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HS Code |
894326 |
| Chemical Name | 1-(2-Ethoxyethyl)piperazine |
| Cas Number | 63011-15-0 |
| Molecular Formula | C8H18N2O |
| Molecular Weight | 158.24 |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 242°C |
| Density | 0.979 g/mL at 25°C |
| Refractive Index | 1.458 |
| Flash Point | 109°C |
| Solubility | Miscible with water |
| Smiles | CCOCCN1CCNCC1 |
| Inchi | InChI=1S/C8H18N2O/c1-2-11-7-8-10-5-3-9-4-6-10/h9N,10N,11O,8,7,3,5H,2,4,6H2,1H3 |
| Synonyms | 2-Ethoxyethylpiperazine |
As an accredited 1-(2-Ethoxyethyl)Piperazine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The chemical is supplied in a 100 mL amber glass bottle, tightly sealed, with clear labeling indicating "1-(2-Ethoxyethyl)Piperazine." |
| Shipping | 1-(2-Ethoxyethyl)Piperazine is securely packaged in sealed containers to prevent leaks and contamination. The chemical is shipped according to standard safety regulations, typically with appropriate hazard labeling. It is transported under ambient conditions unless specified otherwise, and all safety data sheets are included to ensure compliant handling during transit. |
| Storage | Store **1-(2-Ethoxyethyl)piperazine** in a tightly sealed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers and acids. Keep it away from sources of ignition and moisture. Ensure proper labeling and use spill containment measures. Use appropriate personal protective equipment (PPE) when handling, and follow all local safety regulations. |
Applications of 1-(2-Ethoxyethyl)Piperazine in Industrial Manufacturing1-(2-Ethoxyethyl)Piperazine plays a key role as an intermediate and process additive across specialized industrial segments. We supply this raw material to established manufacturers active in pharmaceutical synthesis, water-soluble polymer modification, epoxy curing systems, and industrial gas treatment applications. 1. Pharmaceutical Intermediate SynthesisActive pharmaceutical ingredient (API) production uses 1-(2-Ethoxyethyl)Piperazine as a side-chain building block for various heterocyclic drugs, notably in anti-infective and CNS-active compounds. Our material supports reliable nucleophilic substitution and amide coupling steps, where controlled reactivity reduces byproduct formation and facilitates process scaling under GMP conditions. Industry compliance standards
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2. Water-Soluble Polymer ModifierIndustrial formulations for water-based resins and flocculants utilize 1-(2-Ethoxyethyl)Piperazine as a hydrophilic amine modifier, enhancing polymer solubility and end-group functionality. Manufacturers dose this compound during copolymerization or post-polymer modification, resulting in stable aqueous dispersions that meet strict environmental discharge and material safety requirements. Industry compliance standards
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3. Epoxy Resin Curing FormulationsEpoxy system formulators add 1-(2-Ethoxyethyl)Piperazine as a latent curing agent and reactivity controller in high-performance adhesives and coatings. This aliphatic amine structure introduces controlled crosslinking density and improved chemical resistance, especially favored in electronics encapsulation and corrosion-resistant flooring where compliance with indoor VOC and safety standards remains critical. Industry compliance standards
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4. Gas Sweetening and Amine ScrubbingGas processing facilities use 1-(2-Ethoxyethyl)Piperazine as a specialty amine in liquid absorbent blends for acid gas removal. Its tailored piperazine scaffold achieves effective hydrogen sulfide (H2S) and carbon dioxide (CO2) capture, especially in mixed solvent trains where regeneration stability, corrosion control, and process safety demand reliable quality input. Industry compliance standards
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Manufacturing chemicals demands precision, know-how, and commitment. Decades of hands-on experience in synthesis have taught us a lot about what makes a compound reliable, consistent, and honestly useful for real-world applications. 1-(2-Ethoxyethyl)Piperazine has stood out in our operations for the stability of its properties and the practical value it brings to process chemists and R&D teams.
Chemistry often pivots on access to the right intermediates. During years of scaling up various piperazine derivatives, batches sometimes gave us headaches due to variable purities and side reactions, especially in older equipment. With 1-(2-Ethoxyethyl)Piperazine, improvements in both reaction conditions and purification set new benchmarks for us. Starting with piperazine as the backbone, attaching a 2-ethoxyethyl group expands its utility without making handling much more difficult—something colleagues in formulation, API synthesis, and materials R&D appreciated from their first pilot trials.
On the line, operators prefer compounds that land in the drum without foaming, excessive odor, or odd color changes. Our 1-(2-Ethoxyethyl)Piperazine batches consistently show up as a clear liquid with a sharp, characteristic amine scent—the sort you expect from real amine chemistry, not spoiled by breakdown products or hush-hush stabilizers. After several years of regular production runs, trace residuals test low. That outcome comes from tweaking column design and temperature programming in the reactor—details that may bore most, but in our lab, results speak for themselves: fewer headaches with downstream steps, less time spent chasing "ghost" peaks in analytical reports.
Practical work depends not just on names, but on structure and behavior. The CAS number for 1-(2-Ethoxyethyl)Piperazine is 13349-82-1, and chemists recognize the signature piperazine ring capped by a 2-ethoxyethyl group at the nitrogen. This modification doesn’t just look good on paper. In our hands, it translates to the right volatility and solubility, which matters a lot on production scales larger than a few hundred grams.
Standard specifications from our plant stay tight: clear liquid, color index verified with each batch, typical assay up past 98 percent by GC. Moisture and nonvolatile residue run low, as verified by continuous calibration of analytical equipment. No yellowing, no sediment, and no mystery odors—real data backs it, run after run. Packing happens under nitrogen flush for longer shelf stability. On the warehouse floor, crews appreciate that the product moves easily by pump without fussing over viscosity or filter clogging. This kind of reliability didn’t come easy; we reached it by choosing better grade starting materials year after year.
Laboratories and plants approach piperazine derivatives for good reason. In our engagement with customers from pharmaceuticals, agrochemicals, and more obscure fields like specialty rubbers and epoxy curing agents, 1-(2-Ethoxyethyl)Piperazine fits flexible roles. Chemists in drug discovery use it as a building block for more complex molecules, often favoring the ethoxyethyl group for introducing just enough polarity and steric hindrance in their compounds. The piperazine backbone, hardened by decades of clinical development, brings predictable reactivity.
In agrochemical synthesis, field tests and plant bios have benefited from this compound during intermediate steps. The ethoxyethyl group often increases aqueous solubility compared to simple alkyl substitutions—traits visible during our in-house application tests. In work with polymer engineers, we’ve watched our compound perform as an effective curing agent, specifically when more flexibility and lower glass transition temperatures become essential. This sets it apart from pure piperazine or shorter chain analogs, which can result in brittle cured products or limited compatibility with plasticizer systems.
Feedback matters. As a manufacturer, hearing that our product saves time or reduces failure rates lets us know the effort pays off. Customers mention that competing products from trading houses sometimes vary batch to batch, making reproducibility tough. Our strength lies in traceable lots, clear documentation, and immediate production-side support. If a customer runs into an unusual analytical issue, we pull up process data, not excuses—we know the real reactions, not just the paperwork.
Piperazine chemistry covers a lot of ground. Simple piperazine works where you only need basic ring amines. Attach a methyl or ethyl group, and reactivity changes a bit—solubility, boiling point, even odor profile move. Shifting to 1-(2-Ethoxyethyl)Piperazine, there’s a clear jump in polarity without losing core piperazine reactivity. Technicians have told us that, compared to 1-ethylpiperazine or 1-methylpiperazine, the ethoxyethyl analog dissolves better in common solvents and supports higher reaction yields in nucleophilic substitution and acylation experiments. We’ve seen less residue clogging glassware and less gunk in reactor filters.
Further down the application pipeline, selectivity in pharmaceutical synthesis can hinge on these molecular details. 1-(2-Ethoxyethyl)Piperazine accommodates more diverse coupling partners. Peptide synthesis teams like this: they don’t get as much racemization or byproduct formation. In many of our pharmaceutical partner plants, reports show cleaner stepwise yields versus the isopropyl or cyclohexyl-substituted piperazine derivatives.
Another real-world difference: shelf life and storage. Several common piperazine derivatives turn cloudy or take on rogue aromas after a few months in standard industrial storerooms. This hasn’t shown up with our 1-(2-Ethoxyethyl)Piperazine, thanks to both the nature of its molecular design and our persistent attention to stabilizing the process from early synthesis all the way through to the drumming line. We keep an eye not just on temperature, but also on trace metal ion contamination at the ppm level, as that can trigger off-color and odor changes. It took a tough QA conversation with the reactor maintenance crew to finally get the system to this level. No one likes a batch recall, especially with tight deadlines and money on the line.
Every manufacturer dreams of a process free from hiccups. Real operations present challenges—scaling up from flask to several tons takes not just bigger tanks but smarter controls. Initially, we saw side-product formation from overalkylation and hydrolysis, especially as humidity changed from season to season. By refining the timing of reagent addition and closely controlling temperature ramps, we achieved higher selectivity. We didn’t buy that wisdom; we earned it on the shop floor, losing a few batches to “pilot plant surprises” along the way.
Equipment materials play a part. 1-(2-Ethoxyethyl)Piperazine proved sensitive to traces of certain metals and high-alkali glassware. Swapping out valves and seals for better-suited alloys helped us avoid costly downtime and "mysterious" batch failures. That let us move toward more consistent color indices and shelf stability. For others thinking of copying the process, ignore the risk of system contamination at your own cost. Nothing ruins a supplier reputation quicker than cloudy product in a customer’s critical reaction.
From a manufacturer’s viewpoint, regulatory and safety compliance isn’t optional—it sits at the core of our license to operate. For 1-(2-Ethoxyethyl)Piperazine, safe handling means closed systems as much as possible and regular air monitoring for amines. Experienced chemical handlers in our plant know to wear correct PPE and respect the distinctive odor, which makes minor spills quickly noticeable and easy to contain before bigger problems start.
With tightly managed storage tanks and hazard reviews, we haven’t seen the kind of long-term corrosion or leaching sometimes associated with lower grade or poorly-inhibited piperazine derivatives. Regular MSDS updates reflect new application research and field data. Our clients across pharma, specialty intermediates, coatings, or agriculture reach out with safety and compliance questions—we respond with specific data, not off-the-shelf lists. After all, we want their operators and environments as secure as ours.
Continuous improvement isn’t just a slogan on posters in our halls. Each shipment represents years of optimization, feedback, and candid conversations with partners up and down the supply chain. By preparing 1-(2-Ethoxyethyl)Piperazine on dedicated lines, we reduce batch crossover and unwanted side products. Chromatographic checks catch impurities early. We also keep an open line with both academic collaborators and process engineers who push the product’s boundaries—whether that means testing new synthetic transformations, investigating greener solvents, or adapting our purification for new downstream demands.
One innovation we’re proud of involves recycling solvent from purification back into initial reaction steps, cutting waste volumes while maintaining assay numbers. Not every process turns out well the first time, and honest reflection on raw data encourages adjustment. Energy savings, operator safety, and environmental responsibility carry weight in day-to-day decisions. Inspectors commenting on the clarity and traceability of our logs bear witness to a culture of transparency.
Problems don’t keep office hours. Our technical and logistics teams stay available for troubleshooting deliveries, process upsets, or specification clarifications. Feedback tells us clients choose our 1-(2-Ethoxyethyl)Piperazine to avoid suppliers who treat quality control as an afterthought. In our experience, being the manufacturer—having skin in the game daily—means personal and professional pride ride on every drum we load. We check in regularly after shipments, looking for improvements rather than waiting for complaints.
Custom requests challenge us to adapt volumes, packaging, or documentation. If a pilot plant needs a custom assay or reporting format, our QC and marketing teams coordinate directly so that project deadlines don’t go down the drain. When plants in new regions roll out regulatory questions or unique labeling requirements, our staff respond with updates—not delays—so customers don’t have to navigate regulatory red tape solo. Years of steady collaboration mean real partnerships last, rooted in reliability.
Chemistry doesn’t stand still. As researchers invent new uses for piperazine derivatives in battery electrolytes, advanced coatings, and complex APIs, we keep adapting our methods and capacity. Environmental regulations shift, and so do end-user performance requirements. Constant laboratory innovation lets us trial lower-waste procedures and more predictive analytics, making it easier to guarantee each drum contains exactly what it says in the test certificate. We’re investing in process intensification, smarter automation, and continuous learning among our staff. Our people—many of whom have spent decades at our site—absorb lessons from each run, building an institutional memory that can’t be outsourced or rushed.
For those choosing between products, the difference shows up in the day-to-day rhythm: smooth dosing, predictable reaction outcomes, and technical support responsive to real-world challenges. Not every variant of piperazine gets the balance right between cost, handling, and effectiveness. Over the years, 1-(2-Ethoxyethyl)Piperazine’s combination of selective reactivity and easy integration in diverse setups convinced us to keep it as a core offering. It’s not just about selling molecules; it’s about helping our clients develop medicines, materials, and solutions that stand up to scrutiny.
We built our reputation batch by batch, not by reselling what others make. Quality flows from everyday diligence in synthesis, purification, testing, and dispatch. The unique properties of 1-(2-Ethoxyethyl)Piperazine—consistent structure, availability at scale, low impurity levels—open doors for scientists and engineers around the world. By keeping the process in-house, feedback and trust flow in both directions. Partnerships grow from understanding real technical and business needs, not just moving drums out the door.
Every inquiry and every repeat order reinforces why direct manufacturer relationships matter in the fine chemicals world. When customers want details about production conditions, batch history, or alternative packaging, we provide specifics from the chemists and operators on the ground—not from a sales brochure. That connection, built on shared problem-solving and real expertise, delivers value in a way no mere specification sheet ever could.