|
HS Code |
975336 |
| Chemicalname | Diethylene Glycol Divinyl Ether |
| Casnumber | 764-99-8 |
| Molecularformula | C8H14O3 |
| Molarmass | 158.19 g/mol |
| Appearance | Colorless liquid |
| Boilingpoint | 213-215°C |
| Density | 1.026 g/cm3 at 20°C |
| Refractiveindex | 1.453 at 20°C |
| Flashpoint | 97°C (closed cup) |
| Solubilityinwater | Miscible |
| Vaporpressure | 0.2 mmHg at 20°C |
As an accredited Diethylene Glycol Divinyl Ether factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Diethylene Glycol Divinyl Ether is packaged in a 500 mL amber glass bottle with a sealed cap and clear hazard labeling. |
| Shipping | Diethylene Glycol Divinyl Ether should be shipped in tightly sealed containers, protected from light, heat, and moisture. It must be clearly labeled as a flammable liquid and handled according to relevant hazardous material regulations. Ensure proper ventilation during transport, and segregate from oxidizers and strong acids. Follow all applicable local, national, and international regulations. |
| Storage | Diethylene Glycol Divinyl Ether should be stored in a cool, dry, well-ventilated area away from heat, sources of ignition, and direct sunlight. Keep the container tightly closed and store away from strong oxidizing agents and acids. Use appropriate chemical-resistant containers and avoid prolonged exposure to air and moisture, as this can promote degradation or polymerization of the substance. |
Applications of Diethylene Glycol Divinyl Ether in Industrial ManufacturingWe supply Diethylene Glycol Divinyl Ether directly from our production facility to key industrial sectors, supporting advanced synthesis and specialty polymer applications. Below, we highlight primary downstream fields utilizing this ether and the critical role it plays in each manufacturing process. 1. UV-Curable Ink and Coating FormulationsPrinting ink and coatings producers rely on this ether as a reactive diluent in UV-curable systems, leveraging its high reactivity and low volatility. It improves flow, surface leveling, and curing speed in acrylate-based inks and varnishes for plastic, paper, and metallic substrates. Adjustments to concentrations allow precise control over viscosity, shrinkage, and mechanical properties, enabling high-speed printing and coating lines to maintain consistent quality standards in fast-paced production environments. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Dental and Medical Device Resin SystemsMedical manufacturers incorporate Diethylene Glycol Divinyl Ether into light-curable resin systems for dental restoration, prosthetics, and surgical guides. It offers superior handling properties and low shrinkage during curing, especially when processed in precision additive manufacturing or molding. The material facilitates rapid set times and high transparency, essential for clinical success and efficient device fabrication. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Polymer Synthesis for Adhesive IntermediatesAdhesive manufacturers use this ether in the synthesis of functional oligomers and polymers, particularly in pressure-sensitive and structural adhesive formulations. Its divinyl functionality enables controlled crosslinking, resulting in tailored adhesion, cohesive strength, and flexibility. Resin producers benefit from greater stability and longer open times in assembly operations critical to automotive, electronics, and construction applications. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Crosslinking Agent in Waterborne Polymer EmulsionsProducers of waterborne polymers integrate this ether as a crosslinker to enhance mechanical strength, water resistance, and heat stability in latex or emulsion systems. It reacts with copolymerizable monomers such as acrylates or vinyl acetates, especially in architectural paints, nonwoven binders, and technical textile coatings. Controlled addition enables formulators to achieve precise networking during polymerization and subsequent film formation, supporting extended performance in end-use environments. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
5. Modifier for High-Performance Optical Polymer MaterialsSpecialty polymer producers employ our ether to enhance the flexibility and UV-resistance of transparent sheets, optical fibers, and molded lenses. Its incorporation into copolymerization routes enables manufacturers to finely adjust refractive index and cut haze in optical-grade plastics. Careful dosing ensures mechanical ductility without compromising clarity, meeting strict industry quality and safety controls. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive Diethylene Glycol Divinyl Ether prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.
We will respond to you as soon as possible.
Tel: +8615371019725
Email: admin@sinochem-nanjing.com
Flexible payment, competitive price, premium service - Inquire now!
We manufacture Diethylene Glycol Divinyl Ether with the level of care born from decades of direct experience in the field. Our process relies on consistent control, high-purity raw materials, and tight attention to every reaction parameter. This product does not receive the same level of industry discussion as some ethers, but the value it brings to polymer synthesis and specialty chemistry keeps it in steady demand. Our model delivers a purity of over 98% with residual water content controlled below 0.1%. Rigorous distillation assures reliability in both physical and chemical properties batch after batch.
Chemists and technical experts at our facility have witnessed firsthand the impact of even minor impurities in vinyl ether products on sensitive reactions. Vinyl ethers play a critical role in cationic polymerizations, and any trace impurities can shift molecular weights, alter polymer branching, or destabilize storage. By carefully purging contaminants, we ensure steady yields and predictable results in your end-use. We track every lot from raw material to final packaging, reducing the possibility of cross-contamination or degradation that sometimes undermine quality in lower-grade alternatives.
Our product stands out for researchers and industrial chemists advancing UV-curing coatings, adhesives, dental impression materials, and other settings where rapid polymerization is required under mild conditions. The two vinyl functional groups enable crosslinking and high reactivity compared to monovinyl ethers. In UV-curing resins, this structure results in strong networks and high-speed cure rates, reducing material consumption and downtime. Solubility and flexibility in formulating prove critical; the diethylene glycol backbone imparts some hydrophilic character, meaning blends disperse more smoothly in both polar and non-polar systems.
We see repeat business from manufacturers designing photoresists and microelectronic coatings. Tight control over double bond concentration translates to finer resolution in imaging and superior etch resistance. In dental technology, our Diethylene Glycol Divinyl Ether is chosen because it delivers elasticity and a soft bite impression, resisting shrinkage and crumbling during multi-step casting processes. You rarely read testimonials about base raw materials, yet our clients return because robust process controls mean they waste less resin, fight fewer rejects, and hit yield targets more consistently.
At larger batch scale, end-users report smooth metering into reactors thanks to our handling characteristics and low viscosity. While vinyl ethers, as a class, volatilize readily, our product’s higher molecular weight and diethylene glycol structure help reduce emissions during processing. Even in plants lacking advanced vapor containment, loss rates stay low and work environments remain safer. Anyone who has dealt with off-gassing or strong odors in the past will recognize the significance of that improvement.
Applying our Diethylene Glycol Divinyl Ether in adhesives and laminates, formulators note a meaningful increase in flexibility without sacrificing mechanical strength. Older vinyl ethers don’t balance plasticizing effects with network integrity as cleanly. Our formulation data demonstrates that producers can lower filler or plasticizer content to save costs, without giving up on peel strength or pot life. This allows for denser packing in adhesive joints, which is essential for electronics encapsulation and high-frequency communications.
Differences between Diethylene Glycol Divinyl Ether and more basic products, like standard vinyl ethers or ethylene glycol derivatives, run deeper than headlining specifications suggest. Many off-the-shelf vinyl ethers, especially monocyclics, offer limited functionality for crosslinking chemistry. Diethylene Glycol Divinyl Ether’s divinyl structure intensifies reactivity, enabling chain extension and branching that monocyclic ethers simply cannot match. You see this edge in the physical resilience of cured films and the gel content of elastomers produced with this monomer.
Standard ethylene glycol ethers, lacking vinyl groups, play a role as solvents but do not participate in the polymer backbone. This distinction proves crucial for any application seeking to build three-dimensional networks, as opposed to simple plasticization or solvency. We focus on delivering a product with well-matched boiling and flash points for real-world reactor conditions—parameters that often get overlooked but can cause safety incidents or unexpected shutdowns in less stable alternatives.
The R&D team in our facility remains deeply engaged with customers. When the need for low-shrinkage, flexible, and yet tough cured materials surfaced in advanced composites fabrication, we tailored the moisture and peroxide levels in our Diethylene Glycol Divinyl Ether over a series of pilot plant campaigns. Laboratory data showed that gels formed rapidly, achieved full cure, and avoided trapped microbubbles, which previously plagued in-house tests using commodity or repackaged monomers. We adapt processes in response to customer feedback, and those customizations eventually become part of standard production.
Manufacturers in coatings and electronics appreciate the ability to receive product pre-blended with inhibitors or stabilizers, reducing the labor required at their own sites. By investing in agitation, inert gas blanketing, and continuous flow distillation, we meet requests for both bulk and specialty-scale shipments with shelf life exceeding twelve months under proper storage. Older products lack this flexibility and forced customers to design around off-spec or unstable lots, but our approach streamlines their transition from pilot to commercial volume production.
Direct customer conversations highlight practical concerns: how to prevent premature gelation, minimize odor, avoid blistering, and control exotherms in large-scale curing. Our Diethylene Glycol Divinyl Ether answers each of these points through process choices. Extremely low peroxide content limits runaway initiation, and ongoing batch sampling verifies inhibitor level before every delivery. Clients integrating this monomer into new processes report higher acceptance rates and less downtime cleaning reactors of fouled material.
In adhesive compounding, the ability to produce clear, non-yellowing elastomers often hinges on avoiding trace acids and colored byproducts. We maintain strict neutralization and filtration protocols, which pays dividends for packaging and electronics segments. Working with us, formulators have transitioned away from less stable aliphatic ethers, dropping rejection rates for discoloration or plain volatility. Where regulatory constraints mandate low-VOC or low-residual monomers, our high-purity standard simplifies validation, since test results for extractables and leachables repeatedly stay well within allowable limits.
Every batch reflects our focus on minimizing environmental impact. Diethylene Glycol Divinyl Ether contains no halogens and burns with low soot, which matters for incineration or accidental release scenarios. Lower vapor pressure during transfer improves containment, and our closed-loop packaging design keeps emissions within regulatory thresholds. In the past, we have switched suppliers and even revised our synthesis methods to replace more hazardous solvent steps, cutting hazardous waste generation by over 60%. This shift not only streamlines compliance—it also addresses safety concerns raised directly by workers and our industrial buyers.
Worker exposure risks receive daily attention. Following up on client audit requests, we set up continuous fume monitoring and upgraded all PPE guidelines for personnel handling acrylates, vinyl ethers, and similar compounds. Onsite training and simulated leak drills help prevent mishandling, while tank-level sensors prevent overfill and keep vapor emissions far below target levels. Our process improvements, verified by customers touring our plant, reflect industry-leading practice in controlling exposure to volatile organics of all types.
Feedback from other manufacturers implementing our Diethylene Glycol Divinyl Ether covers a wide spectrum. In flexible UV-curing floor coatings, the product delivers quick, tack-free cure with high mar resistance. Electronics producers rely on its dual reactivity for encapsulating delicate circuit assemblies, ensuring both insulation and durability at elevated service temperatures. In academic research, teams pioneering soft lithography have published on the product’s ability to create submicron-resolved stamps, outperforming lower-purity or single-vinyl-group analogs in image transfer.
Packaging suppliers searching for safer, high-speed sealants find our monomer boosts both bond strength and speed to handling. With less shrinkage, substrate distortion drops, especially when working with thin films or heat-sensitive layers. End-users report lower reject counts, which we attribute not only to our purity metrics but the controlled inhibitor level and absence of copper, acid, or peroxide trace contaminants that often sneak into bulk intermediates sourced elsewhere.
Manufacturers now face much tighter quality standards and supply chain transparency requirements. Each drum or tote shipped is labeled with full traceability and backed by testing reports from our in-house analytical lab. Customers cite confidence in quality as a deciding factor—many prefer dealing directly with us as a primary source, instead of relying on third-party distributors who can introduce uncertainty through added storage and possible relabeling. The data shows a measurable reduction in complaint rates and product recalls versus materials moving through indirect channels.
Beyond paperwork and certifications, value comes from clear communication and willingness to customize. Some downstream users want higher viscosity grades for specialty printing inks. Others have implemented continuous flow production lines that only accept material within narrow temperature-handling windows. Our technical chemists and production schedulers work directly with these partners, delivering tailored product specs, staggered shipments, or adjusted stabilizer packages. This hands-on approach avoids production headaches and helps customers focus on their end goals—not troubleshooting raw material fluctuations.
Research continues to uncover applications beyond traditional resin systems. Start-ups in bioprinting and medical devices come to us seeking small-lot, ultra-high-purity diethylene glycol divinyl ether to enable living cell encapsulation for soft tissue engineering. The product’s low toxicity, hydrophilic behavior, and reactive vinyl groups expand what molders and 3D-printers can achieve, particularly when crosslinking must occur under mild, cell-friendly conditions.
Chemical entrepreneurs innovating in sustainable building products utilize the monomer’s fast cure and resilience in composites with bio-based polymers. We partner closely with their teams to reduce the use of toxic co-monomers by fine-tuning our vinyl ether’s reactivity profile. Some are removing halogenated flame retardants altogether, relying instead on our clean-burning monomer combined with mineral fillers to reach new environmental benchmarks. The knowledge built from commercial production cycles feeds directly into these innovation efforts.
Drawing on our storied experience in chemical manufacturing, we view Diethylene Glycol Divinyl Ether as more than a commodity. Our approach starts with careful synthesis, extends through rigorous quality assurance, and ends with personalized customer support. Visitors to our plant see real-world investments in safety, environmental performance, and technical service, translating to peace of mind for every downstream user. Whether advancing high-speed UV curing, reliable adhesives, or emerging technologies in healthcare and electronics, the benefits of a well-made, trustworthy Diethylene Glycol Divinyl Ether remain clear. Too many supply headaches, performance mismatches, and waste occur when quality takes a back seat. Our commitment is to remove guesswork and sore spots, creating the space for your own innovations to thrive.