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HS Code |
109440 |
| Chemicalname | Allyloxytrimethylsilane |
| Casnumber | 1079-71-2 |
| Molecularformula | C6H14OSi |
| Molecularweight | 130.26 g/mol |
| Appearance | Colorless liquid |
| Boilingpoint | 118-120°C |
| Density | 0.815 g/mL at 25°C |
| Refractiveindex | 1.422-1.424 |
| Flashpoint | 15°C (closed cup) |
| Purity | Typically ≥98% |
| Solubility | Insoluble in water; soluble in organic solvents |
| Smiles | C[Si](C)(C)OCC=C |
| Inchikey | QBIWLSZCYTYGGL-UHFFFAOYSA-N |
As an accredited Allyloxytrimethylsilane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Allyloxytrimethylsilane is supplied in a sealed 100 mL amber glass bottle with a tamper-evident cap, labeled with hazard warnings. |
| Shipping | Allyloxytrimethylsilane is typically shipped in tightly sealed containers under nitrogen to prevent moisture and air exposure. It should be handled as a flammable liquid, following standard hazardous material protocols. Ensure packaging is labeled according to regulations, and transport in compliance with local, national, and international chemical shipping guidelines. |
| Storage | Allyloxytrimethylsilane should be stored in a cool, dry, and well-ventilated area, away from sources of ignition and moisture. Keep the container tightly closed and stored under inert gas, such as nitrogen, to prevent hydrolysis and oxidation. Avoid exposure to direct sunlight and incompatible materials, such as strong acids and oxidizing agents. Store in appropriately labeled, chemical-resistant containers. |
Applications of Allyloxytrimethylsilane in Industrial ManufacturingAllyloxytrimethylsilane serves as a functional organosilicon intermediate in advanced synthesis for coatings, adhesives, electronic encapsulation, and resin modification. Our direct manufacturing expertise supports precise customization for high-purity and batch-consistent supply. The following application scenarios represent major industrial sectors where Allyloxytrimethylsilane offers unique chemical benefits through defined process integration, industry-standard compliance, controlled dosage, and targeted final product enhancement. 1. Epoxy Resin Modification for Electronic EncapsulationWithin electronic encapsulation, producers integrate Allyloxytrimethylsilane during resin formulation to enhance thermal stability and moisture barrier properties. It acts as a silane functionalizing agent, improving resin crosslinking required for demanding chip, transistor, and circuit protection. This material supports fabrication of potting compounds meeting stringent IEC and IPC quality requirements for long-term electrical component durability. Industry compliance standards
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2. Silane Crosslinking Agent in Polyethylene Cable CompoundsIn the wire and cable industry, manufacturers rely on Allyloxytrimethylsilane as a crosslinking reactant during Sioplas or Monosil processing of polyolefin insulation. The allyloxy group introduces functional silicon into the polymer backbone, improving hot-set, elongation, and long-term electrical resistance. This pathway supports utility-grade medium- and low-voltage wire insulation that must withstand IEC and ASTM accelerated aging protocols. Industry compliance standards
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3. Surface Modification of Silica Fillers for RTV Silicone RubbersProducers of room-temperature-vulcanizing silicone rubber systems use Allyloxytrimethylsilane for hydrophobization of silica and mineral fillers. Functionalization reduces filler moisture uptake and enhances matrix compatibility, supporting elastomeric performance in sealant, gasket, and mold-making systems required to meet ASTM, FDA, and REACH criteria for industrial and food-grade production. Industry compliance standards
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4. Coupling Agent in UV-Curable Acrylic Coating FormulationsIndustrial formulators for UV-curable acrylic coatings employ Allyloxytrimethylsilane as a coupling agent to boost film adhesion to glass, metals, and treated polymer substrates. The trimethylsilyl structure imparts interfacial compatibility, enabling durable, abrasion-resistant, and chemical-resistant coatings that meet ISO, automotive, and medical device surface performance standards under demanding validation regimes. Industry compliance standards
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5. Precursor for Silsesquioxane Synthesis in Hybrid Material ProductionAdvanced materials manufacturers use Allyloxytrimethylsilane as a key precursor in controlled hydrolytic condensation, forming hybrid silsesquioxane frameworks. This application supports molecular-engineered materials required for low-k dielectrics, specialty membranes, and nanocomposite coatings, with precise control to comply with ISO, JEDEC, and IPC electronic material and environmental purity protocols. Industry compliance standards
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Stepping into our facility, one of the cleanest and most precisely monitored spaces is the silane synthesis line. Among the many silane derivatives we manufacture, Allyloxytrimethylsilane has gained strong traction over the years. Its chemical formula, C6H14OSi, and CAS number 2554-07-8, have come to represent a tool that organic chemists and polymer producers trust for specialized transformations. We produce several grades of this compound, but our flagship batch delivers a purity above 98.5%, with controlled low moisture content. These parameters aren’t arbitrary—they reflect how this product performs when our industrial partners formulate advanced resins, run demanding coupling reactions, or graft functional groups in silicone rubber manufacturing.
We’ve been refining the synthesis of Allyloxytrimethylsilane for decades, and just like every chemical, it’s the small adjustments—a few degrees’ tweak in distillation temperature or a thorough rinse using ultra-pure solvents—that make all the difference at scale. Unlike some silane agents that offer only basic silylation, this molecule features both allyloxy functionality and a trimethylsilyl group linked through an oxygen atom. This structure widens its reactivity, making it stand apart from simpler analogs like trimethylchlorosilane or the bulkier trialkoxysilanes.
Many ask us why a manufacturer would pick Allyloxytrimethylsilane over more commonly stocked silanes. We look at it as a multi-purpose tool: straightforward, reliable, but sophisticated enough for specialized applications. The combination of its reactive allyl group and the stable trimethylsilyl moiety allows selective surface modification, particularly on substrates that require both organic compatibility and hydrophobic performance.
Compared with trimethylchlorosilane, Allyloxytrimethylsilane brings lower volatility and generates fewer corrosive byproducts during reactions. The molecule is less aggressive, which means work-up procedures stay less hazardous and downstream processes maintain tighter control. Chemists handling this product report smoother batch-to-batch reproducibility, which shortens downtime and tempers production costs.
Lab results from our research partners demonstrate higher yields in hydrosilylation reactions, when compared to traditional silyl ether-forming agents. We have seen its effectiveness firsthand during pilot runs for cross-linked silicone elastomers, where it facilitates easy introduction of allyl groups, opening the door for further post-functionalization. Trimethylsilyl derivatives with phenoxy or methoxy substituents work in narrower process windows and tend to hydrolyze faster in moist environments, while our Allyloxytrimethylsilane endures storage and transit even in less-than-ideal conditions.
Every chemical tells a story once it passes through real manufacturing lines. Our best stories about Allyloxytrimethylsilane start with its colorless, clear liquid form and mild odor—a quiet signal of chemical stability. Inside the plant, workers appreciate that the material flows easily and rinses cleanly from steel and glassware using standard solvents. Flash point checks and regular GC analyses keep each lot consistent, because clients rely on a predictable boiling range between 136 to 138°C at ambient pressure.
From a quality control view, moisture control proves crucial. Allyloxytrimethylsilane picks up water less readily than the methylchlorosilane variants do. This reduced tendency for hydrolysis translates directly to higher yield in downstream silanization steps. Chemists who work with sticky or high-value intermediates recognize how this saves both time and raw materials. We keep packaging tight, often in nitrogen-purged containers, and we track storage conditions carefully through data loggers to protect against seasonal shifts in temperature and humidity.
The journey from plant to production line and finally to the chemist’s laboratory takes many twists. The product’s main utility comes out during the protection of alcohols. Allyloxytrimethylsilane acts as a silylating agent—shielding sensitive hydroxyl groups from unwanted reactions so they can survive the rigors of strong reagents, acids, or oxidizers. Our regular customers—pharmaceutical process teams and custom organic synthesis labs—say protection yields exceed 90% with minimal side reactions, particularly when compared with bulkier or more hygroscopic silylating reagents.
In polymer development, this molecule works as a chain modifier and crosslinker for silicone rubbers, electronic encapsulants, and specialized adhesives. The molecule’s allyloxy group provides an avenue for further chemical elaboration, such as thiol-ene click chemistry or radical-initiated grafting. Process engineers designing these modifications prefer our Allyloxytrimethylsilane because it integrates seamlessly with peroxide, platinum, and photoinitiated curing systems. Crosslink density, mechanical flexibility, and weathering resistance all see noticeable benefits— attributes reported after repeated side-by-side tests with other silane families.
Our feedback comes directly from the plant floors and R&D conferences we attend. High-purity product reduces foaming and off-gassing during large-scale mixing. The molecule fits neatly into automated dosing equipment and rarely causes blockages, so bottling rates and filling runs stay on schedule.
Sitting down with our senior chemical engineer, the differences become tangible. He finds that using Allyloxytrimethylsilane instead of dichlorosilanes brings smoother pH control during quenching and product isolation. Routine safety training includes it among the safer options: the lack of corrosive byproducts leads to less aggressive scrubbing in our waste gas treatments and fewer maintenance callouts on exhaust scrubbers.
Triethoxysilane and trimethoxysilane sometimes edge out in glass adhesion or tough curing profiles. In contrast, Allyloxytrimethylsilane wins in building flexible, chemically customizable sidechains and for operations demanding moderate hydrolysis rates. Its manageable vapor pressure reduces worker exposure risks in our filling stations and leaves plant operators with fewer headaches about fume extractions.
In markets where electronic-grade materials matter, the purity and trace metals checks we enforce attract device makers. Metallic impurities in silylating agents can wreak havoc on dielectric performance; every batch of product receives close screening with ICP-MS, and our process tracks these potential contaminants from raw material intake right through to the final bottling step.
No chemical is without its operational challenges. Early on, water ingress during transport and long-term storage led to loss of activity with Allyloxytrimethylsilane. We responded by sourcing improved seals, switching to coated drum liners, and insisting that drums receive immediate sealing in our dry-room lines. This change cut returned batches and eliminated the off-spec complaints from our largest clients.
Remaining vigilant with temperature stability became another focus. More than once, a spike in local summer heat pushed internal tank temperatures above 40°C. We responded by revising our warehouse protocols, employing high-reflectivity insulation and spot cooling units. These changes keep the ambient temperature controlled, ensuring the silane’s shelf life meets lab and industrial needs.
We work alongside technicians to address plant line fouling and ensure all automated blending tools match the viscosity profile of the latest Allyloxytrimethylsilane lot. Unexpected deviations turn up in even the most robust production lines; swift internal communication and direct data-sharing with our buyers close the loop before problems multiply.
Plant teams and lab partners regularly report lower downtime when switching to this compound from acetyloxy- or bulky alkoxysilanes. Long-term stability in warehouse storage means the product stays ready for just-in-time manufacturing. This helps clients adapt to shifting demand for cosmetics additives, wire insulation gels, or advanced medical device coatings. Each use case brings unique process bottlenecks, but the consistency we can achieve with Allyloxytrimethylsilane often makes it the reliable node in a complex workflow.
As a chemical manufacturer, investing in high-integrity raw material suppliers and rigid in-plant analytical routines forms the foundation for this product’s success. Every year brings new requests from project leads seeking tweaks—different container sizes, custom blends with stabilizers, or specialized grade certificates for regulatory compliance. Our teams regularly consult with process chemists at the user end, fine-tuning parameters for complete mixing, fast reaction starts, and minimum loss during scale-up.
Major pharmaceutical intermediates built around silyl-protected alcohols gain extra value when the protection is both robust and easy to remove at the right stage. Customized process development teams tell us that reactions using our Allyloxytrimethylsilane lower the number of purification steps and sidestep side reactions associated with acid labile groups or those sensitive to basic conditions.
Chemical handling always brings its set of EHS responsibilities. On our floor, staff receive practical training and hands-on demos for proper Allyloxytrimethylsilane transfer—favoring closed-loop systems to reduce exposure. Routine air sampling and leak testing keeps worker safety at the center of plant operations. Our effluent systems treat residuals with optimized hydrolysis and neutralization units, designed specifically to handle silicon-based organics like this one.
Unlike some alternatives that generate persistent acidic waste, byproducts from Allyloxytrimethylsilane breakdown usually stop at volatile organics and siloxane residues, which are then captured in activated carbon or silicone-dedicated filters. Our approach balances efficiency with strict environmental compliance, documented through annual audits and transparent reporting.
Drum cleanup crews now see shorter rinsing cycles with this compound compared to heavier silane products. This saves water and time, fitting into our continuous improvement culture. These on-the-ground changes build both team trust and sustainability into the day-to-day operation.
The ongoing evolution of specialty materials means the uses of Allyloxytrimethylsilane won’t stay rooted in today’s status quo. As industry standards for electronics packaging, waterborne coatings, and functionalized resins advance, we remain focused on incremental improvements. Customer feedback following in-situ trials or pilot plant deployments gets rolled back into our R&D programs, whether it’s tighter control of heavy metals, reduced packaging weights, or new cap liners for faster pouring.
We often host on-site visits and joint training sessions to make sure both process engineers and plant operators have a clear picture of how to maximize the reagent’s reactivity while managing safe handling. In our business, direct communication cuts misunderstanding and keeps projects moving. If a production batch develops haze or a shelf life issue arises, our teams review analytics, line logs, and raw material chains without delay.
The journey of a compound from glass reactor to delivered drum has countless checkpoints. For Allyloxytrimethylsilane, every checkpoint benefits from lessons learned—not just from chemical theory, but from the daily grind on the factory floor, shift hand-offs, and the emails that solve real problems as they arise. That hands-on knowledge grounds our commitment to a safer, more effective industrial chemistry future—one batch at a time.