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2-[2-(Dimethylamino)Ethoxy]Ethanol

    • Product Name 2-[2-(Dimethylamino)Ethoxy]Ethanol
    • Alias Bis(2-hydroxyethyl)dimethylammonium
    • Einecs 203-690-7
    • 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
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    Specifications

    HS Code

    143843

    Chemical Name 2-[2-(Dimethylamino)Ethoxy]Ethanol
    Synonyms N,N-Dimethyldiethanolamine
    Molecular Formula C6H15NO2
    Molar Mass 133.19 g/mol
    Cas Number 1704-62-7
    Appearance Colorless to pale yellow liquid
    Boiling Point 220-225 °C
    Density 0.967 g/cm3 at 20°C
    Solubility In Water Miscible
    Flash Point 116 °C
    Refractive Index 1.444-1.448
    Vapor Pressure 0.03 mmHg at 20°C

    As an accredited 2-[2-(Dimethylamino)Ethoxy]Ethanol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, 500 mL, with secure screw cap; labeled with chemical name, CAS number, hazard warnings, and supplier information.
    Shipping 2-[2-(Dimethylamino)ethoxy]ethanol is typically shipped in tightly sealed containers, protected from moisture and heat. It is transported according to local, national, and international regulations for chemicals. Proper labeling and documentation are required to ensure safety. The product should be handled by trained personnel using appropriate personal protective equipment during transit.
    Storage 2-[2-(Dimethylamino)ethoxy]ethanol should be stored in a tightly closed container in a cool, dry, and well-ventilated area. Protect it from moisture, heat, and sources of ignition. Store away from incompatible materials such as strong oxidizers and acids. Ensure proper labeling and keep the container in a designated chemical storage area, following all relevant safety protocols.
    Application of 2-[2-(Dimethylamino)Ethoxy]Ethanol

    Applications of 2-[2-(Dimethylamino)Ethoxy]Ethanol in Industrial Manufacturing

    2-[2-(Dimethylamino)Ethoxy]Ethanol serves as a key intermediate in several industrial chemical processes, especially where controlled alkalinity, surfactant behavior, or functional group modification are essential. We supply this raw material to global manufacturers under strict standards, supporting regulated end uses across diverse downstream sectors.

    1. Waterborne Epoxy Curing Agents for Protective Coatings

    This compound acts as a chain extender and solubilizer in the formulation of waterborne epoxy curing agents. Process engineers use it to modulate amine functionality, improve resin compatibility, and facilitate dispersion in aqueous systems. The raw material directly affects cure speed, gloss retention, and chemical resistance in finished coatings. It supports the manufacture of high-performance coatings for civil infrastructure, marine, and transportation sectors.

    Industry compliance standards

    • ASTM D1654 for corrosion resistance in coatings
    • ISO 12944-6 for paint and varnish corrosion protection
    • REACH Annex XVII (EU) - use in coatings formulation
    • China GB/T 25251—2010 for waterborne coating formulation

    Typical usage ratio

    • 3–10% by weight of active amine curing agent composition, adjusted for target cross-linking density and resin type

    Downstream process integration

    • Added after epoxy pre-emulsification, prior to final pH adjustment, under vigorous mixing at 40–60°C

    Final product types

    • Anticorrosive waterborne epoxy topcoats
    • Two-component waterborne epoxy primers
    • Concrete floor protective coatings
    • Waterborne tank linings for marine exposure

    2. Gas Sweetening Additives for Natural Gas Processing

    Operators in gas treatment plants introduce this material as a secondary amine solvent in amine gas treating systems. Its structure enhances CO2 and H2S absorption while reducing corrosion rates compared to conventional amines. It supports operation under high gas loadings and aids in minimizing foam formation, extending system uptime.

    Industry compliance standards

    • ANSI/API RP-521 for pressure-relieving systems
    • US EPA Natural Gas Processing Plant NESHAP
    • GB 50028-2006 Design Code for Gas Sweetening Plants (China)

    Typical usage ratio

    • 5–15% by weight in aqueous amine scrubbing solution, tuned to gas composition and absorber configuration

    Downstream process integration

    • Dosed into primary amine loop during solvent make-up; recirculates through absorber and regenerator towers at 60–120°C

    Final product types

    • Deacidized pipeline natural gas
    • Refined synthesis gas for ammonia plants
    • High-purity methane for LNG production
    • Processed feedstock for petrochemical synthesis

    3. Metalworking Fluid Additive for Corrosion Protection

    We supply this material as a corrosion inhibitor and pH control agent for water-miscible metalworking fluids. Formulators use it to provide persistent surface protection and prevent the formation of rust and scale during machining or grinding. The compound maintains fluid stability, reduces tool wear, and lowers bioactivity in high-shear operations.

    Industry compliance standards

    • ASTM D4627 for corrosion testing of water-based fluids
    • TRGS 611 (Germany) – Hazard regulations for metalworking fluids
    • OEM specifications such as Ford WSS-M2C170-B for metal processing

    Typical usage ratio

    • 0.5–2.5% by weight in concentrate, adjusted according to water hardness, metal type, and fluid performance targets

    Downstream process integration

    • Blended in the concentrate at ambient or mildly elevated temperatures, prior to water dilution and final QA inspection

    Final product types

    • Cutting fluids for high-speed CNC operations
    • Semi-synthetic grinding coolants
    • Emulsifiable rust inhibitors for storage protection
    • Maintenance wash fluids for plant machinery

    4. Intermediate in Pharmaceutical Synthesis (API Manufacturing)

    Pharmaceutical manufacturers utilize this raw material as a polar aprotic solvent and alkylating agent precursor in the synthesis of active pharmaceutical ingredients (APIs). It enables selective aminolysis and controlled side chain modification during multi-step organic synthesis. The compound must meet high purity and trace residual impurity requirements, with lot traceability and validated handling protocols.

    Industry compliance standards

    • ICH Q7 GMP for API manufacturing
    • USP and Ph. Eur. monographs applicable to final product
    • FDA 21 CFR Part 211 for pharmaceutical production
    • Chinese Pharmacopoeia (ChP) for regulated intermediates

    Typical usage ratio

    • 0.8–5.0 molar equivalents per step, defined by reaction stoichiometry and scale of batch synthesis

    Downstream process integration

    • Used during alkylation or amidation steps, added under inert atmosphere with controlled reagent dosing at 20–40°C

    Final product types

    • Antihypertensive drug intermediates
    • CNS-active pharmaceutical precursors
    • Modified beta-lactam antibiotics
    • Specialty bulk APIs for contract manufacturing

    5. Antistatic Agent in Polymer Film Production

    This ingredient functions as an internal antistatic agent for polyethylene and polypropylene films in packaging and electronics applications. Its amine group imparts conductivity, dissipates surface charges, and minimizes dust attraction in end products. Strict material compatibility testing is performed to verify performance at various ambient humidity and temperature conditions, essential for food and consumer electronics films.

    Industry compliance standards

    • EU Plastics Regulation (EU) No 10/2011 for food contact materials
    • US FDA 21 CFR 177.1520 for olefin polymers
    • RoHS Directive for electronics packaging
    • JIS K 6772 for plastic film antistatic properties

    Typical usage ratio

    • 0.1–1.0% by weight in polymer melt, varied according to required surface resistivity and film thickness

    Downstream process integration

    • Metered into the polymer extruder’s dosing unit before compounding and film extrusion at 180–240°C

    Final product types

    • Food packaging films for sensitive products
    • Protective films for electronic components
    • Flexible antistatic packaging wrappers
    • Cleanroom consumable bags

    6. Surfactant Intermediate for Textile Processing Auxiliaries

    This chemical is a building block in the synthesis of amphoteric surfactants used in textile pretreatment and dyeing auxiliaries. It contributes to the formation of molecules with adjustable hydrophilic-lipophilic balance, supporting low-foam wetting, leveling, and dispersing properties. Strict traceability and low toxicity certification are required for products intended for apparel or technical textiles.

    Industry compliance standards

    • OEKO-TEX® Standard 100 for harmful substances in textiles
    • ZDHC MRSL for restricted substances
    • REACH Annex XVII restrictions (surfactant groups)
    • GB 18401-2010 on basic safety for textile products

    Typical usage ratio

    • 5–18% by weight in surfactant synthesis, adjusted to desired HLB value and fabric compatibility

    Downstream process integration

    • Reacted in batch reactors with fatty acids and alkylating agents; product purified and standardized before blending with other auxiliaries

    Final product types

    • Scouring agents for cotton and blended fibers
    • Dispersants for reactive and disperse dyeing
    • Nonionic wetting agents for continuous dyeing ranges
    • Low-foaming textile lubricants for high-speed weaving
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    Certification & Compliance
    More Introduction

    2-[2-(Dimethylamino)Ethoxy]Ethanol: Supporting Advanced Formulations Through Practical Manufacturing

    A Closer Look at 2-[2-(Dimethylamino)Ethoxy]Ethanol

    As a chemical manufacturer with years of hands-on experience developing specialized amine derivatives, we focus on 2-[2-(Dimethylamino)ethoxy]ethanol because of its adaptability and the distinct role it plays in product design. Known by its CAS number 1704-62-7, this product belongs to a class of ether amines valued for both their hydrophilic and lipophilic character. These properties create a bridge for multiple industries, whether the goal is rapid solubilization, stable emulsification, or refined pH control.

    Our output features a typical purity of at least 99%, and we maintain stringent batch controls. Each step, from raw material selection to reactor conditions, is designed to reduce inconsistencies. That’s because performance in real-world applications hinges on limiting trace impurities that can influence end-product stability or function. As a liquid under normal conditions, 2-[2-(Dimethylamino)ethoxy]ethanol offers a practical viscosity, making handling and dosing more efficient on industrial scales.

    Model and Specification Details Drawn from Manufacturing Experience

    We produce 2-[2-(Dimethylamino)ethoxy]ethanol in both drum and IBC formats, aligned with common bulk requirements in downstream synthesis. Practical density values, flash points, and water content remain crucial for safe storage and shipping. Our technicians have observed that trace water levels above 0.2% start to interfere with downstream reactions, especially where moisture-sensitive intermediates are involved. Even small variations in color or odor sometimes reveal minor side reactions, so we monitor these closely to avoid issues in customer manufacturing lines. Over the years, we’ve optimized filtration methods, so our output consistently avoids haze or off-odor, which can point to degradation products.

    Technical users often compare our product to other dimethylamino alcohols, such as N,N-dimethylethanolamine or N,N-dimethylamino-2-propanol. Unlike those materials, the ether linkage in 2-[2-(Dimethylamino)ethoxy]ethanol provides a greater balance between water solubility and compatibility with organic phases. This duality opens opportunities for use as a co-solvent or coupling agent, especially where other simple amines lack solubility or introduce volatility concerns.

    Meeting Challenges in Formulation: Where 2-[2-(Dimethylamino)Ethoxy]Ethanol Fits

    Downstream formulators in coatings, agrochemical concentrates, and textile auxiliaries have turned to 2-[2-(Dimethylamino)ethoxy]ethanol for a reason: its compatibility profile outperforms more volatile or reactive amines. For instance, those building waterborne resins or concentrated agrochemical blends confront issues with phase separation and inconsistent emulsification. Using our product, formulators have reported improved shelf stability and less need for repeated agitation. Our technical team has done side-by-side trials showing that, with the right choice of dispersant, bulk blends containing our dimethylamino ether resist precipitation at both low and moderate temperatures. Years of production feedback underline that not only the purity but also low peroxide content and minimal aldehyde traces keep sensitive systems functioning as intended.

    Many customers look toward this specialty amine for pH regulation in complex mixtures. Compared to the simpler N,N-dimethylethanolamine, 2-[2-(Dimethylamino)ethoxy]ethanol gives a more gradual buffering response thanks to the presence of the ether group. This ensures less rapid pH drift, which can make or break outcomes in pigment dispersions, adhesive formulations, and personal care preparations where enzyme reactivity or color stability matters.

    Real-World Usage: Drawing on Laboratory and Production Insights

    Across several decades, we have seen direct feedback from R&D and production plants. In textile auxiliaries, for example, incorporating this compound as a leveling agent leads to uniform dye uptake, especially on polyester blends. This result doesn’t come down to generic “performance.” The molecular design based on an ether-linked amino group prevents harsh fiber interaction, even under strong alkali conditions encountered during scouring or dyeing. Textile processors who previously struggled with visible streaks reported measurable reductions in reprocessing rates, largely due to the more controlled pH and softer emulsification.

    Resin manufacturers working on alkyds, acrylics, and hybrid systems appreciate this product’s impact on pigment wetting. We collaborate directly with formulators, which has taught us how even slight variations in amine structure can shift pigment dispersion results. Our technical notes, built from years of customer and in-house data, highlight fewer instances of pigment flooding and floating when using our dimethylamino ether compared with more basic amines.

    Behavior Compared to Related Amino Alcohols

    It’s tempting to lump all dimethylamino alcohols into the same bucket, but we’ve built a library of side-by-side production records to show that the differences are significant. With 2-[2-(Dimethylamino)ethoxy]ethanol, there’s less evaporation loss during high-shear mixing, reducing operator exposure and minimizing plant emissions. Process engineers have mentioned lower fume levels compared to more volatile amines like N,N-dimethylethanolamine or triethylamine. This matters where production scale runs in the tens of tons and personnel safety comes into sharper focus.

    Many end-users default to basic solvents for cleaning or coupling but come back after seeing persistent foaming or rapid pH spikes. Our ether amine’s lower volatility and smoother neutralization curve allow for more predictable batch-to-batch performance. In adhesives, this property yields more consistent set times. In coatings, it produces a more uniform gloss and dry film appearance, verified through side-by-side gloss and haze panel testing.

    Innovation and Adaptation in Manufacturing Approach

    Producing high-purity 2-[2-(Dimethylamino)ethoxy]ethanol takes more than off-the-shelf reactors. Our operators follow carefully validated procedures to limit side reactions. Process optimization stems from firsthand troubleshooting — we learned early on that metal catalysts and poorly controlled heating lead to byproducts, affecting both color and sensory quality. Each phase, from amination to etherification, receives strict monitoring, so customers receive a product that works the same for every delivery.

    We constantly revisit best practices based on feedback from sectors outside traditional applications. Not long ago, a customer group working on energy storage materials requested reduced chloride content. We adapted our raw material purification and found that a slight adjustment in neutralization steps offered a measurable decrease. This shared learning cycle keeps us developing alongside our partners, not just selling a chemical but fortifying our knowledge base with “what works and what fails.”

    User Insights Drive Continuous Improvement

    We’ve learned to tune physical properties based on industrial demands. Storage stability, foaming, and odorous volatile content often hinge on more than stated purity. Analytical runs using advanced chromatography have helped us predict how seemingly minor impurity shifts affect finished-store shelf profiles. For example, increased peroxide content, undetectable by simple GC, can trigger paint yellowing or polymer viscosity drop. We regularly communicate this type of insight directly to procurement and technical managers, enabling more predictable product outcomes in demanding applications.

    Handling and transfer on the customer side also teach us what matters in day-to-day use. Our own drum and IBC fill teams track real-world viscosity and freeze/thaw behavior, feeding back these details to R&D. The result: a liquid that resists gelling at moderate cold-storage temperatures, lowering waste rates in distribution channels operating under variable climates. This practical knowledge matters to the efficiency of bulk unloads or multi-site blending.

    Sustainability Perspective: A Manufacturer’s Direct Experience

    Calls for greener chemistry aren’t abstract in our facility. We source raw materials as close to final quality as feasible, reducing extra processing steps and associated waste streams. Our process recycles wash waters and limits the use of non-recoverable solvents. This direct control has slashed our hazardous waste output per ton of product, keeping costs aligned with environmental targets. In practice, working directly with downstream users, we see that a stable, high-purity amine helps extend batch lifetime and cuts down on costly off-spec events, both of which reinforce a facility’s own sustainability metrics.

    During pilot programs with clients seeking more biodegradable surfactant and additive chains, our ether amine’s presence — with its balanced hydrophilic-lipophilic design — has improved downstream biodegradation without introducing extra pollutants compared to aliphatic amines or strongly basic analogues. The cumulative effect is a smaller environmental impact, and fewer regulatory headaches down the road.

    Problem Solving Through Direct Engagement

    Switching amine structures isn’t just a box-ticking exercise. Through our application labs, we have supported customers in addressing incompatibility in their blends. Water-based acrylic paints that showed persistent haze and foam responded positively to partial replacement with our product, leading to clearer films and less gas retention. Similarly, certain agrochemical suspensions, previously plagued with thickening and clogging, displayed better sprayability after reformulation — a result confirmed by repeated field trials and customer cost tracking.

    Production engineers appreciate a supplier that moves past generic quality claims and maintains open files of troubleshooting records. We see every quality control failure as a chance to recalibrate. In one recent instance, a surfactant producer noticed occasional off-odors and shifted shipments back to us for analysis. We pinpointed a subtle contamination, adjusted our filtration at the mid-point distillation step, and resolved the issue — keeping both their customer satisfaction and our continuous improvement cycle strong.

    Summary: Knowledge Built from Continual Use and Improvement

    Our commitment to 2-[2-(Dimethylamino)ethoxy]ethanol grows from experience on the plant floor, in the application lab, and across our client partnerships. This is not a commodity material, but a working piece of thousands of specialized chemistries. It offers distinct handling benefits, delivers measurable performance differences, and gives businesses a way to control pH, improve solubility, and stabilize tricky formulations based on facts found in years of practice — not just certificate of analysis claims. By keeping our process tight and our user insight fresh, we ensure that every shipment represents the full value of real chemical manufacturing knowledge.