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2-(4-Methoxyphenoxy)Ethylamine

    • Product Name 2-(4-Methoxyphenoxy)Ethylamine
    • Alias 4-MPEA
    • Einecs 622-541-5
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    960518

    Chemical Name 2-(4-Methoxyphenoxy)ethylamine
    Molecular Formula C9H13NO2
    Molecular Weight 167.21 g/mol
    Cas Number 15489-56-2
    Appearance Colorless to pale yellow liquid
    Boiling Point 314 °C
    Density 1.13 g/cm3
    Solubility Soluble in water and organic solvents
    Purity Typically ≥98%
    Synonyms 4-Methoxyphenoxyethylamine, 2-(4-Methoxyphenoxy)ethanamine
    Smiles COC1=CC=C(OCCN)C=C1
    Inchi InChI=1S/C9H13NO2/c1-11-8-2-4-9(5-3-8)12-7-6-10/h2-5H,6-7,10H2,1H3

    As an accredited 2-(4-Methoxyphenoxy)Ethylamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The chemical is sealed in a 100-gram amber glass bottle with a tamper-evident cap and detailed labeling for safe identification.
    Shipping 2-(4-Methoxyphenoxy)Ethylamine is shipped in tightly sealed containers, appropriately labeled according to hazardous material regulations. It is protected from light, moisture, and incompatible substances. The chemical is transported at ambient temperature, with secondary containment to prevent leaks. Compliance with local, national, and international shipping regulations is strictly maintained to ensure safety.
    Storage 2-(4-Methoxyphenoxy)ethylamine should be stored in a tightly sealed container, kept in a cool, dry, and well-ventilated area away from direct sunlight and sources of ignition. Avoid exposure to moisture and incompatible materials such as strong oxidizers and acids. Properly label the storage area and ensure that only trained personnel handle the chemical, using suitable protective equipment.
    Application of 2-(4-Methoxyphenoxy)Ethylamine

    Applications of 2-(4-Methoxyphenoxy)Ethylamine in Industrial Manufacturing

    As the direct manufacturer of 2-(4-Methoxyphenoxy)ethylamine, we serve specialty sectors with stringent regulatory requirements and demand for consistent quality. Our customers rely on the compound in targeted chemical synthesis processes where its unique reactivity profile, purity, and process compatibility deliver measurable advantages in both batch and continuous production. Below we present specific application scenarios, compliant standards, recommended usage levels, process roles, and the typical downstream outputs.

    1. Pharmaceutical Intermediate Synthesis

    In pharmaceutical intermediate manufacturing, 2-(4-Methoxyphenoxy)ethylamine functions as a key building block for the construction of active and non-active molecular scaffolds, particularly in the synthesis of cardiovascular and CNS drug intermediates. Industrial manufacturers require consistently purified grades to minimize impurity profiles due to stringent regulatory scrutiny. Our product supports controlled amidation and condensation reactions, entering the process during early-stage molecule functionalization. Integration ensures precise batch yields, optimal reaction selectivity, and reliable downstream purification, resulting in high-value intermediates for final API assembly.

    Industry compliance standards

    • Good Manufacturing Practice (GMP) for APIs (ICH Q7, FDA 21 CFR Part 210/211)
    • EU Directive 2011/62/EU for starting materials traceability
    • ISO 9001:2015 Quality Management System certification
    • Pharmacopoeial raw material documentation and impurity profile control (USP, EP)

    Typical usage ratio

    • 0.3–2.5 molar equivalents relative to acylating agents, depending on the target intermediate structure, yield optimization, and impurity constraints

    Downstream process integration

    • Dosed as a primary amine reactant in amide bond formation, etherification, or reductive amination steps, typically after solvent exchange and pH adjustment in stirred tank reactors

    Final product types

    • Intermediates for beta-blocker APIs
    • Synthetic precursors for CNS agents
    • Specialty chiral auxiliaries
    • Advanced intermediates for contract API manufacturing

    2. Custom Synthesis of Liquid Crystal Materials

    2-(4-Methoxyphenoxy)ethylamine plays a crucial role in the production of specialty mesogenic compounds for high-end display technologies. Its molecular structure introduces specific polarity and flexibility when incorporated into liquid crystal core units. Downstream processors employ the amine functionality for targeted coupling with acid chlorides or activated esters, forming thermotropic molecules with defined phase transition behaviors. Strict QC protocols monitor incorporation yield and purity, directly impacting the optical performance and thermal stability of the final mixtures used in panel manufacturing.

    Industry compliance standards

    • RoHS (EU 2011/65/EU) for hazardous substances in electronic components
    • REACH (EC 1907/2006) registration and usage documentation
    • ISO 14001 Environmental Management for materials used in display technology
    • OEM-specific purity and residue specifications for display intermediates

    Typical usage ratio

    • 3–10% by molar composition in the targeted mesogen synthesis step, adjusted for desired dielectric anisotropy and phase transition properties

    Downstream process integration

    • Introduced post-halogenation or nitration of base cores, reacting in controlled condensation with aromatic acid derivatives under dehydrating conditions, followed by purification via column chromatography

    Final product types

    • Mesogenic monomers and intermediates
    • Liquid crystal materials for TFT-LCD and OLED display manufacturing
    • Functional additives for specialty optical films

    3. Polyurethane Chain Extender for Specialty Coatings

    In high-performance polyurethane coatings, 2-(4-Methoxyphenoxy)ethylamine acts as an aromatic ether amine chain extender, imparting controlled crosslink density and desirable flexibility alongside UV resistance. Coatings formulators incorporate the amine during prepolymer chain extension stages, balancing mechanical strength and resilience in advanced industrial finishes. This downstream integration supports applications in automotive, electronics housing, and aerospace component coatings where chemical resistance and optical properties must meet strict criteria.

    Industry compliance standards

    • ISO 12944 for corrosion protection coatings on steel structures
    • GMP for coatings in contact with medical devices (ISO 15378)
    • MIL-PRF-85285 for aerospace polyurethane coatings
    • RoHS for electronics coatings materials

    Typical usage ratio

    • 0.5–1.8 wt% based on total isocyanate equivalent in prepolymer blends; dosage optimized for performance targets (toughness, UV shielding, gloss retention)

    Downstream process integration

    • Added during chain extension after prepolymer formation but before final pigment/filler incorporation, under controlled temperature (60–85°C) and mixing conditions to avoid premature side reactions

    Final product types

    • Industrial protective polyurethane coatings
    • Automotive OEM clearcoats
    • Functional coatings for electronics housings and connectors
    • Specialty aerospace primers and topcoats

    4. Synthesis of Agrochemical Active Intermediates

    Manufacturers use 2-(4-Methoxyphenoxy)ethylamine in the targeted synthesis of phenoxy-alkylamine-based intermediates common in next-generation agrochemical actives. The compound introduces electron-donating and ether grouping into candidate molecules for herbicide or plant regulator innovation. During multi-step synthesis, it participates in selective nucleophilic substitutions and couplings under basic conditions. Accurate addition and in-process controls address byproduct minimization, resulting in reproducible yields and compatibility with commercial downstream synthesis of regulated crop protection products.

    Industry compliance standards

    • FAO/WHO specification for technical active ingredients
    • ISO 17025 analytical laboratory accreditation for impurity and residue monitoring
    • Regulatory technical dossiers (EU Regulation (EC) No 1107/2009, US EPA Title 40 CFR Part 180)
    • GHS/CLP labeling compliance for agrochemical intermediates

    Typical usage ratio

    • 5–15 mol% in stepwise syntheses, modulated according to target alkylamine functionality content and side chain optimization

    Downstream process integration

    • Charged as the amine source in nucleophilic substitution with halogenated aromatic precursors under alkaline catalysis, followed by isolation and purification for subsequent coupling or ring closure

    Final product types

    • Herbicide intermediates for ether-linked phenoxyacetic acid derivatives
    • Plant growth regulator bases
    • Quaternary ammonium precursors for formulation ingredients
    • Bulk active ingredients for crop protection

    5. Specialty Monomer for Polycondensation Polymers

    Industrial polymer producers employ 2-(4-Methoxyphenoxy)ethylamine as a reactive monomer in polycondensation routes, where its etherified aromatic backbone and terminal amino group afford unique solubility and glass transition characteristics for specialty engineering plastics. During resin manufacturing, the amine is introduced as a diamine component, enabling formation of polyamides, poly(ether amide)s, or select block copolymers. This approach expands resin designer's options for high-performance polymers in electronics, composites, filtration, and automotive applications demanding heat resistance with chemical stability.

    Industry compliance standards

    • UL 94: Flammability standards for plastics
    • ISO 1043: Polymer material designation
    • ISO 9001:2015 for process quality management
    • RoHS and REACH for polymer additives and raw materials

    Typical usage ratio

    • 10–50 mol% of total diamine content for copolymer synthesis, with adjustment to polymer chain architecture and application properties

    Downstream process integration

    • Introduced in the diamine feed during melt or solution polycondensation, reacting with dicarboxylic acid or diacid chloride monomers under vacuum or inert gas atmosphere, with in-process monitoring for molecular weight and chain uniformity

    Final product types

    • Amorphous and semi-crystalline engineering plastics
    • Membrane materials for industrial and medical filtration
    • High-temperature-resistant composites
    • Electrical insulating films and technical fibers
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    Certification & Compliance
    More Introduction

    2-(4-Methoxyphenoxy)Ethylamine: A Closer Look from the Manufacturer’s Floor

    What Sets Our 2-(4-Methoxyphenoxy)Ethylamine Apart

    Every batch of 2-(4-Methoxyphenoxy)Ethylamine leaving our plant reflects a commitment seen in our production lines, not only to quality but to real chemical results. Many in this field may never witness how a well-made batch of this molecule looks and smells when it comes off a reaction vessel—faintly aromatic, pale, sometimes crystalline, and handled with care. Having worked with this material in our facility over years, we have ironed out the variables that can frustrate less experienced operations.

    We have chosen model 99.0% minimum purity as our standard for most customers. Some years ago, we tested the waters with technical grades for niche applications, but found that consistent reactivity demanded a higher, pharmacopoeia-oriented standard, even for industrial end users. Thin layer chromatography and precise drying techniques separate a flawless, near-colorless product from grains carrying off-notes or residual solvents. When chemical integrity has a direct impact on expensive downstream syntheses, overlooked impurities turn costly. Through careful reaction control and solvent recovery, failures are rare.

    Manufacturing Practice Rooted in Real Experience

    Our workhorses—jacketed glass reactors—have seen hundreds of small runs and numerous larger campaigns over seasons. The reaction that produces 2-(4-Methoxyphenoxy)Ethylamine can look simple on paper. In practice, temperature deviations or inconsistent starting material quality generate headaches: dark byproducts, sticky residues, lost product yield. Years spent tweaking parameters, routine staff training, and regular instrument calibration have reduced error margins.

    For us, producing a standard spec is not a checkbox. It involves hands-on checks. Each batch, inspected visually and by GC-MS, assures low ppm levels of related substances. This vigilance matters: some customers incorporate this amine into critical intermediates or research compounds, where unknown contaminants can derail multi-step syntheses. Reliability translates to reproducibility, and experienced chemists will recognize true quality in a sample without extra purification steps.

    Maintaining this level of control—not over or under isothermal ranges, properly staged additions, and effective phase separations—lets us deliver consistent product, shipment after shipment. Plant-based manufacturing introduces complexity that spreadsheets and procurement desks rarely show. We see it in real time when a distillation column doesn’t fractionate as expected, or when a seasonal humidity spike changes drying times. Identifying and compensating for these shifts requires committed operators, not just automated reports.

    Common Applications Driven by Real Demands

    2-(4-Methoxyphenoxy)Ethylamine serves as a versatile intermediate, especially in fields where the balance of reactivity and selectivity matter. We’ve seen significant uptake from fine chemical companies developing new pharmaceuticals, and also from dye and polymer specialists seeking to modify molecular structure. Amine function makes this compound suitable for reductive aminations or as a nucleophile for further derivatization, while the aromatic ether motif lends stability and certain desirable steric features.

    Demand from pharmaceutical innovation has led us to develop tighter quality thresholds. We handle requests for higher resolution analytical data—sometimes high-performance liquid chromatography (HPLC), sometimes carbon-13 NMR—because missed impurities can mean dropped research programs on the end user’s side. Across industrial processes, seasoned formulators especially value amines with defined melting points and minimal moisture content. We invested in automated Karl Fischer titration almost a decade ago after hearing from a customer about hydrolysis issues in their own lines. Small details matter, and that’s a lesson we carry with every order.

    As downstream researchers develop increasingly complex molecules, the need for reliable upstream components has only grown. Our teams don’t simply target metric tons per year, they study which synthesis conditions minimize byproduct formation, or which filter media offers the cleanest isolation—insights gained by hands-on troubleshooting during actual runs. This approach serves small labs and multinational chemical groups alike.

    Specifications Refined by Use—Not Just Paperwork

    Some customers place a premium on batch-to-batch traceability, especially when their own industries face tight regulatory oversight. Each lot of our 2-(4-Methoxyphenoxy)Ethylamine gets tracked from raw phenol intake to final packaging. Chain of custody means we can account for every step, every solvent, and every time parameters went out of spec and got brought back in line. Years ago, a missed error resulted in learning the hard way: a single over-acidification ruined an entire product run. Now, double-checks and digital logs guide every step.

    The current standard for our major clients leans toward ≥99.0% purity, with water content under 0.2% w/w. Odor, color, and granulation are all checked by practiced technicians who know exactly what a “good” sample should resemble. Our containers must protect against contamination and moisture—lessons learned over time, not theory. Food-safe liners, anti-static bags, robust sealing, and clear date labeling have all resulted from a few challenging returns, each one teaching us more than a year’s worth of smooth orders.

    Customers focused on early-stage R&D require smaller packs with tighter opening protocols; production-scale companies opt for large barrels, delivered with a manifest of further characterization by GC-FID or elemental analysis. Not everybody demands this depth, but we’ve found delivering more data, even before asked, speeds up customer validation and reduces confusion. A proactive stance grows from years working on both fast-turnaround and long-term supply agreements.

    Why 2-(4-Methoxyphenoxy)Ethylamine Stands Apart from Related Products

    Seasoned chemists may point out a crowded landscape among aromatic or aliphatic amines. 2-(4-Methoxyphenoxy)Ethylamine holds several subtle advantages owing to its structure. The methoxy and phenoxy units contribute to increased solubility in a range of organic solvents compared with unsubstituted phenoxyethylamines. The electron-donating methoxy group modifies both reactivity and physical performance, reducing oxidation risk in synthetic protocols under mild conditions. For us, these distinctions are not academic; we have customers who shared how switching from a para-unsubstituted analog to our product led to more reliable coupling reactions, with lower rates of side-chain modification.

    Some competitors focus on cost-over-performance, pushing lower purity or technical grades to the market. We recognized early on that cutting purity for margin only leads to returned material and frustrated customers, whether in HPLC column fouling or in tracing an unidentifiable impurity in months-long R&D. By focusing on a narrow synthetic route, and locking in only high-quality raw materials, our batches deliver reproducibility, whether demand calls for kilograms or tons. Chemists who value deep structural insight notice cleaner NMR spectra, more consistent crystallizations, and fewer surprises in their synthesis logs.

    Direct comparison with lower-grade alternatives makes the choice clearer: researchers confirm higher conversion rates in multi-step organic syntheses, while industrial engineers report fewer plant stoppages linked to trace-level byproducts. These are not claims from brochures—they are stories we hear from end users. Complex downstream chemistries, such as those involving palladium-catalyzed cross-couplings or sensitive reductive aminations, see higher final product yields and less troubleshooting when the starting amine is truly pure and consistent.

    Production Realities—And How They Shape Final Use

    Life on the manufacturing side often comes with ground-level constraints missed by desk-level projections. Automated pumps may fail to maintain constant agitation, leading to temperature hot spots and incomplete reactions. In high humidity, product can clump, slowing final drying. Equipment wear in fractionation columns changes reflux ratios, shifting product quality imperceptibly over multiple runs. Veteran staff catch these issues before they reach a customer. It’s not enough to have a certificate of analysis; inspections must go deep into plant variables—checking for phthalate contamination, monitoring for off-colors, even sampling off each packing line for residual acidity or trace catalyst. Standardization comes from process control, not just end-of-line tests.

    We’ve invested in upgrading filtration units, automated dosing, and better nitrogen blanketing systems because on-the-ground reality taught us where product can spoil or cross-contaminate. Improvements happen because a team spotted a problem, not because of a meeting room chart. This is one way you get a manufacturing-driven product standard that holds up across demanding industries.

    Handling, Storage, and Shipping—Lessons Beyond Paper

    Proper handling of this amine doesn’t start and end with hazmat paperwork. We maintain strict stock rotation and indoor climate control. Subtle changes, such as a week in uncontrolled storage, shift product moisture levels, opening up the risk of oxidation or color changes. Our teams mitigate these risks by regular checks, both visual and analytical. Each drum is sealed, nitrogen-purged, and labeled with full trace information.

    Shipping requires more than a courier and a manifest. We pack according to the season—using thermal insulation or expedited freight where necessary—because delivery conditions can alter product integrity en route. One story that stands out: during a summer heatwave, we switched to temperature-monitoring shipments after a batch arrived slightly yellowed, even though its analytical specs held up. Avoiding these issues requires tracking in real time, adjusting not by broad policy but by known risk at specific times of year.

    For overseas customers, we optimize packaging for longer journeys. Desiccant packs, moisture barriers, and real-time tracking reduce the risk of degradation. These practices grew out of lessons learned after a few challenging international deliveries, not from regulatory manuals.

    Supporting Each Use Case with Action, Not Just Declarations

    We’ve helped customers scale from bench to plant. R&D customers seeking gram-grade samples often value flexibility: smaller pack sizes, priority dispatch, or even a customized cleaning procedure for absolute cross-contamination assurance. For larger industrial partners, it often comes down to predictability—months of continuous reactors can’t tolerate fluctuating feedstock specs. Our team adjusts manufacturing volume, holds validated inventory, and revises process protocols to meet evolving demand cycles.

    It makes a difference to talk directly to a supplier who knows their product’s weaknesses and strengths. Years ago, a customer’s coupling reaction kept failing when using general commercial samples; our analysis worked alongside theirs to identify a trace stabilizer contaminant. From then on, we committed to tighter controls—not just in our final amine, but upstream in all feedstocks. This approach fostered trust, and brought repeat orders with tighter tolerance requirements, pushing us to invest in both people and process improvement.

    Custom solutions sometimes mean batch-specific filtration or late-stage molecular sieving. We develop and validate these process tweaks in our own plant, then scale and document every step so industrial partners see no surprises. These aren’t theoretical selling points—they are results of active problem-solving, often under real deadline pressure.

    Continued Adaptation—What Real Reliability Requires

    Every year presents challenges: raw material shortages, regulatory updates, new application demands. We adapt through direct process improvements and open dialogue with downstream users. Staying ahead of regulatory changes—like new REACH requirements or shifts in global hazardous substance controls—means adjusting protocols before shipment deadlines can be missed.

    By maintaining deep partnership with end users, we learn quickly which application trends matter most. Teams in research and process engineering share feedback on how our batches perform in lab and scale-up. This back-and-forth leads to small but meaningful changes, whether in analytical checks, batch-size flexibility, or packaging innovations. Real improvements grow not from one-off projects, but through repeated, real-world test and feedback cycles.

    The Value of Direct Manufacturer Experience

    Too many chemical marketers trade only on certifications and paperwork. Over years, supplying 2-(4-Methoxyphenoxy)Ethylamine to leading chemical developers, our team has learned that real performance always trumps theory. Chemists notice the difference—slower batch-to-batch variation, fewer reaction failures, reduced waste. These results come not from outsourcing or arms-length trading, but from hands-on manufacturing experience, close process control, and an ongoing willingness to solve problems before they reach our customer’s door.

    Most of all, it’s persistence on the plant floor—listening to both end users and production staff—that makes a manufacturer’s product stand apart. The knowledge built over countless batches and dynamic market shifts grounds the quality of our 2-(4-Methoxyphenoxy)Ethylamine, creating more than a product line: it creates real, measurable chemical results.