor, but as manufacturing veterans, we know the headaches that a sticky or unevenly sized lot can cause an operator or automation line. Consistent free-flowing product, with limited static build-up, saves hours of labor in packaging and transfer.
Our team fields requests from pharmaceutical labs exploring new anti-inflammatory drug leads and specialty fragrance companies chasing novel aromatic aldehydes. One memorable instance involved supporting a major agrochemical researcher, where subtle changes in the methoxy-group orientation brought marked improvement in intermediate crop yield, letting the scientist skip an entire column chromatography step. Small differences here cut costs and complexity there, and both sides drew clear benefits.
Not all customers use trimethoxyacetophenone in grand-scale synthesis. We have supplied it to academic groups doing structure-activity relationship studies or probing novel photochemical reactions. Over the years, a few artists and artisans with unconventional projects—such as dye manufacturing—have also reached out. Each story reveals fresh angles to an old intermediate, and listening to these challenges and successes shapes how we approach future product improvements.
Reliable manufacturing depends on diligent housekeeping, consistent raw sourcing, and crystal-clear communication with customers. Moisture can spoil a batch, and cross-contamination diminishes trust. Over multiple production cycles, we refined a few strategies:
From experience, preventive controls save time and money in the long run. Labs and plants benefit from fast, honest feedback on shipment quality or unexpected issues. We prefer direct calls and frank conversations—the kind that replace paper forms and email chains with actionable fixes. These habits come from a mix of technical know-how and a mindset gained from dealing with actual failures, not just running through checklists.
As a manufacturer, trust isn’t built by formal certifications or polished websites. Clients value detailed, real-world insights: direct chromatograms, precise NMR printouts, and historical performance logs covering more than just the last lot. Our internal records reference past successes and missteps, including where a minor impurity, overlooked at first, led to yield loss or side reactions at a customer site. Rather than glossing over issues, we communicate candidly about what changed, why, and how it benefits future batches. Teams send photos, graphs, and actual residue samples when needed—not just certificates or marketing blurbs.
Projects rarely proceed exactly as planned. During process transfer or scale-up, unforeseen issues—solubility shifts, minor color changes, or changes in reactivity—can throw off entire schedules. Our R&D staff keep lines open for urgent troubleshooting, offering onsite visits or remote technical support, sometimes at unusual hours. After shipping a batch, we gather client feedback, request reaction yields, color notes, or even samples of reaction mixtures. These samples complete the feedback loop, helping us refine each future batch to better fit customer reality.
Recent years brought even greater demand for reproducibility in pharmaceutical development. Regulatory requirements for impurity profiling get stricter every season. We empower labs by providing detailed spectral libraries and impurity profiles for every lot, with full supplier chain traceability. Through repeated, documented conversations, we aim to make the customer’s problem-solving process faster, more predictable, and less risky.
Regulatory shifts in the last decade impacted sourcing, solvent handling, and allowed water content. Countries gradually tightened standards on certain solvents, demanding cleaner final product and more extensive batch records. Environmental controls—air emission capture, waste solvent recycling, tighter limits on residual solvents—changed daily practice in our plant. Old habits, like single-step filtration or informal logs, gave way to digital record-keeping and multi-stage purification to meet both local and international regulations.
We follow ICH and local GMP guidelines, not only because clients expect it, but because internal returns support the investment. By anticipating new impurity concerns, we can preempt many future customer complaints or recalls. Our teams brainstorm how each tweak in process chemistry affects downstream waste, effluent profiles, and batch-to-batch reproducibility, always balancing regulatory compliance with on-the-ground efficiency.
Years back, routine processes produced more waste and required more solvent than today’s approach. Through process intensification and equipment upgrades, our solvent recycling rate improved, and we source more biodegradable options. Every adjustment—whether moving to closed filtration or heat integration—pays off in the longer lifecycle costs of our plants.
On the energy side, we renovated cooling and heating units, installed precise temperature control automation, and replaced outdated stirrers and pumps. These changes cut waste and reduced downtime after maintenance. Operators report smoother runs and fewer batch failures, and the plant’s environmental fingerprint shrinks year by year. These efforts go mostly unseen by end users but shape the quality, reliability, and future viability of products like 3',4',5'-Trimethoxyacetophenone.
Manufacturing 3',4',5'-Trimethoxyacetophenone—like any fine chemical—means living with both predictability and surprise. Equipment breakdowns, unexpected impurity patterns, or customer requests for ultra-pure variants prompt ongoing process review and adaptation. New analytical tools, better drying or screening options, and hands-on technical support set our output apart from mass-produced commodity lots.
Listening to customers and acting on honest feedback remains invaluable. Pharmaceuticals, fine chemicals, and research projects each bring unique constraints, and only by absorbing experiences from all corners of the industry have we been able to raise our standards and the satisfaction of our partners. Each interaction uncovers new knowledge and highlights aspects of manufacturing that generic specifications rarely capture.
We stay focused on ongoing process refinement, staff training, and close technical relationships with our clients. Our years of manufacturing 3',4',5'-Trimethoxyacetophenone taught us that real value comes from transparent communication, rigorous testing, and an openness to continuous improvement. The lessons we’ve gained—down to vapor pressure quirks or shelf life under tropical conditions—build trust and shape stronger, safer chemical supply chains worldwide.
Trends in pharmaceutical discovery and specialty chemical research will always demand higher purity, greater consistency, and improved documentation. Our team stands ready to adapt old methods and pursue new ones, all in the pursuit of reliable, high-quality 3',4',5'-Trimethoxyacetophenone, produced with an eye on the practical realities of every customer, application, and market.