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HS Code |
341315 |
| Product Name | N,N-Diacetoxyethylaniline |
| Iupac Name | 2-(N,N-diacetoxyethyl)aniline |
| Molecular Formula | C12H17NO4 |
| Molecular Weight | 239.27 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 324°C (approximate) |
| Density | 1.15 g/cm³ (approximate) |
| Solubility In Water | Slightly soluble |
| Cas Number | 3083-46-5 |
| Refractive Index | 1.527 (approximate) |
| Storage Conditions | Store in a cool, dry, well-ventilated area |
As an accredited N,N-Diacetoxyethylaniline factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250g of N,N-Diacetoxyethylaniline supplied in a sealed amber glass bottle, with tamper-evident cap and clearly labeled for laboratory use. |
| Shipping | N,N-Diacetoxyethylaniline should be shipped in tightly sealed containers, under cool, dry conditions, and protected from light and moisture. Ensure compliance with all local, national, and international regulations. Label the package appropriately with hazard information, and handle with care to avoid damage, leaks, or exposure during transit. |
| Storage | N,N-Diacetoxyethylaniline should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from sources of heat, ignition, and incompatible substances such as strong oxidizing agents. Protect from moisture and direct sunlight. Clearly label the container and keep it in a designated chemical storage cabinet. Always follow institutional and safety guidelines when handling and storing this chemical. |
Applications of N,N-Diacetoxyethylaniline in Industrial ManufacturingAs a specialized manufacturer of N,N-Diacetoxyethylaniline, we support a range of industries with reliable supply and consistent quality, providing customers with crucial intermediates for their demanding downstream processes. Our expertise guarantees compliance and performance aligned with the requirements of each sector described below. 1. Photoinitiators for UV-Curable Coatings and InksWithin the UV field-curing industry, N,N-Diacetoxyethylaniline serves as an essential amine co-initiator paired typically with benzophenone-based systems for photo-curable inks, coatings, and adhesives. Its function secures rapid and uniform cure rates across diverse substrates under ultraviolet light, which directly affects production throughput and end-use characteristics such as adhesion, gloss, and chemical resistance. Downstream formulators value its controlled amine activity, which helps balance cure depth and surface properties for both flexographic and offset printing applications. Industry compliance standards
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2. Synthesis of Specialty Dyes and Optical BrightenersN,N-Diacetoxyethylaniline is a critical intermediate in the production of specialty dyes and optical brighteners used in high-value textiles, paper, and plastic masterbatches. Our product’s acetoxyethyl substitution improves reactivity in condensation and coupling reactions, empowering dye manufacturers to achieve stable, high-purity output and targeted absorption characteristics. Integrators use it in multi-step processes to introduce precise chromophore groups with minimal byproduct contamination, which is essential for safety and color consistency across batches. Industry compliance standards
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3. Polymerization Accelerator in Thermoset ResinsSpecialists in thermoset resin systems utilize N,N-Diacetoxyethylaniline to accelerate free-radical polymerization in unsaturated polyesters and vinyl ester resins, optimizing cure characteristics during casting and molding. It helps achieve a balanced cure profile and reduces residual monomer content in the final composite, which in turn improves mechanical strength and lowers VOC emissions for demanding applications such as construction panels and automotive components. Industry compliance standards
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4. Stabilizer Intermediate for Color-Safe Bleaching AgentsIn specialty bleaching formulations, especially for textiles, N,N-Diacetoxyethylaniline acts as a building block for stabilizer molecules that control oxidative action. Its incorporation helps downstream formulators create bleach systems compatible with colored fabrics, preventing undesirable shade shifts or fiber degradation. The benefits include more predictable brightening performance for industrial laundries and garment processors. Industry compliance standards
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At our facility, every kilogram of N,N-Diacetoxyethylaniline reflects years spent refining the synthesis of specialty aniline derivatives. Instead of being simply another product, each batch demonstrates our dedication to reliable sourcing, process excellence, and conscience for downstream users who trust our precision. We know firsthand that, in this business, a shortcut today risks shelf life loss, fouling in customer reactions, or even regulatory trouble for our partners. That is why, for us, N,N-Diacetoxyethylaniline isn’t measured by purity data on a sheet—it is measured by how seamlessly it integrates into your downstream processes without surprises.
We manufacture N,N-Diacetoxyethylaniline under the model designation DAE-124, indicating its rigorous adherence to a specification profile selected after repeated feedback cycles from formulators and research labs. Drawing on continuous feedback, our plant operators adjust synthesis parameters to keep impurity profiles consistent and tight-lipped—especially important when customers report that variable side-products from other sources blunt yields or force extra purification steps. Our focus lands squarely on minimizing acetoxy hydrolysis alongside suppressing trace aromatic byproducts, factors that competing factories sometimes overlook as “acceptable” since the raw material remains below regulatory thresholds. Yet in practice, those “acceptable” levels can spike in complex reactions and sully expensive catalyst beds.
Our current lots of DAE-124 typically run at greater than 99% purity (GC area), with water content maintained through continuous monitoring and semi-automatic drying. The faintest tint outside clear pale-yellow signals us to reevaluate. There is no substitute for personally inspecting those drums, seeing with your own eyes, and smelling an absence of residual acid odor—small details that seldom survive remote purchasing but elevate reliability for complex syntheses.
The appreciation for N,N-Diacetoxyethylaniline starts at the laboratory bench, long before it reaches commercial-scale reactors. Chemists often reach out to us with stories related to their work in oxidative coupling, dye intermediates, and specialty resin modification. They point to our product’s dual acetoxy groups, which introduce controlled reactivity, making ethylaniline derivatives more approachable for advanced functionalization. A researcher once described using DAE-124 as “unlocking a second dimension” in their coupling route—an impression we never take lightly, since that reactivity can also spell trouble if there’s a slip in control, such as too much free acetic acid or excess residual solvents.
Our partners say that the well-balanced structure of N,N-Diacetoxyethylaniline supports effective and selective acylation—sometimes serving as a safer and cleaner alternative to direct aniline modification when sensitive moieties crowd the molecule. Some dye synthesis customers describe their reaction yields growing more robust thanks to our careful optimization of particle size and low residual metal content in every batch. Not every competitor is committed to minimizing catalyst poisons, and stories circulate in the industry about entire shipments falling apart after a single failed run traced back to “invisible” trace elements. Our plant teams treat these lessons as daily reminders that the small details can shift millions of dollars up or down the value chain.
Many users ask: why not source DAE from any available vendor, given that suppliers routinely advertise high purity? The difference, we have learned through our own audits, lies in the unseen gaps—residual acidity, overlooked coloration, and the stability profile over time. Sourcing agents bringing in drums from brokers routinely face complaints from their technical teams about fibrosis in stored product, especially when humidity sneaks past poorly sealed containers. Because we handle every step—from acetylation to packaging—within a tightly controlled facility, cross-contamination risks vanish, and customers report fewer episodes of premature caking or degradation.
We keep documentation open for technical teams who want more than a COA. If our DAE-124 varies by more than a tenth of a percent from prior lots in their critical analyses, we want to know and correct fast. That attitude, we have seen, stands in contrast to generic market product: resellers often mix lots or fail to trace back to a precise production date, and queries about minor impurities get lost in a chain of phone calls. The direct line between our operators and your technical experts shortens troubleshooting and plugs risk. We believe that no spec sheet proves as helpful as a real-world record of consistent performance across multiple projects.
Anyone who has stored acetoxy derivatives knows about their finicky storage requirements. Most traders talk in terms of shelf-life based on unstressed storage. Our experience with logistics tells a deeper story: climate extremes during shipping or warehouse mishandling can crush product integrity before it ever reaches a reactor. That’s why our teams use double sealing, monitored shipment, and forensic review of packaging performance after every climatic event. Our goal isn’t simply to get product onto a dock, but for it to arrive in the same blameless state as it left our quality hold.
Operators vent real frustrations about drum pumps gumming up from crystallized byproduct. Early in our operation, we lost days of production to clogged valves until we shifted to lined barrels and accelerated the product transfer process. Any lessons learned in our own logistics go directly to our partners through technical bulletins—like using nitrogen blankets during transfer, which sharply cuts down oxidative decomposition.
We encourage customers to report every deviation they see, even ones that seem trivial. The best process improvements often come from on-the-ground feedback—like noticing a shift in viscosity before discoloration appears, allowing us to tighten control around a parameter that basic QC might miss. Problems don’t resolve themselves. One missed storage alarm in a hot warehouse can unravel the value of an otherwise flawless production campaign, so we keep lines of communication open at all hours.
The chemical marketplace endures endless waves of regulatory change. Regional differences on allowable trace elements, new solvent restrictions, and changes in permissible impurity levels challenge even the most careful producers. As manufacturers, we do not rely on up-to-date data sheets alone—we observe the pace of regulatory evolution through trade association meetings, direct dialogue with environmental and safety agencies, and case studies from our European and North American partners. We adapt every facet—from reagent sourcing to water testing—based on these learnings, not just benchmark specs.
Market and research partners often approach us with candid stories about slight regulatory misalignments causing stoppages or even recalls, especially when import brokers fail to validate changes in spec. In one case, a minor shift in permitted hydrocarbon content in an Asian market left two downstream producers unable to distribute finished product, simply because their imported DAE couldn’t be traced to a tightly controlled lot. This feedback shapes our delivery documentation, making full traceability the norm rather than an afterthought. As a direct manufacturer, we track our batches from reactor to sealed container—never blending, never re-labeling from prior unsold stock.
We also address market concerns related to sustainability. Several of our largest customers asked about our efforts to minimize solvent waste and energy use, and we have since installed multiple solvent recovery streams and optimized our reaction runs to reduce energy demands. We openly share waste profiles and invite auditing teams to walk our shop floor, knowing that transparency and improvement win trust more reliably than any “green” marketing alone.
Years of work with innovators in the pharmaceutical, photographic, and colorant industries have taught us that the gulf between lab process and commercial batch can hide critical pitfalls. Scaling up N,N-Diacetoxyethylaniline reactions reveals bottlenecks you do not spot in small-scale syntheses: temperature gradients, local pH shifts, and the sudden appearance of seemingly negligible trace byproducts.
Customers planning process intensification often work hand-in-glove with our team through their pilot campaigns. In one instance, a process chemist using our DAE-124 found their oxidative coupling step threw off more acid than expected as the batch scaled, risking runaway impurity buildup. Our technical staff, familiar with the nuances of acyl transfer reactions, coached on adjusting feeding rates and post-reaction washing, trimming reaction byproduct by nearly thirty percent. These exchanges do not stay locked in a notebook—we feed back hard-won insights from every partner, and tweak our process parameters accordingly.
This street-level understanding also changes how we package and ship. A long-haul export shipment to a tropical region triggered condensation inside standard steel drums, starting a slow hydrolysis. We now constantly monitor shipment data loggers, reviewing exposure histories, and recalibrate packaging on a per-season basis. As a result, downstream users report fewer quality complaints and greater confidence through the manufacturing chain.
We measure our track record not only in metric tons shipped, but in the time our customers stay with us and the detail of their communication. Some of our oldest partners still remember their first kilogram sample, sent on a handshake agreement to prove our consistency. That trust, built batch by batch, results in a feedback loop that improves our control on batch variability. We approach every customer inquiry as an opportunity to learn—sometimes a minor problem surfaces a broader opportunity to tweak process chemistry or packaging that leaves a mark across dozens of companies.
Lab managers who have switched to DAE-124 from alternative sources often share how their teams spend less time running secondary analyses for edge-case impurities. We take those experiences as signals to strengthen our own QC checkpoints, revisiting instrumental calibration and operator training with real-world examples. Our commitment extends beyond paperwork; if a partner identifies unanticipated reactivity, we replicate their reaction and gather fresh data, submitting improvements in person rather than by email chain.
Bringing DAE-124 from raw feed to finished product keeps us in touch with every variable affecting the end results. Compared with trader-sourced resins or intermediates, our direct model narrows the gap between feedback and correction, eliminating the unknowns that crop up in product moved between brokers and distribution warehouses. Traceability gains new importance amid today’s complex regulatory and logistical web. For us, accountability isn’t a marketing sticker—quality lives or dies with our own hands.
We have grown comfortable with the idea that every complaint offers a hidden improvement, and every success is learned by closing the loop between our plant and your application. The story of N,N-Diacetoxyethylaniline is written every day through partnership, invention, and a willingness to see mistakes as the prelude to improvement—not as failure. The more directly we listen to on-the-ground chemists and process engineers, the sharper our performance and adaptability for future challenges.
N,N-Diacetoxyethylaniline, in our hands, represents more than a catalog entry or a bulk commodity. It is the sum of engineering corrections, lessons from past shipping hiccups, collaborations with innovators, and daily attention paid by our batch operators. Approaching each issue that arises—from an operator flagging a change in odor to a partner describing an unanticipated batch reaction—broadens our expertise and drives the hearts of future products in our line. By holding process consistency, clarity in documentation, and technical partnership above pure volume, we keep faith with the people who build the world’s next breakthroughs from our intermediates.
Demand for N,N-Diacetoxyethylaniline shows no sign of dormancy. As customers move to higher-regulation markets and design increasingly complex chemistries, our approach evolves. We routinely update production workflows, revalidate supply chains, and invest in training for both operators and technical support, staying ahead of both compliance and performance requirements. Every success story from our partners becomes a point of pride on our shop floor—proof that the path from raw precursor to finished molecule winds through commitment and the willingness to learn out loud, never behind closed doors.
N,N-Diacetoxyethylaniline has taught us as much as it has served our customers, reminding us every day that a chemical is only as effective as the people who produce, test, and stand behind it. Our doors remain open to dialogue, technical cooperation, and the ongoing improvement that keeps the best companies out in front, batch after batch, year after year.