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HS Code |
137083 |
| Chemical Name | 2-Phenoxyethylamine |
| Cas Number | 122-97-4 |
| Molecular Formula | C8H11NO |
| Molecular Weight | 137.18 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 244-246 °C |
| Melting Point | -30 °C |
| Density | 1.05 g/cm³ at 20 °C |
| Refractive Index | 1.537 |
| Solubility In Water | Slightly soluble |
| Flash Point | 110 °C |
| Odor | Aromatic |
As an accredited 2-Phenoxyethylamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | A 500 mL amber glass bottle labeled "2-Phenoxyethylamine," with hazard symbols, lot number, concentration, and manufacturer details. |
| Shipping | 2-Phenoxyethylamine is shipped in tightly sealed containers, protected from moisture, heat, and incompatible substances. It is labeled according to chemical safety regulations and typically transported via ground or air freight following relevant hazardous material guidelines. Shipping documentation includes safety data and handling instructions to ensure compliance and safe delivery. |
| Storage | 2-Phenoxyethylamine should be stored in a tightly sealed container in a cool, dry, and well-ventilated area, away from sources of ignition, heat, and incompatible materials such as strong oxidizers and acids. Protect from moisture and direct sunlight. Proper labeling and secure storage minimize the risk of contamination, degradation, and accidental exposure. Use appropriate safety measures when handling. |
Applications of 2-Phenoxyethylamine in Industrial Manufacturing2-Phenoxyethylamine offers key functional properties for specialized downstream manufacturing sectors. As direct producers, we support formulation development, detailed quality evaluation, and supply-chain continuity for strict regulatory environments. The following application scenarios reflect verified, large-scale use by industrial partners across distinct segments. 1. Organic Pigments and Dyes Synthesis for Printing InksManufacturers utilize 2-Phenoxyethylamine as a coupling component in azo dye and pigment production, where its electron-donating structure helps modify color tone and solvent compatibility. Its integration at the diazotization or condensation step adjusts chromophore reactivity, enabling precise shade control in advanced printing inks for packaging, textiles, and coatings. These uses must comply with international environmental and consumer safety expectations regarding residue and migration in final formulations. Industry compliance standards
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2. Epoxy Resin Curing Agents in Advanced CoatingsEpoxy system formulators employ 2-Phenoxyethylamine as a reactive diluent and co-curing agent, particularly for improving the flexibility and chemical resistance of two-component coatings and structural adhesives. The compound participates in polyaddition curing, interacting with epoxide groups to optimize crosslink density, minimize blushing, and enhance adhesion to metals and composites. Controlled use ensures mechanical and thermal performance within specified industrial limits. Industry compliance standards
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3. Pharmaceutical Intermediate for β-Blocker APIsWithin pharmaceutical manufacturing, 2-Phenoxyethylamine acts as a key raw material in multi-step syntheses of select β-blocker active pharmaceutical ingredients, including the formation of oxazolidinone and related functional groups. Its predictable reactivity and narrow impurity profile support process yields and batch consistency. Stringent GMP environments allow only audit-traceable sources, and QC testing is required to control residual solvents and amine content in the finished API. Industry compliance standards
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4. Corrosion Inhibitor Synthesis for Metalworking FluidsChemical formulators in the metal treatment industry incorporate 2-Phenoxyethylamine when synthesizing amine-based corrosion inhibitors for aqueous and semi-synthetic metalworking fluids. Its aromatic ether group increases hydrophobic film formation on ferrous and non-ferrous surfaces, thus improving protection under high-shear and elevated temperature conditions found in precision tooling and forming lines. Production environments require provided intermediates to meet regulatory guidelines for operator and environmental safety. Industry compliance standards
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5. Polymer Modifier and Chain Extender in Engineering PlasticsPlastics compounders selectively use 2-Phenoxyethylamine to functionalize polyamide and polyurethane backbones, acting as a chain extender or side-group modifier. Its aromatic ether unit creates improved thermal and mechanical properties, sought in automotive and high-performance molded components requiring dimensional stability and chemical inertia. Integration requires strict lot traceability and process control to meet automotive and electrical application standards. Industry compliance standards
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As a chemical manufacturer with years invested in the synthesis and refinement of amine-based intermediates, we’ve watched the industry’s expectations for purity and performance evolve alongside regulatory standards and shifting application trends. Our journey with 2-Phenoxyethylamine stands as a good example of how targeted expertise, process discipline, and direct feedback from end-users shape not just production methods, but the final product's real-world value.
2-Phenoxyethylamine is a clear, colorless liquid with a mild amine aroma—traits that make it easy to identify in the plant and ensure consistency in the field. Chemically speaking, it carries a phenoxy group attached to an ethyl chain, which is then bonded to a primary amine. CAS No. 122-09-8 denotes its molecular identity and sets it apart from other closely related amines, like ethylamine or benzylamine. Unlike those simpler structures, 2-Phenoxyethylamine offers a unique blend of solubility, reactivity, and stability. This translates into better process performance and fewer handling challenges downstream.
Every batch tells a story from raw material selection to the final drum shipment. The value of high-purity amines comes through most clearly in advanced synthesis applications—pharmaceutical intermediates, specialty coatings, and performance polymers lead the pack among our customers. Our processes typically yield a minimum purity of 99.5% by GC, enabling chemists and engineers to trust their input streams. Stability under ambient storage means the product stays true throughout shipping, warehousing, and use, reducing risk and waste for end-users.
One fact often overlooked by those outside direct manufacturing: the quality of 2-Phenoxyethylamine isn’t just about meeting a figure on a COA. It hinges on micro-level control—preventing trace byproducts that might escape casual inspection but influence downstream chemistry, product color, or catalyst performance. Our reactors are engineered for strict temperature, agitation, and pH profiles, coupled with inline monitoring and final-stage polishing to strip out residual starting materials and oxidative side-products. Trace water content and low chloride levels further reduce the risk of unexpected reactions in sensitive syntheses.
Pharmaceutical customers often use 2-Phenoxyethylamine as a building block in active pharmaceutical ingredients and performance intermediates. Its primary amine reactivity opens the door to reductive amination, amidation, and urea linkage steps, while the phenoxy tail provides hydrophobicity and electron-rich character that can tune biological profiles or polymer flexibility. Other markets come to us for its use in epoxy resin modification, dye intermediates, and agrochemical synthesis. Each application draws out different needs: for pharma, purity and trace impurities shape the conversation; for polymers, the focus shifts to color, odor, and thermal stability; for agrochemicals, reactivity and formulation compatibility come to the foreground.
End-users have shared feedback on batch-to-batch reproducibility. Small shifts in purity or impurity spectrum influence downstream yields, color, and even batch timing. As such, consistency isn’t just a promise. It's built into our process design and verified by analytical programs—GC, HPLC, and titration methods that we regularly compare against industry standards and customer-supplied benchmarks.
Some procurement teams may weigh choices between similar-sounding amines—2-Phenoxyethylamine, phenylethylamine, and benzylamine appear close on a chemical listing, but functional differences emerge in practice. 2-Phenoxyethylamine delivers better hydrolytic stability than aliphatic amines, thanks to that ether-linked aromatic ring. This makes it less prone to discoloration or degradation under ambient storage. Compared to phenylethylamine, the oxygen atom of the phenoxy group shifts electron density across the molecule, which can suppress unwanted side reactions in sensitive syntheses. Its boiling point and flash point allow safer handling in large reactor loads or solvent blends. The result for users: more reliable process outcomes and fewer surprises when scaling up or auditing environmental controls.
Customers sometimes ask about generic alternatives or lower-cost imports. As process engineers with experience troubleshooting mysterious plant upsets, we stress the importance of knowing the real impurity profile—not just relying on a generic “99% min.” figure. Trace aldehydes, moisture, or unfiltered solids can clog equipment, poison catalysts, or trigger color instability, especially where high-value products are concerned. Years in the field have taught us that every upstream shortcut risks a downstream headache.
Our relationship with 2-Phenoxyethylamine goes far beyond simple batch manufacture. Feedback flows in from pharmaceutical R&D teams, polymer chemists, and plant process engineers. One example: a customer binding 2-Phenoxyethylamine to a resin backbone challenged us to cut residual water and formaldehyde below 50 ppm—well below generic market offerings. Our technical team tuned the final vacuum distillation and incorporated an adsorbent filtration step, resulting in improved shelf life and higher consistency in end-use performance. Real-life improvements like these don’t happen by accident; they reflect a sustaining dialogue between manufacturer and user.
Regulatory compliance has grown stricter over the years, especially around amine-containing chemicals. Customers audit our process, documentation, supply chain traceability, and environmental controls. Certification cycles demand detailed residue and impurity mapping, not just a few headline numbers on a specs sheet. Our analytical lab runs regular cross-comparisons with external validators, supporting customers who need supporting documentation for government or corporate signoffs. For the pharmaceutical sector, full traceability and GMP-aligned documentation are standard, not optional.
Producing and shipping 2-Phenoxyethylamine at industrial scale comes with its own set of headaches. One challenge is keeping trace metal and halide contamination in check. Active reactors and transfer lines must balance robustness with the cleanest material-contact surfaces available. Batch records track every drum, right down to the resin grade in our delivery lines. Moisture control poses another hurdle, requiring inert gas blankets and sealed transfer to prevent unwanted hydrolysis or contamination. Drum packaging undergoes pressure-seal checks before leaving our warehouse; a leaky drum wastes more than product, it risks customer goodwill and regulatory headaches.
Lead times fluctuate with raw material swings and shipping disruptions. As manufacturers, we try to buffer through inventory reserves and reliable supplier partnerships, but periodic force majeures can test even the best supply chain plans. We work closely with our transportation partners to monitor compliance with environmental and safety standards, limiting the risk of in-transit spills or delays. Our support teams stay available through the entire process, not just at the point of sale—troubleshooting, sharing lab findings, and double-checking storage guidelines until the user’s own quality control signs off.
A bottle of 2-Phenoxyethylamine may look simple on a lab shelf or loading dock. Its quality, though, comes from hundreds of process checks—from raw phenol sourcing, through amination and distillation, to filling the final drum. We develop in-house testing protocols that don’t just mirror industry standards; they evolve alongside our customers’ practices and the latest scientific literature. Routine GC-MS screening detects not just the target molecule but trace byproducts. Colorimetry and volatility tests confirm pigment and odor stability, especially for specialty resin customers who can’t risk off-spec input fouling a high-value batch.
Partnering with large industrial users, we build long-term stability trials into our planning. Accelerated aging samples run for up to one year, stored under stress conditions to track color, volatility, and purity drift. The data gathered help guide recommendations on drum storage, repackaging, and usage limits—practical tools that plant engineers use to minimize waste and avoid processing delays.
Day to day, our plant and technical teams see more than numbers on a screen. We’re the ones testing for faint acid traces in the distillation overheads, reacting to reports of an off-smell detected by a customer halfway across the world, and brainstorming how to accommodate a new purity request on a tight timeline. This hands-on routine means every lot we produce carries a piece of our commitment to users’ downstream success. Scrubbing every drum’s headspace for oxygen, running last-minute Karl Fischer moisture titrations, and loading shipments with the latest batch certificates—these habits add up to steady, predictable product experiences.
The cost of a drum rarely captures the true cost of failed syntheses or product recalls. We remain vigilant about contamination control, documentation, and batch verification because a shortcut today sets up tomorrow’s challenge. Over years, open lines with users have led us to develop better testing protocols, make plant investments, and introduce automated filling lines to further minimize error. Trust, in chemical manufacturing, builds in increments—by delivering what we promise and showing up when questions or problems arise.
2-Phenoxyethylamine will continue to evolve as a product with ongoing changes in industry demands and tightening government regulations. We stay ahead by investing in greener process chemistries, toxicological studies, and waste-minimization strategies. As sustainability expectations rise, our R&D teams look for ways to reduce process waste and energy input, even at the small-molecule level. We’ve piloted continuous-flow reactors, explored alternative feedstocks, and reviewed downstream water treatment, all with the aim of shrinking our ecological footprint while improving cost stability for our customers.
Digital tracking and supply chain transparency have become as important as chemical testing. Customers now expect real-time shipment data, digital signatures on batch certificates, and even remote process audit capability. As a direct manufacturer, our teams adapt to these changes with upgraded ERP systems and routine cyber-audits on production records. Ease of data access builds confidence between supplier and user, a relationship grounded as much in open communication as it is in technical capability.
As direct manufacturers, feedback from users anchors our ongoing improvement. One long-term customer flagged sporadic haze in finished pharmaceuticals. Working closely with their team, we traced the issue to a subtle interaction between trace aldehydes and their process stabilizers. Our QC team retooled our GC detection method to catch these sub-0.01% trace levels, and modified the final distillation cycle. The haze issue resolved, giving both parties a deeper understanding and a stronger customer-supplier bond.
Another customer in the coatings sector shared challenges linked to odor consistency. Subtle shifts in storage environment, drum integrity, and batch storage times all played a role. Our technical staff led side-by-side evaluations, eventually arriving at a recommendation for nitrogen-blanketed packaging and batch-lot tracking, providing the odor control and application reliability demanded by their market. These kinds of stories underscore the relationship-based character of chemical manufacturing, where every process tweak, every drum handled, builds toward smoother outcomes for everyone down the line.
Producing 2-Phenoxyethylamine is not simply a matter of mixing ingredients and shipping a standard molecule. The real work lies beneath the surface: in the quiet calibration of reactors, in the audit of every supplier, in the painstaking refinement of analytical protocols. The sum of these efforts comes together in a product shaped by the demands, expectations, and direct input of our user base. Every day, from loading dock to lab analysis table, our teams bring the care and know-how that keep 2-Phenoxyethylamine a product customers rely on, project after project.