| HS Code | 843994 |
| Product Name | Polyethylene Glycol Mono Allyl Ether HMA-20Z |
| Chemical Formula | C7H14O3 |
| Molecular Weight | 146-347 g/mol (depending on PEG chain length) |
| Appearance | Colorless to pale yellow liquid |
| Odor | Mild |
| Purity | ≥ 98% |
| Solubility | Soluble in water and most organic solvents |
| Boiling Point | Approx. 210°C (varies with chain length) |
| Density | 1.05 g/cm³ (at 25°C) |
| Ph | Neutral (6.0-7.5, 1% in water) |
| Cas Number | 27274-31-3 |
| Functional Group | Allyl ether group |
| Hydroxyl Value | Approx. 95 mg KOH/g |
As an accredited Polyethylene Glycol Mono Allyl Ether HMA-20Z factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The chemical is packaged in a sturdy 25 kg blue HDPE drum, with a secure screw cap and clear product labeling for identification. |
| Container Loading (20′ FCL) | Container loading for Polyethylene Glycol Mono Allyl Ether HMA-20Z (20′ FCL): 16MT in 160 drums (200kg/drum), securely palletized. |
| Shipping | **Polyethylene Glycol Mono Allyl Ether HMA-20Z** is securely shipped in sealed, high-density polyethylene drums or containers, typically with net weights of 25 kg or 200 kg. Each container is clearly labeled, ensuring safe handling and preventing contamination. The product is transported as per standard regulations for chemical safety and environmental protection. |
| Storage | Polyethylene Glycol Mono Allyl Ether HMA-20Z should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area. Keep it away from heat, open flames, and direct sunlight. Avoid exposure to moisture and incompatible substances such as strong oxidizers. Store at room temperature and ensure containers are clearly labeled to prevent accidental misuse or contamination. |
| Shelf Life | The shelf life of Polyethylene Glycol Mono Allyl Ether HMA-20Z is typically 12 months when stored in a cool, dry place. |
Our proprietary Polyethylene Glycol Mono Allyl Ether HMA-20Z serves as a functional monomer and specialty intermediate in several advanced manufacturing sectors. Below, we outline main industrial applications where our product enables process innovation, technical compatibility, and certified output quality throughout global value chains.
Leading concrete admixture manufacturers incorporate HMA-20Z as a macromonomer for synthesizing comb-type polycarboxylate ether (PCE) superplasticizers. Its controlled molecular structure improves water reduction, dispersion, and workability without sacrificing setting time or mechanical performance of finished concrete. Expert formulation teams adjust the ratio of mono allyl ether according to target flow properties, compressive strengths, and specific regulatory requirements, achieving optimal admixture integration in infrastructure and precast concrete projects.
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Specialty surfactant manufacturers use HMA-20Z to synthesize polymerizable surfactants (surfmers), which enhance latex particle stability in emulsion polymerization. The mono allyl ether group enables covalent bonding to latex polymer backbones, creating emulsifiers that prevent migration and foam formation in paints, adhesives, and coatings. Formulators set copolymerization ratios based on polymerization temperature, latex particle size, and desired surface activity levels.
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Performance coatings and inks producers select HMA-20Z as a hydrophilic chain extender in UV-curable oligomer production. Its PEG backbone improves wetting and flow, while the allyl moiety enables crosslinking under UV irradiation. The polymer chemist regulates the degree of functionalization depending on target viscosity, film flexibility, and water uptake for end-use in inks and clear coatings with regulatory compliance for industrial and packaging applications.
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Medical device and hydrogel dressing manufacturers employ HMA-20Z as a hydrophilic macromonomer when formulating crosslinked hydrogel matrices for wound dressings, drug delivery, and diagnostic pads. Its ether and allyl functionalities allow controlled copolymerization with acrylic or methacrylic acids, producing hydrogels with high water retention and targeted release profiles. Quality teams calibrate its input ratio to achieve biocompatibility and mechanical resilience, essential for regulated healthcare applications.
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Competitive Polyethylene Glycol Mono Allyl Ether HMA-20Z prices that fit your budget—flexible terms and customized quotes for every order.
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Polyethylene Glycol Mono Allyl Ether HMA-20Z stands out because it reflects years of direct experience in producing high-purity, reliable performance intermediates. As a chemical manufacturer rooted in practical application, our interest isn’t just in repeatable lab results or theoretical advantages. We tune our production line for consistent, on-spec batches that can be trusted by downstream users who recognize quality by how a product performs on their own production floor.
HMA-20Z represents the combination of a well-developed synthesis route, overseen daily by a seasoned team mindful of both yield and impurity control. Strict batch-to-batch scrutiny comes not just from in-house quality standards, but also from persistent feedback cycles—the type that only develops through years of active partnerships with surfactant formulators, resin developers, and performance material companies. Every drum, every ton interacts with real-world bottlenecks and breakthroughs.
This product doesn’t come from an off-the-shelf recipe. PEG Mono Allyl Ether HMA-20Z typically carries a PEG chain centered around 20 ethylene oxide units—giving it its numerical identifier. The chain length matters because it shapes both water solubility and the balance between flexibility and durability in polymer synthesis. The precise allyl functional group gives users a reactive site suitable for a range of synthesis reactions, especially in the growing field of specialty polymers and advanced surfactant systems.
Molecular weight tightness is a central advantage with HMA-20Z. The range limits unwanted side reactions and sidesteps a common pitfall in this family: the tailing of properties due to broad PEG distribution. Inconsistent molecular weight causes headaches in bulk polymerization. That creates knock-on effects—variation in product performance nearly always traces back to input consistency.
In competitive chemical production, some focus on volume. We focus on choosing raw PEGs with low aldehyde content, fresh allyl chloride, and running controlled EO addition reactions. If the reaction drift sets in, or minute contaminants sneak past, the batch quality suffers and partner plants downstream report performance loss or serial troubleshooting. We know this through hands-on experience with customers who bring us their problems and expect more than theoretical solutions.
Years back, a customer flagged recurring microgels during polymerization—a problem traced directly to broad PEG distribution and trace oligomers. By tightening molecular slicing and eliminating subpar reactants, we cut those issues off and saw near-immediate improvement in their plant yields. We invest in those plant trials, and in developing open communication where customers test actual material and report back, instead of relying on abstract certificates.
Our HMA-20Z isn’t just a catalog entry. It sees action most commonly in three primary domains: high-performance polyether resins, specialty surfactants, and advanced coatings. When resin suppliers look to boost flexibility, hydrophilicity, or add precise functionality, the mono allyl ether site becomes the indispensable handle. Its allyl end group adds versatility to cross-linked structures, making it relevant in UV-cured systems, especially where clarity and flexibility are both essential.
Surfactant producers come to us for the unique balance of hydrophilic PEG units tethered to a functional anchor. This combination allows formulators to push the boundaries of detergency and emulsification, tuning performance in laundry, personal care, or industrial cleaning products. Here, small differences in ether chain length or impurity carryover can turn a promising development into a failed formulation. Our process keeps those variables tight, making HMA-20Z the backbone in several name-brand blends.
Coatings specialists see value in allyl functional groups. Adding HMA-20Z to a backbone means tunable films that resist cracking without losing transparency or elasticity. Real feedback from customer lines has steered our fine-tuning: less by theoretical data, more by measurable improvements in uncoated substrate adhesion or reduction of haze in acrylics and polyurethanes. Our own trials reinforced what our partners noticed in the field—consistent batch quality builds predictable product performance longer term.
Differences among mono allyl, mono methyl, and mono butyl ethers of PEG go deeper than functional group tweaks. In hands-on work, these subtleties echo through the reaction profiles, final performance, and ease of incorporating downstream. Too many users lump "PEG ethers" together and run into repeat mistakes: unreacted materials, loss of reactivity, unwanted side-chain aggregation.
With the allyl group in HMA-20Z, polymer chemists gain access to unique click chemistry and radical addition routes not possible with methyl or butyl variants. The reactivity is both more predictable and tunable. For UV-crosslinking especially, the mono allyl ether structure introduces branching or grafting points at much lower activation energy, which speeds up curing and improves control over polymer architecture. These features show most clearly in customer testimonials where other ethers simply can't create the targeted networks or control mechanical properties.
Impurity profile is another overlooked differentiator. We make HMA-20Z in a closed, monitored reactor sequence with repeated in-process checks for unreacted PEG and hydrolyzed byproducts. Over the years, we’ve learned that neglect at this phase seeds long-term problems: lower shelf stability, discoloration in finished parts, or even reduced biocompatibility for sensitive applications like personal care or food processing aids. By understanding intimate details of each step, from EO addition through allylation and purification, we turn out product ready for direct integration.
Other generic ether products may boast similar PEG numbers but lack the same tight band of molecular weights or purity. This matters in real-world production where product loss, yield drops, or costly troubleshooting can trace back to such overlooked spec drifts.
We’ve seen first-hand that large-volume users feel the impact of minor variations at ton scale. A batch with contamination just over spec creates hundreds of kilograms of rework, wasted labor, and sometimes, whole runs that go out as off-spec. We see less scrap, fewer process stoppages, and faster line changes in plants supplied with our HMA-20Z.
Quality certifications mean nothing if the actual product in tanks or storage drums doesn’t match the certificate. We put attention to spec repeatability not just for peace of mind, but for real-world economic return. Customers who switched after chronic process issues found that higher-quality input saved more in the long run—less downtime, fewer returns, and better final product reliability allowed them broader market confidence and repeat sales.
One of our partners in Europe, after switching over, reported a direct uptick in line throughput and a sharp drop in complaints from their end-user base. Not only did this validate our internal QC, it helped us fine-tune future batches at their request—closing the feedback loop between producer and user that academic literature can’t replicate. That’s how stable supply relationships grow.
We learned early that partnership isn’t rooted in volume, but trust built by solving real production headaches. Labs looking to push boundaries bring us samples to modify. Our specialty isn’t just synthesis but technical service: adapting core product variables, like PEG length or degree of allylation, according to end-user feedback. If your polymerization run demands a narrower distribution or your surfactant trials hit regulatory hurdles tied to byproducts, adapting HMA-20Z isn’t a theoretical exercise—it’s hands-on work that brings teams together.
In one notable project, close collaboration with a coatings team led us to adjust not just the chain length but even trace catalyst residues—all identified through weeks of shared trials. The finished batch powered a new product launch with better performance in cold-flex and UV-resistance, capturing added value that neither side could foresee without real-world, on-the-floor data.
Full process traceability didn’t start with regulatory pressure. Strict records come from decades of internal troubleshooting where every batch needed backtracking until root causes showed up. These records now deliver more than compliance—they give partners a clear look into every synthetic fork and step. Whether it’s a global brand seeking ROHS evidence or a local compounder tracing a suspected issue, we provide traceable batch-level details so users can trust, but also verify.
We never underestimate the peace of mind full traceability provides. In one instance, when an overseas client found a performance deviation in a batch, cross-referencing our internal records solved the root cause within days—something they’d struggled to close the loop on with prior suppliers. That accountability loops back: it allows both teams to focus on optimization instead of finger-pointing.
Sustainability isn’t marketing lingo here. It means constant investment in solvent recovery systems, waste management protocols, and raw material traceability. Waste generated during synthesis is captured and routed for chemical recycling, not just disposal, minimizing environmental loads and meeting both local and international stewardship standards. In practice, it reduces operational costs and builds confidence for customers who face scrutiny over their own supply chain footprints.
Our upstream partners are vetted for not just reliability, but for alignment with our environmental goals. This matters downstream, too, where brands face consumer and regulatory demands for transparency. We see more clients coming to us for documentation on chemical sourcing, affirming that HMA-20Z fits into their sustainability programs without hidden environmental burdens.
Safe storage and consistent material handling keep customer operations running smoothly. Over years, we’ve learned to stress container quality, avoid leachate contamination, and safeguard transport integrity. Bulk shipments are accompanied by handling guidance rooted in practical experience—minimizing material loss and mitigating spill risks. Customers often share their own handling challenges, shaping our advice so it reflects what really works on a bustling floor, not just in procedural manuals.
Updates in transportation rules led us to reformulate some packaging standards, replacing outdated drum liners with ones tested for both mechanical stress and chemical compatibility. After field complaints highlighted subtle discoloration after months in storage, we switched lining designs altogether. No datasheet could predict this issue; direct customer dialogue did. That’s the human side of specialty chemical delivery reactivity you only get from living with the material in real-world conditions over years.
In regulatory environments where REACH, FDA, or other certifications get updated, experience across markets gives us an edge. HMA-20Z fulfills several of these standards, based on active substance monitoring and documentation. Downstream customers benefit because our team tracks changing rules, updates certificates, and answers compliance queries with more than boilerplate responses. Continuous dialogue with regulatory experts and daily review of compliance developments mean we stay ahead of shifting requirements, not after problems surface.
We also invest time in education. Plant visits often reveal user questions about safe usage, optimal process parameters, or regulatory navigation. That’s why we run regular technical exchanges, site audits, and Q&A sessions—up to and including sharing direct troubleshooting support with integration teams. This hands-on effort helps users fine-tune HMA-20Z to extract maximum end-use benefit, particularly in highly regulated or innovative segments where off-the-shelf advice doesn't cut it.
The process does not stop with production and sale. True improvement comes from feedback, learning on the fly, and periodic review. Large or small, every end-user report enters our review cycle. Complaints about foaming, odd aromas, or minor color deviations drive tweaks in our feedstock supplies or process flow. Minor process drift once noticed by a plant operator—accounted for as routine scrap elsewhere—became the clue that prompted a reactor synchronization upgrade. These alert us to trends, flag needle-in-a-haystack issues, and keep us operating well ahead of field expectations.
Customer technical teams have brought us issues that took weeks of debugging before the root issue became clear: a small fluctuation in an EO feed valve or a missed purge step. We cover these with customer-facing documentation so operational learning spreads not just in one plant, but to every HMA-20Z user with a similar line. That level of transparency and improvement comes from shared commitment and open communication, not just regulatory compliance or paperwork.
Markets don’t freeze in place, and neither do material needs. Innovation in adhesives, medical device coatings, or clean-label surfactants keeps raising the bar for input chemicals like HMA-20Z. Tighter particle size requirements, stricter color demands, or new testing standards all reach us directly through the development centers and pilot lines of leading customers. We tune synthesis not based only on current sales, but on future-focused dialogue: if industry demand shifts toward cleaner, even more narrowly specified materials, we’re ready to respond.
One major chemical user looking for alternatives to PEG Mono Allyl Ethers due to supply risk found our willingness to scale and tweak batches not only solved their continuity fears, but opened a route to higher performance coatings. Projects like these keep us ahead of commodity trap cycles, instead delivering real, differentiated value.
Making and supplying Polyethylene Glycol Mono Allyl Ether HMA-20Z is more than just a production task—it’s decades of learning, partnerships, and technical honesty. For formulators, manufacturers, and development teams with a stake in reliable chemistry, trust builds batch by batch, not just through datasheets or specifications. HMA-20Z carries that ethos: a reliable chemistry partner, shaped by hands-on application, constant learning, and commitment to not just consistent product, but responsive, collaborative improvement. When your line, product, and brand rely on technical material performance, everything starts with the quality, consistency, and partnership you can count on—from someone who actually makes it, in all its hands-on complexity.