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HS Code |
572705 |
| Productname | 4-[2-(Dimethylamino)Ethoxy]Benzylamine |
| Molecularformula | C11H18N2O |
| Molecularweight | 194.27 g/mol |
| Casnumber | 114328-08-4 |
| Appearance | Colorless to pale yellow liquid |
| Solubility | Soluble in organic solvents such as ethanol, DMSO |
| Purity | Typically ≥98% |
| Synonyms | 4-(2-(Dimethylamino)ethoxy)benzylamine |
| Structure | Benzylamine substituted at the para position with a 2-(dimethylamino)ethoxy group |
| Smiles | CN(C)CCOC1=CC=C(C=C1)CN |
| Inchi | InChI=1S/C11H18N2O/c1-13(2)7-8-14-11-5-3-10(4-6-11)9-12/h3-6H,7-9,12H2,1-2H3 |
As an accredited 4-[2-(Dimethylamino)Ethoxy]Benzylamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The 10g quantity of 4-[2-(Dimethylamino)ethoxy]benzylamine is supplied in a sealed amber glass bottle with a tamper-evident cap. |
| Shipping | 4-[2-(Dimethylamino)ethoxy]benzylamine is shipped in tightly sealed containers, protected from light, moisture, and incompatible substances. Packaging complies with regulations for handling amines, including labeling and documentation. Typically transported at ambient temperature, with special care to prevent leaks or spills. Refer to the product's SDS for detailed transport and safety guidelines. |
| Storage | 4-[2-(Dimethylamino)ethoxy]benzylamine should be stored in a tightly closed container, away from light, heat, and moisture. Keep it in a cool, dry, well-ventilated area, ideally under an inert atmosphere like nitrogen. Store separately from oxidizers, acids, and incompatible materials. Label the container clearly, and restrict access to trained personnel. Follow all chemical storage regulations and safety protocols. |
Applications of 4-[2-(Dimethylamino)Ethoxy]Benzylamine in Industrial Manufacturing4-[2-(Dimethylamino)Ethoxy]Benzylamine sees consistent demand across several specialized manufacturing sectors, owing to its tailored performance in pharmaceutical intermediates, API synthesis, fine chemical production, advanced polymer modification, and agrochemical actives. As the direct manufacturer, we supply this amine primarily to downstream parties who integrate it into established workflows under rigorous compliance protocols. 1. Pharmaceutical Intermediate SynthesisWithin pharmaceutical manufacture, this compound is a key building block for the synthesis of selective central nervous system (CNS) active agents and anti-cancer drugs, owing to its dual functional groups that facilitate complex coupling reactions. Downstream users typically incorporate it in the late-stage intermediates of API development, where reaction specificity and purity requirements are demanding. Industry compliance standards
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2. Fine Chemicals: Specialty Dye PrecursorsAs a precursor in the manufacture of high-value dye intermediates, particularly those used in laser, OLED, and medical imaging applications, this material contributes its amine-ether functionality to achieve stable chromophores and enhanced lightfastness. Fine chemical firms rely on its reactivity profile for precision molecular design in high-performance colorants. Industry compliance standards
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3. Advanced Polymers: Functional Chain ModificationIn advanced polymer manufacturing, this amine enables the grafting of functional groups onto polyether or polyurethane backbones. Specialty plastics and coatings producers leverage it for tailored surface characteristics, anti-static properties, and chemical resistance enhancements, especially in electronics and automotive applications. Industry compliance standards
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4. Agrochemical Actives: Selective Herbicide SynthesisProducers of selective post-emergence herbicides employ this chemical as a backbone for amine-based active ingredients, exploiting its high reactivity to create compounds with improved systemic activity and environmental degradability. The material's unique structural elements offer tight control over final molecular properties. Industry compliance standards
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Our time in the lab often starts long before sunrise, and in those quiet early hours, few compounds have sparked as much steady excitement among our team as 4-[2-(Dimethylamino)Ethoxy]Benzylamine. Over the years, we’ve watched research demands shift, development teams cycle through hundreds of molecule requests, and still this compound keeps showing up on the order sheets of innovators working in both public and private sectors. Reactions seem to favor this amine for its clever combination of structure and functionality. Whether it’s the benzyl group or the dimethylamino moiety leading the charge, its performance continues to capture the attention of chemists who care about practical results, not just theoretical possibilities.
Manufacturing 4-[2-(Dimethylamino)Ethoxy]Benzylamine takes precision. The smallest slip in stoichiometry, a minor drift in reaction temperature, or a passing impurity in a precursor sets off a cascade of complications. From synthesis to the final purification, our process keeps a tight focus on reproducibility and batch consistency. Decades of hands-on lab experience have taught us which steps require extra attention, and we’ve refined our methods so our product fits modern application standards. No production line rushes this chemistry, because using less-than-pure input never yields the performance that skilled end-users expect.
Behind the CAS number lie a set of physical and chemical benchmarks that our internal teams follow—purity typically beyond 98%, strict controls on moisture, and a target for residual solvents that most customers would call overachieving. Every drum, bottle, or can provides a consistent reaction result. Reports from clients in pharmaceutical R&D and advanced specialty chemical production corroborate that their syntheses do not behave as expected with lower-quality material. In our experience, it’s purity and clean evaporation that seem to drive the value of this compound. If a residue remains after solvent removal or a batch goes rancid faster than predicted, the issue can almost always be tracked to a supplier that cut corners on those unseen details.
With a broad background supporting innovators, we see the practical difference that 4-[2-(Dimethylamino)Ethoxy]Benzylamine can make. Its molecular structure opens up options where other amines falter. In medicinal chemistry, for example, the compound offers a scaffold for designing new candidate drug molecules where metabolic stability plays a critical role. The ethoxy linkage provides desired solubility, and the benzylamine portion gives flexibility in conjugation strategies. Some labs working on small-molecule pharmaceuticals leverage the dimethylamino group for basicity and ionic interactions, driving up activity or improving selectivity in target assays. The feedback we hear comes from project leaders who want a reliable intermediate, one that doesn’t throw unexpected curveballs during crucial late-stage syntheses.
This chemical isn’t just another item in a catalog. Its usability stands out for two main reasons: reliability of response in organic synthesis and compatibility with demanding reaction environments. Our experience lies in supporting chemists through scale-up, pilot runs, and the inevitable troubleshooting that comes with pushing new applications. In peptide conjugation work, handling amines often brings headaches because of lingering impurities or reactive byproducts. Years of feedback from production chemists tell us that our process minimizes these nuisance factors. The final product dissolves smoothly and reacts predictably, which saves resource and prevents surprises at the reaction flask.
Customers often ask why not generic benzylamines or straightforward dimethylaminoethanol derivatives in certain projects. We share what matters: 4-[2-(Dimethylamino)Ethoxy]Benzylamine doesn’t just combine old ideas; it fills gaps. The inclusion of both the benzylamine and dimethylaminoethoxy motifs in one molecule results in unique reactivity. As a manufacturer, we run side-by-side comparisons using analogues like 4-hydroxybenzylamine or 2-dimethylaminoethanol, and observe clear differences in phase transfer behavior, solubility in organic systems, and in chemical transformations like alkylation, acylation, or conjugation to biomolecules.
In practice, researchers working in specialty polymers or custom resins build on its dual functionality. The structure allows both anchoring to aromatic frameworks and introduction of basic centers—a combination not present in single-function amines. Researchers engaged in advanced dye chemistry, molecular sensor construction, and pharmaceutical intermediate manufacture routinely trade up from cheaper starting materials to this compound once they confront the limits of single-function reagents. In our test batches, product yield and functional group tolerance improve noticeably when projects step up to this grade.
It’s easy to compile a list of theoretical applications, but only field reports show how this compound actually performs outside the manufacturing plant. In the past two years, several pharmaceutical groups told us they chose this amine when developing new small-molecule therapies targeting CNS disorders. The dimethylamino group plays a key role in modulating blood-brain barrier permeability, supporting medicinal chemistry programs aiming for higher central activity. Specialists in diagnostic chemistry used the compound in site-directed labeling of antibodies, emphasizing the clean attachment and minimal byproduct formation in mixed aqueous-organic phases.
Polymer additive manufacturers come back to us for more, reporting improved dispersion and crosslinking in resin systems. Feedback from specialty pigment formulators highlighted improved compatibility of the amine with hydrophobic dye bases, leading to stronger, longer-lasting products. These comments underscore why we stick to tight manufacturing tolerances—no shortcuts, no batch-to-batch drift.
Updating process controls isn’t just a response to regulatory changes. As a chemical manufacturer with decades in business, we’ve learned that vigilance saves both supplier and customer headaches. Early investment in high purity and strict lot traceability wasn’t a marketing tactic, but a practical answer to repeated customer experiences with competitors offering lower price points and disappointing consistency. Out-of-spec product introduces impurities into high-stakes chemistry, especially in pharma or diagnostic projects where downstream purification slows down entire timelines.
Our analytical lab checks for more than the standard panel of expected contaminants. Team members don’t just look for what might be wrong—they compare against internal reference batches developed over years of feedback from advanced users. In production, we check not only for purity but also for absence of colored residues, unexpected low-mass byproducts, or over-basic solutions that hint at side reactions. Send a flask of subpar amine to a synthetic chemist running late-stage modifications, and you’ll get plenty of phone calls—often angry ones. It takes time, but a disciplined approach to quality keeps those calls rare.
Discussions with our long-term clients point to an overarching theme: most R&D teams want to minimize risk during synthesis, not gamble on a new supplier’s claims. These groups have their own QA, their own analytical labs, and an internal resistance to surprises. By delivering beyond the expected minimum, we reduce rework, delays, and even unplanned project shutdowns. In the field, the few who’ve tried low-cost imitations often return to established makers for their next shipment—usually after running into issues with solubility, reactivity, or chemical compatibility that the catalog never mentioned.
Our staff maintains a library of actual experimental outcomes associated with every batch and model iteration, reinforcing the cycle of process improvements driven not by abstract theory but by the needs of chemists and engineers at the bench. If something doesn’t look or perform right in scale-up, we don’t wait for complaints. Many production chemists are surprised to find that we’ll reach out directly, sharing comparative test results to help streamline their projects. This hands-on support stands out in contrast to third parties or passive resellers, many of whom never see the inside of a reaction vessel.
Customers challenge us every day to help solve problems that can’t be answered by a chemical supply catalog. Sometimes, the answer lies in a tweak to reaction conditions; other times, it’s a different grade or packaging option. Over time, we’ve seen that clear communication between lab and factory often makes all the difference on a tight R&D timeline. Our technical team, made up of seasoned chemists and process engineers, fields questions not just about specifications, but about use-case adjustment, possible side reactions, and scalability. The value we bring is not only in the product, but in the practical expertise welded to every batch.
Process improvements, troubleshooting guides, and even education on safe handling practices come directly from the real stories of partners pushing the boundaries of their industries. In specialty chemical manufacture, experience shows that meeting bulk requirements is just the start—sustaining quality, offering practical advice, and backing products with deep chemical know-how is what forges long-term collaborations.
Shifts in demand often signal bigger changes in research, regulation, or applied technology. We’ve watched trends move from mass-produced, commoditized chemicals toward specialized, high-purity intermediates designed for complex multi-step reactions. Our investment in flexible equipment and updated analytical methods began years ago as a direct response to these customer signals. Sometimes that means custom packaging to maintain product stability over transoceanic transit; other times it involves real-time technical support for sudden pilot or scale-up runs.
Real adaptability comes from cultivating a culture where plant operators, QA lab techs, and customer support staff talk daily. We collect and act on field data—shelf life surprises, packaging wear, unexpected side product formation—and incorporate improvements not just into our process, but directly into the deliveries leaving our facility every week.
The customers who stick with us most often cite responsiveness—not just in disaster situations, but throughout the long, quiet routine of day-to-day collaboration. Whether an order is a single gram or a production-scale drum, we track lots by both manufacturing and field performance. We encourage feedback from clients both satisfied and critical, since only real use exposes the subtle variables that lab data alone can’t reveal.
Challenges faced in producing, storing, and delivering a nuanced amine like 4-[2-(Dimethylamino)Ethoxy]Benzylamine rarely mirror textbook scenarios. Moisture control, for example, sounds simple on paper but becomes an engineering challenge in a high-humidity summer. Storage stability during long warehouse periods or rough transit calls for packaging that prevents atmospheric contamination without adding bulk or cost. Every year, our team reviews and upgrades containment strategies, swapping out liners, evaluating drum seals, and revisiting secondary containment protocols based on real shipment outcomes, not just regulatory guidance.
Trace impurities, especially low-level amines or residual solvents, affect sensitive chemistry in ways that only become clear after multiple production cycles. Early on, we invested in multi-point mass spec and HPLC screening, following up on outlier batches with root cause analysis rather than quick-fix patching. This approach spares our customers the cascading failures caused by marginal product, and lets us guarantee results not just on paper, but in actual industrial settings.
For R&D leaders and procurement specialists facing cost pressures, we don’t try to win by offering the lowest unit price. Instead, we focus on lowering the total project risk—offering documentation, consultation, and support from real-life chemical engineers who understand that choosing the right intermediate can spell the difference between successful launch and costly rework. Our job doesn’t end with a shipment notice; it continues through troubleshooting, performance review, and future design iterations.
After years supplying 4-[2-(Dimethylamino)Ethoxy]Benzylamine, we find that customer expectations rise with every innovation in the industry. Leaders in pharmaceutical and specialty chemicals increasingly ask about sustainability of supply, long-term consistency, and environmental impact. These questions don’t have quick fixes. We meet them by doubling down on raw material traceability, investing in solvent recovery, and collaborating with academic partners on green process improvements—not to check a box, but to outpace future regulatory and market shifts.
Continuous improvement isn’t just a slogan—it’s a challenge our staff chooses to meet, compelled by the trust returning customers place in our work. Our history with this compound reflects both our cumulative know-how and the real-world feedback from practitioners who bring new molecules, coatings, and diagnostics to life using our materials as trusted building blocks. In an industry shaped by thousands of unforeseen variables, the experience gained from years of batch runs, customer consultations, and laboratory troubleshooting forms the backbone of our daily decision-making.
Engineers and scientists working within a manufacturer’s four walls see a product like 4-[2-(Dimethylamino)Ethoxy]Benzylamine not as an abstract commodity, but as the result of hard-earned expertise, constant vigilance, and open collaboration with those who rely on what they receive. Our manufacturing floor hums with the activity of hands-on professionals who treat each batch with the expectation that it could be a critical link in the next big scientific breakthrough. Looking back, our success with this compound doesn’t rest on a single innovation or laboratory trick, but on stubborn refusal to settle for “good enough.”
Every gram we ship carries not just a certificate of analysis, but the weight of decades’ worth of lessons learned. Chemists, engineers, and procurement specialists who choose our product aren’t just making a purchase. They’re drawing on a partnership shaped by open dialogue, practical problem-solving, and a relentless drive to see their projects cross the finish line with confidence. As research challenges grow tougher and market pressures multiply, the right choice in a complex amine intermediate can spell the difference between unforeseen setbacks and reliable, repeatable progress.