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2-(Vinyloxy)Ethanol

    • Product Name 2-(Vinyloxy)Ethanol
    • Alias vinyl cellosolve
    • Einecs 212-226-7
    • 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
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    739210

    Productname 2-(Vinyloxy)Ethanol
    Casnumber 5336-93-8
    Molecularformula C4H8O2
    Molecularweight 88.11 g/mol
    Appearance Colorless liquid
    Density 0.956 g/mL at 25°C
    Boilingpoint 137-139°C
    Meltingpoint -87°C
    Flashpoint 43°C (closed cup)
    Refractiveindex 1.426-1.428 at 20°C
    Solubility Miscible with water
    Smiles C=COCCO

    As an accredited 2-(Vinyloxy)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, 100 mL, with secure screw cap and hazard labeling for 2-(Vinyloxy)ethanol, including chemical and safety information.
    Shipping 2-(Vinyloxy)Ethanol should be shipped in tightly sealed containers, clearly labeled, and protected from heat, ignition sources, and moisture. Comply with all relevant transport regulations (such as DOT, IATA, IMDG), and ensure appropriate hazard labeling, as it may be flammable and reactive. Handle with care during loading and unloading.
    Storage 2-(Vinyloxy)ethanol should be stored in a cool, dry, well-ventilated area away from heat sources, direct sunlight, and ignition sources. Keep the container tightly closed and away from incompatible materials such as oxidizing agents and acids. Store in a designated chemical storage cabinet, and ensure appropriate labeling. Use only containers made from compatible materials to prevent contamination or degradation.
    Application of 2-(Vinyloxy)Ethanol

    Applications of 2-(Vinyloxy)Ethanol in Industrial Manufacturing

    2-(Vinyloxy)Ethanol enables targeted performance and reactivity in a range of specialty and commodity pathways. As producers, we support advanced industries by supplying this raw material for controlled polymerization, crosslinking, and surface engineering. Below are key, real-world industrial applications proven in manufacturing environments.

    1. Reactive Monomer in UV-Curable Coatings

    This glycol ether vinyl monomer performs as a reactive diluent in UV-curable formulation, imparting flexibility and compatibility to acrylate or urethane systems. Its incorporation adjusts viscosity for inkjet, spray, or roll-to-roll application while participating in crosslinking under UV light, ensuring durable, tack-free films required for electronics, optical fibers, packaging, or automotive components. End-use properties such as adhesion, chemical resistance, and printability directly benefit from controlled dosing in elevated-throughput lines.

    Industry compliance standards

    • REACH (EC 1907/2006) registration for monomer use in coatings within EU
    • RoHS Directive 2011/65/EU for electronics sector formulations
    • ISO 9001:2015 certification across formulation, QC, and batch release
    • GB/T 23989-2009 for UV-curable materials in China

    Typical usage ratio

    • 5–25% w/w in UV/acrylate formulations, depending on targeted viscosity and cure speed. Lower ratios maintain hardness; higher ratios enhance flexibility and wettability for ink and adhesive layers.

    Downstream process integration

    • Direct premixing with oligomers and photoinitiators during formulation step
    • In-line blending before dispensing or coating head
    • Acts as reactive co-monomer during photopolymerization exposure

    Final product types

    • Protective films for consumer electronics
    • UV-cured printing inks for food packaging (non-food-contact layers)
    • Decorative coatings for automotive interiors and panels
    • Fiber-optic buffer coatings

    2. Intermediate for Polyvinyl Ether Synthesis

    We deliver 2-(Vinyloxy)Ethanol as a highly pure intermediate to polyvinyl ether resin producers. Its functionality enables controlled cationic polymerization for linear or branched polyvinyl ethers, valuable in adhesives, laminates, and biomedical hydrogels. Selection of comonomers, catalysts, and process temperature enables property tuning such as flexibility, moisture resistance, or biocompatibility. Manufacturers rely on purity control throughout polymerization to achieve predictable molecular weight distribution and reactivity.

    Industry compliance standards

    • 21 CFR §175.105 for adhesives in indirect food contact (U.S. FDA)
    • EN 1400:2013+A1:2014 for child-safe plastics in healthcare products (EU)
    • ISO 10993 family for biocompatibility (medtech use)
    • GMP guidelines as per IPEC-PQG for polymer intermediates

    Typical usage ratio

    • 50–100% w/w feed ratio for homopolymer; 10–40% w/w for copolymers with other vinyl ethers

    Downstream process integration

    • Charged into cationic polymerization reactor, under inert atmosphere
    • Initiator dosing (e.g., BF3 etherate or photoinitiators) with temperature control
    • Direct use or post-polymerization purification before compounding

    Final product types

    • Pressure-sensitive adhesives for tapes and labels
    • Laminating resins for flexible packaging
    • Hydrogel matrices for wound dressings
    • Specialty binders for battery and energy storage applications

    3. Functional Crosslinker for Epoxy Resin Modification

    Epoxy system manufacturers incorporate our monomer for chain-extension or network modification in rigid or impact-modified laminates. Its vinyloxy group reacts during thermal cure, providing sites for further crosslinking or copolymer formation. Where formulations demand lower viscosity, reduced shrinkage, or improved chemical compatibility, 2-(Vinyloxy)Ethanol enables specific adjustment without sacrificing strength. Integration in prepreg, casting, or protective coatings ensures consistent properties from batch to batch.

    Industry compliance standards

    • ASTM D4236 for chemical safety in art materials and public-space coatings
    • IEC 61249-2-21 for halogen-free PCB laminates in electronics
    • UL 94 flammability classifications for thermosets
    • EN 45545-2 for fire safety in railway applications (applies to resin systems in specific regions)

    Typical usage ratio

    • 1–8% w/w based on total resin system, adjusted for crosslink density and mechanical target

    Downstream process integration

    • Blended into resin during initial mixing at the compounding stage
    • Dosed with hardener for two-component systems
    • Cured via elevated temperature or chemical catalyst during mold or coating application

    Final product types

    • PCB base laminates for electronics
    • Protective concrete floor coatings
    • Construction adhesives for structural bonding
    • Fiber-reinforced composite parts for automotive or aerospace

    4. Surface Modifier in Silane Coupling Agent Production

    Chemical manufacturers use this monomer as a synthetic building block for formulating vinyloxy-functional silane coupling agents. Such silanes improve pigment dispersion, adhesion between inorganic fillers and polymers, and moisture resistance in high-performance sealants or composites. The process attaches vinyloxyethanol via hydrosilylation or esterification, enabling flexible molecular structures that bridge diverse material phases. Our supply supports scale-up with tight impurity control for sensitive downstream processes.

    Industry compliance standards

    • ISO 17386:2010 for adhesion promoters in rubber and plastics
    • ASTM C920-18 for sealant formulations in building and construction
    • GB/T 23261.2-2009 for silane coupling agent quality in China
    • REACH registration for specialized silanes

    Typical usage ratio

    • 20–60% molar ratio with silane backbone, depending on targeted end-group density and application requirements

    Downstream process integration

    • Reacted with trialkoxysilane or alkysilane intermediates by hydrosilylation or etherification
    • Product purification and quality validation for high-purity coupling agent output
    • Post-reaction blending into primer or masterbatch systems by downstream compounders

    Final product types

    • Adhesion promoters for glass-filled thermoplastics
    • Water-resistant silicone sealants for construction
    • Pigment dispersion aids for coatings and inks
    • Primer additives for tire and engineering rubber production

    5. Precursor for Pharmaceutical Intermediate Synthesis

    Pharmaceutical manufacturers require 2-(Vinyloxy)Ethanol as a protected ethylene glycol equivalent in multi-step syntheses. Its protected vinyl moiety resists side reactions, supporting selective transformations before deprotection. Use cases include targeted derivatization for custom drug intermediates or as a linker moiety for prodrug synthesis. Our product supports strict traceability, impurity analysis, and documentation for validated pharmaceutical environments pursuing scale-up.

    Industry compliance standards

    • ICH Q7 GMP for active pharmaceutical ingredient manufacturing
    • Ph. Eur. and USP monograph compliance as applicable to finished intermediates
    • FDA 21 CFR Parts 210 and 211 for finished drug facility controls
    • ALCOA+ data compliance for raw material traceability and batch documentation

    Typical usage ratio

    • Varies by process route; commonly 0.8–1.2 molar equivalents relative to coupling partner or protecting group requirement

    Downstream process integration

    • Dosed during initial or mid-stage organic synthesis step
    • Vinyl group maintained or selectively removed during later deprotection/functionalization
    • Integrated with automated process control and QC release on every batch

    Final product types

    • Drug intermediates for cardiovascular API synthesis
    • Linker segments in oligonucleotide or polymeric drug vehicles
    • Functionalized molecules for clinical research compounds
    • Targeted molecular probes for diagnostic applications
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    Certification & Compliance
    More Introduction

    2-(Vinyloxy)Ethanol: A Practical Introduction from the Manufacturer’s Bench

    Reliable Performance Begins at the Source

    Working hands-on with 2-(Vinyloxy)ethanol day in and day out, we’ve developed an appreciation for just how pivotal such niche intermediates can be. This colorless to pale yellow liquid, known by its CAS number 1188-38-1 and molecular formula C4H8O2, steps into production spaces where flexibility and functionality mean progress. Handling this material from raw feedstocks to tightly sealed drums, our team has witnessed customers—both small start-ups and large, established polymer plants—lean on it to push research and achieve reliable, repeatable results. The molecular design of 2-(Vinyloxy)ethanol brings unique advantages for anyone focused on efficient synthesis and smooth downstream integration.

    What Sets Our 2-(Vinyloxy)Ethanol Apart

    After years of direct manufacturing, you learn that impurity profiles and consistency affect nearly every outcome in formulation science. Our product is produced at scale using well-controlled, continuously optimized processes. Each batch is validated for purity with methods drawn from both standard and in-house, real-world testing. Trace byproducts, often left behind by less rigorous manufacturing, fall well below industry benchmarks in our material. Typical specifications include purity above 98%, water content tightly held under 0.1%, and minimal color, ensuring compatibility for sensitive reactions. These aspects matter tangibly—each deviation can spell wasted catalyst, batch rework, or ambiguous quality signals further down the customer’s line.

    Customer requests have shaped continuous improvements on our part. Some prefer increased purity or alternatives on stabilizer content to match specific end uses. With direct feedback from processing floors and R&D benches, we’ve refined how we filter, distill, and package the product. Handling hundreds of metric tons each year, scaling up for larger runs has allowed us to tighten controls without letting slip the fine details smaller users rely on.

    Clear Chemical Features, Practical Benefits

    2-(Vinyloxy)ethanol stands apart from many other vinyl ethers and traditionally used glycol derivatives. Its dual character—a reactive vinyl ether moiety paired with a primary alcohol group—gives formulators access to a set of transformations others just can’t match. The vinyl group brings ready engagement in copolymerization and crosslinking reactions. The alcohol group confers solubility in water and common organics, along with the possibility for further coupling or etherification. In practice, many customers have migrated to this material from butyl vinyl ether or ethylene glycol-based compounds after seeing improved incorporation in their reaction matrices.

    Our direct manufacturing access places us close to the practicalities—raw material volatility, reactor run yields, and purification bottlenecks. Because of this, we’ve seen formulators get excited over the way 2-(Vinyloxy)ethanol achieves faster, cleaner vinyl addition under mild conditions compared to relatives like isobutyl vinyl ether. The lack of heavy byproduct formation means fewer headaches during purification. Water compatibility often enables simplified post-reaction workup, especially compared to hydrophobic alternatives.

    Usage in Modern Industry: Experience from the Floor

    Across our partners, we’ve seen 2-(Vinyloxy)ethanol adopted in diverse settings. Polymer chemists prize its use in preparing specialty copolymers with tailored flexibility, solubility, and reactivity. Coatings developers draw on it to introduce pendant alcohol functions into waterborne acrylate latexes, boosting crosslinking after application for better weather resistance. In our own pilot-scale trials, the addition of this compound into UV-curable resin systems shortened cure times while heightening clarity and adhesion in finished films.

    Customers in the pharmaceutical and fine chemical world reach for 2-(Vinyloxy)ethanol when performing complex etherification or as an orthogonal protecting group. Thanks to its clean reactivity, medicinal chemists have found it a dependable synthon in building up drug intermediates or introducing masked hydroxyl groups. Feedback from formulation teams consistently spotlights its value as a solubilizer or coupling agent in pigment dispersions and personal care solutions.

    Producing and delivering tons of 2-(Vinyloxy)ethanol each month, we’ve accumulated a catalogue of real-world feedback. Whether it’s a customer seeking higher scale, tighter impurity limits, or different packaging—5L laboratory containers up to 200L drums—we tune our output to real projects. Familiarity with the intricacies of shipping, regional compliance, and safe handling ensures our customers place trust in repeat orders.

    Comparisons that Matter: Understanding the Real Differences

    Others in the market offer vinyl ethers with varying chain lengths, branched structures, or added functionalities. We’ve produced and characterized them in parallel with 2-(Vinyloxy)ethanol. The most pronounced differences emerge not in a datasheet but during actual handling and downstream chemistry. For example, isobutyl vinyl ether brings higher volatility and often demands lower storage temperatures. Ethylene glycol vinyl ether lacks the same ease of incorporation into waterborne systems, limiting its utility for certain coatings or adhesives. Customers frequently tell us that instability or rapid peroxide formation with lower-grade materials from third parties has complicated their attempts to scale projects.

    Drawing from our own pilot development runs, we’ve validated that 2-(Vinyloxy)ethanol offers a sweet spot—moderate boiling point for easy process management, compatibility with both polar and non-polar reactants, and an impurity profile which doesn’t muddy later analyses. For users seeking reliable co-polymerization and clean alcohol functionality in a single molecule, this profile shortens lead times, minimizes process tweaks, and supports reproducibility across multiple campaigns.

    Safety, Sustainability, and Keeping Things Practical

    Safety has always been our first concern. Decades of incident-free production have come from keeping a watchful eye on each step. Knowing that 2-(Vinyloxy)ethanol can form peroxides when improperly stored, we ship exclusively in tightly sealed, inhibitor-stabilized containers. Our own on-site labs verify that each outgoing lot meets not only specification but also freshness and long-term performance standards, responding to climate and transport realities in our largest markets. Internal training keeps our production crews confident and safe, with inhalation and dermal risk mitigated by proper personal protection and engineering controls.

    On the sustainability side, we’ve reduced waste by recycling mother liquors and using closed-loop distillation apparatuses. Solvent and raw material selection for reaction routes favor low-toxicity options wherever possible. Resource allocation, from utilities to packaging, is optimized to minimize environmental footprint. Customers find our product not only meets chemical criteria but also passes regulatory and end-user sustainability checks in jurisdictions with tightening green mandates.

    Supply Resilience and Partnering for the Long Haul

    Raw feedstock supply has grown more challenging over the past years, especially as global logistics became unpredictable. We’ve stayed ahead by cultivating multiple supply lines and investing in local raw material storage. Direct sourcing from reliable partners, some relationships built over decades, shields our customers from out-of-stock events and wild price swings. Our approach focuses on transparency and forward planning—production schedules are mapped months in advance with room to flex for urgent or development-phase orders.

    Because we control every stage, from initial synthesis to delivery, troubleshooting and quality interventions remain quick. When a batch fails to meet threshold specs, immediate analysis and corrective runs maintain consistency across production cycles. We keep archived samples and full documentation for every lot, allowing us and our partners to track not just what was made, but how, and when. This audit trail becomes invaluable during troubleshooting or scale-up into new product development, building a foundation of trust many years out.

    Feedback Loops: Adapting Through Real-World Use

    Insights from the field have guided countless adjustments—both in product formula and logistics. Industrial users have alerted us to foaming tendencies in certain reactors; our response was to modify post-synthesis washing steps to reduce surfactant-like residues. Other customers, focused on high-throughput automated lines, requested caps and seals tailored for robotic handling. Each improvement makes future batches a little more reliable and a bit more user-adapted.

    Several research partners shared that minor impurities, imperceptible during benchtop work, emerged only during scale-up or long-term storage. Collaboration let us trace these back to specific dehydration or distillation stages, prompting tighter monitoring and improved process cut points. Learning from practical applications has kept our product ahead in purity and ease-of-use, all without sacrificing throughput or cost controls.

    Expanding Uses on Today’s Innovation Frontiers

    Polymer science remains one of the hottest zones for 2-(Vinyloxy)ethanol. New architecture in energy storage membranes and high-toughness coatings both rely on this intermediate as a modular building block. Our manufacturing lines often cater to research-scale needs—5 kg containers for method validation—as well as drum lots for pilot lines running continuous polymerization or resin blending. Direct feedback from these pioneering efforts informs our process tweaks and new product iterations.

    Start-up groups and blue-chip labs alike often come to us requiring custom stabilization regimens or alternate solvent dilutions. Our direct process control means we can tailor inhibition and delivery to match exposure durations and downstream compatibility, sidestepping common decomposition or contamination events that dog less flexible suppliers. These real-world pressures have not only improved our process controls but pushed us to explore new grades and prepping methods—sometimes working side by side with partners on the next project launch.

    Regulatory and Quality Demands—No Room for Guesswork

    Compliance continues to grow more intricate as more countries tighten oversight over reactive intermediates and potential environmental hazards. Our QA teams work closely with regulatory bodies to ensure every shipment clears not only material safety and purity lines, but also required documentation for customs and downstream reporting. Exporting into European, North American, and Asian markets, we’ve adapted Safety Data Sheets and labels to each, reducing hang-ups at borders and creating smoother onboarding experiences for technical purchasers.

    Auditors and enterprise partners regularly request traceability for every kilogram produced. Our systems respond with archived COAs, process histories, and full batch test documentation stretching back years. Challenges from new regulations—like requirements for reduced residual solvents or new purity bands—are met with process upgrades and tighter in-process controls.

    Real Manufacturing Means Partnership and Problem-Solving

    Actually making 2-(Vinyloxy)ethanol, as opposed to moving others’ material around, leads to responsibility at every level. Customers depend on not just a chemical’s specs, but also its consistent performance in their most demanding programs. Our on-site engineers, analysts, and logistics staff communicate daily, trading updates on quality or customer requests. This environment has fostered steady improvements and innovative approaches born from real challenges rather than theoretical discussion.

    Time and again, feedback reinforces one message: quality is built, not simply measured. Production teams know it, technical sales hears it from labs and line operators alike. From the vantage point of actual manufacturing, every drum carries with it the commitment made to the next user's experiments or their full commercial runs. This responsibility informs every decision, from raw material selection to plant operation schedules.

    Looking Forward: Meeting the Evolving Needs of Chemicals and Materials Science

    R&D hasn’t stopped, and neither have our investments in scale, quality, and flexibility. Advancements in block copolymers, high-performance adhesives, and specialty surfactants all draw on the versatility of 2-(Vinyloxy)ethanol. Whether the challenge is reducing trace byproducts, providing made-to-order run volumes, or delivering on ever-tightening sustainability targets, our track record in this space offers a solid foundation for tomorrow’s solutions.

    Working hand-in-hand with chemists, process engineers, and purchasing teams means we keep refining both product and approach. The end result is a chemical that delivers not just on theoretical advantages, but with the day-to-day reliability, pack-to-pack sameness, and quick support that only comes from a true manufacturing partner. Our history with 2-(Vinyloxy)ethanol sets us up for new challenges, new innovations, and longer, more productive partnerships with every new customer or application.