|
HS Code |
211441 |
| Chemical Name | Methyl Trichloroacetate |
| Cas Number | 598-32-3 |
| Molecular Formula | C3H3Cl3O2 |
| Molecular Weight | 181.41 g/mol |
| Appearance | Colorless liquid |
| Boiling Point | 143-145°C |
| Melting Point | -26°C |
| Density | 1.498 g/cm3 at 25°C |
| Refractive Index | 1.440 |
| Flash Point | 60°C (closed cup) |
| Solubility In Water | Slightly soluble |
| Vapor Pressure | 3.6 mmHg at 25°C |
| Pubchem Cid | 12244 |
As an accredited Methyl Trichloroacetate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Methyl Trichloroacetate is packaged in a 500 mL amber glass bottle with a secure screw cap, labeled with safety information. |
| Shipping | **Methyl trichloroacetate** should be shipped in tightly sealed, corrosion-resistant containers, clearly labeled with appropriate hazard warnings. It must be transported as a hazardous material according to regulations (UN 2810, TOXIC LIQUID, ORGANIC, N.O.S.), protected from heat, moisture, and incompatible substances, and handled by trained personnel with suitable safety equipment. |
| Storage | Methyl Trichloroacetate should be stored in a tightly sealed container in a cool, dry, and well-ventilated area, away from incompatible substances such as strong bases, strong oxidizers, and moisture. Keep it out of direct sunlight and sources of ignition. Store it in a corrosive-resistant container with compatible inner lining, and clearly label the storage area with appropriate hazard information. |
Applications of Methyl Trichloroacetate in Industrial ManufacturingAs a direct manufacturer, we supply Methyl Trichloroacetate primarily to specialized segments in chemical synthesis, agrochemical production, pharmaceutical intermediates, polymer modifiers, and personal care ingredients. Below, we detail its critical application scenarios, each differentiated by real downstream processing requirements and industry standards. 1. Agrochemical Intermediates ProductionMethyl Trichloroacetate plays a crucial role as a chlorinated precursor in the synthesis of herbicide and pesticide active ingredients, including specific triazine and phenoxyacetic acid families. Manufacturers rely on this molecule for its trifunctional chloromethyl properties, which facilitate selective acylation and alkylation during multi-step reactions. Downstream processors introduce Methyl Trichloroacetate during the initial condensation step, where its exact loading affects both reaction yield and downstream purification. Environmental and worker safety oversight dictate stringent process controls, especially regarding effluent management and residual chlorinated compound monitoring. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Pharmaceutical Intermediate SynthesisIn pharmaceutical manufacturing, Methyl Trichloroacetate serves as a chlorinating and esterification agent for the production of specialty intermediates for cephalosporin and penicillin derivatives, as well as certain antiviral and cardiovascular active compound side chains. Its use is tightly regulated for residual solvent and chlorinated impurity limits, requiring full traceability non-GMP or GMP-compliant manufacturing lines. Use rates and integration points depend on the structure and sensitivity of the targeted pharmaceutical intermediate. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Polymer Modification and Crosslinking AgentsIndustrial polymer plants use Methyl Trichloroacetate to introduce chlorinated functionality or promote crosslink density in specialty copolymer formulations, including high-performance coatings, adhesives, and construction sealants. Its role is essential in modulating chemical resistance and mechanical properties of resins, such as vinyl copolymers and fluoropolymers, produced on dedicated exothermic polymerization lines. Safety and quality control monitoring of free chlorinated residues and polymer backbone integration ensure product consistency and downstream customer acceptance. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Cosmetics and Personal Care Ingredient ManufacturingFor specialized personal care actives, especially within the Asian and European markets, formulators employ Methyl Trichloroacetate as an intermediate step in producing stabilized ester-based functional ingredients used in whitening, anti-acne, and specialty treatment lines. This raw material undergoes further chemical transformation to ensure no chlorinated residues remain in the final cosmetic-grade output. Manufacturers must maintain traceability, ensure full compliance with cosmetic ingredient standards, and demonstrate precise conversion rates in post-process documentation. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive Methyl Trichloroacetate prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please contact us at +8615365186327 or mail to admin@ascent-chem.com.
We will respond to you as soon as possible.
Tel: +8615365186327
Email: admin@ascent-chem.com
Flexible payment, competitive price, premium service - Inquire now!
Manufacturing chemicals involves more than ticking boxes on a spec sheet. For us, Methyl Trichloroacetate isn’t just a line item — it’s the result of exacting work, a demand for predictability, and years spent fine-tuning every step. This compound, known for its reliability in synthesis work, earns our attention throughout its lifecycle in our plant. Because our customers’ reactions, yields, and timelines hinge on what we deliver, every decision we make factors into the purity, stability, and performance profile that define this product.
Our Methyl Trichloroacetate follows a production route built on robust quality controls and proven process design. Customers often measure its value in terms of consistency—from one drum to the next, one order to the next. The physical attributes remain stable: clear, colorless liquid, with a characteristic density and a manageable boiling point. We make no shortcuts on raw material grades or procedural rigor, because trace impurities quickly create headaches in pharmaceutical and fine chemical pipelines. The foundation comes from chlorinating methyl acetate under controlled conditions, and our line workers spot deviations before they become issues.
We monitor assay levels closely. Typical lots approach 99% purity or better, verified by the same analytic equipment that we use to qualify our own building blocks. Trace water poses a practical problem during downstream reactions, so every container leaves the plant after moisture control at the packing line. Customers have shared stories of working with off-grade material from re-packers or intermediaries, only to face unpredictable hydrolysis or discoloration. Contamination puts their entire batch at risk.
Packaging comes in welded metal drums or chemical-resistant IBCs, never recycled, always fresh-lined. Shipment is scheduled to limit dwell time in uncontrolled environments, avoiding excess heat or exposure that could compromise shelf life or dump product stability below spec. We watch these details because every misstep multiplies costs or creates unnecessary downtime—a single leaky seal or careless transfer erases hours of plant effort.
Most teams that reach out to us use Methyl Trichloroacetate as a methylating or alkylating agent. They build it into synthesis routes for active pharmaceutical intermediates, agrochemical building blocks, and specialty esters. Technical staff in pharma R&D tell us that the by-products of hydrolysis need to stay controlled, otherwise the downstream steps stall or yield drops off. We’ve received positive feedback on the color hold of our product over long-term storage, especially compared to shipments sourced halfway round the world with weeks of uncontrolled handling.
Researchers point out the trait that sets it apart from plain methyl acetate, ethyl trichloroacetate, or other chlorinated esters. The three chloro groups on the alpha-carbon make it reactive and more efficient as a halogen source. Some customers experimented with swapping it for less expensive, lower-chlorinated esters, but found that conversion rates dropped and contaminant profiles changed, leading to tougher work-up or costly purification steps. Choosing the right methyl ester impacts project risk and process economics long before solvent recovery or effluent treatment get calculated. We hear these stories directly from R&D chemists, making our work less about labeling chemical drums, and more about delivering value at every link in the chain.
Our product suits scalable syntheses because it responds predictably batch after batch. Pilot plant chemists who once struggled with local repackaged material—often showing yellowing or containing high moisture—found that a bottle of our factory-sealed ester solves more headaches than the price difference ever justified. A few cents spent on quality wipes out days spent on unnecessary trouble-shooting downstream.
We take our responsibilities seriously. Every staff member in production completes hands-on training for hazard control, reagent handling, and spill containment. Methyl Trichloroacetate’s volatility and affinity for hydrolysis mean no room for shortcuts, so secondary containment, real-time monitoring, and control algorithms run in our plant around the clock. Every solvent stream passes through approved scrubber units and waste is tracked for permitted disposal, never dumped out of sight or out of mind.
The storage system is designed for small headspace, minimum air ingress, and operational temperature control. Our approach is evidence-driven: commodity packing saves money but exposes customers to increased peroxide formation or acid buildup, especially for shipments through warm regions. We have seen time and again that careful control preserves product clarity, keeps acid values low, and prevents off-odors. These aren’t just claims—they are documented from our regular retention sample audits and returned product inquiries, where off-site storage led to visible degradation that never happens on our lines.
We take regulations as minimum thresholds—not goals. Whether shipping to pharmaceutical labs, contract manufacturing sites, or academic research groups, every lot leaves fully traceable, with up-to-date analytical data available on request. All relevant local, regional, and international laws are followed, and our site auditors check labeling, transportation, and documentation monthly to support customer compliance without last-minute delays or wasted time.
Being the source plant, not another middleman, gives us direct control at every step. We know every operator, every raw material batch, and every day’s ambient conditions. We ship only what we’ve sampled, tested, and certified on site—there’s zero guesswork about provenance, transport conditions, or packing quality. When customers ask for technical guidance or clarification, they reach chemists and engineers with years of hands-on experience, not customer service teams reading off a distributor’s sheet.
Distributors sometimes introduce repackaged stock with long or undocumented storage histories or use transfer lines that aren’t truly inert or moisture-free. We’ve run our own side-by-side comparisons, and the evidence is clear: shelf life and reactivity drop, yellowing appears, and side-product profiles shift with every extra transfer. Only the original producer can guarantee clean lines, N2-inerted storage, and tanks designed for these specialized fluids—not leaky drums or unknown histories.
It bears notice that clients across the fine chemical, pharmaceutical, and agrochemical markets return to direct sources because of repeatability. Whether scaling up a clinical supply batch or developing a new synthetic route, they stake their timelines and reputation on material that does exactly what they expect, every time. You won’t find us outsourcing QC, rushing untested batches, or leaving product origins up for debate. From reaction design to delivery, our team stands behind every kilogram shipped.
Time and again, we hear stories of process interruption after a single bad drum or off-spec delivery. Nobody budgets for a full rework—labs must juggle supply gaps, spiking impurity profiles, or unexplained reactivity drops. Long experience tells us that shelf-stable, properly handled chlorinated esters drive project success more than last-minute bargain finds. Color change, increased acidity, or unusual odor signals degraded stocks and unrecoverable time. Our returns desk has replaced re-brokered material for disappointed customers on multiple occasions, and every case validates our focus on direct shipments and traceable inventory.
Technical teams need confidence that a product flagged as Methyl Trichloroacetate will behave as expected under standard lab and plant conditions. The big risk with untrusted intermediaries involves unfamiliar impurity profiles carried through into the next step, potentially rendering entire synthesis campaigns questionable. Rampant side-product formation, foaming, and unpredictable yields tie back to material of uncertain origin or degraded handling. Our investment into purpose-built storage tanks, nitrogen blanketing, and round-the-clock environmental monitoring ensures these pitfalls never strike at the customer point.
Trust builds over time. Repeated performance matches expectations. Even after years in the business, we stick with the habits learned from early production days: don’t rush a batch, don’t accept less than ideal raw materials, verify every key release point. These habits show up in customer campaign logs and the repeat business we earn year after year.
Customers sometimes ask about swapping Methyl Trichloroacetate for ethyl, isopropyl, or other trichloroacetates due to availability, regulatory timelines, or cost. Our direct experience tells a consistent story: subtle differences in alkyl group structure carry major consequences in reactivity and downstream performance. The methyl group imparts higher reactivity and reduced steric hindrance, making it a preferred candidate for methylation or acylation. Compared to ethyl trichloroacetate, process engineers see cleaner reactions, faster conversions, and better overall control over reaction kinetics and impurity load.
Less chlorinated esters like methyl dichloroacetate appeal on price but create unpredictable conversion rates, more difficult separation, and issues in hydrolysis. The three adjacent chlorines on the trichloro version offer precise, predictable reactivity without creating tough-to-separate byproducts. End users with hands-on experience routinely report improved reproducibility and reduced troubleshooting using our original product versus modified or repackaged substitutions.
The structure of Methyl Trichloroacetate means it stands apart not just in reactivity but in shelf life and storage stability when prepared properly. Cambers designed for this molecule, in conjunction with our process for limiting residual acids and controlling water levels, give customers added assurance compared to generic methyl esters or trichloroacetates from less rigorous suppliers. Our results stem from deliberate control, not luck or clever relabeling.
Processing, storing, and transporting Methyl Trichloroacetate brings real-world challenges, especially as Asian, European, and North American regulatory regimes keep shifting. We have faced, and solved, shortages of high-purity input chemicals, operated through seasonal humidity spikes, and built redundancy into our handling procedures for precisely these reasons. Bulk handling takes diligence; the material can form acidic byproducts if left exposed, and workers must take precautions to avoid both environmental release and health risks.
We listen to every lesson learned from incidents in the field. Fresh sampling, regular tank turnover, and yearly process audits make our facility responsive, not static. On the packaging front, we engineered new single-use liners and venting mechanisms to address recurring customer feedback about air ingress during shipping. Supply chain constraints, while difficult, pushed us toward in-house inventory control and forward-planning partnerships with transport specialists who know their way around volatile, moisture-sensitive chemicals. Real solutions come from understanding where things break down—and refusing to cut corners just to meet last-minute demand spikes.
Our technical support remains open about product limitations—pushing Methyl Trichloroacetate beyond controlled parameters risks not only batch rejection, but potential plant incidents. We stress proactive storage management at end-user sites: store away from light, minimize headspace, keep containers sealed, and use only with proper ventilation. These are simple steps, but they are drawn from real failures, not generic best-practices manuals.
We recognize that our customer base ranges from multi-ton plant reactors to kilos in academic or pilot settings. Production scheduling adapts to both, balancing efficiency with careful preparation to avoid cross-contamination or leftover inventory. Larger-scale orders go out using bulk tankers or dedicated IBCs to ensure minimal handling post-plant. For smaller labs and specialty synthesis groups, drums capped under nitrogen keep product fresh, with batch paperwork available for each lot.
Every customer gets access to our actual process chemists if questions arise. Real people—often those who managed their own project reactors before joining our crew—answer queries from the perspective of hands-on use, not just datasheet knowledge. This dialogue informs our process improvement and, ultimately, what comes out of our fill lines.
Direct conversations with end-users guide almost every enhancement to our production methods. Detailed questions from a pharmaceutical customer about long-term storage in a tropical climate led to expanded QC checks for residual acid formation. Requests from process engineers for tighter tolerances on assay values led to an overhaul of one of our analytic workstreams. Now every lot ships with a full spectrum GC trace and water content line.
Case studies shared by long-standing buyers, who revealed that sourcing directly from us yielded measurable cost savings and quality improvements compared to indirect procurement, encourage us to elevate our offering. Almost every complaint or process breakdown recounted by customers from less direct channels forms the baseline of our improvement initiatives.
Our team considers itself as much a partner as a supplier. Industry innovation only works when the foundation products—like Methyl Trichloroacetate—perform as the process demands, not just as paperwork pretends. Years of feedback loops with research, development, and manufacturing teams transformed our plant’s operations from basic commodity production to a living partnership model.
New regulatory regimes, evolving batch sizes, and the continued pressure for cleaner syntheses will drive changes in the landscape for this compound. From controlled emission management to new anti-counterfeit labeling, every year presents fresh challenges and improvement goals. We keep our operations flexible and our ears open, maintaining the same drive for reliable product performance that got us here.
For those looking to minimize downtime, reduce troubleshooting costs, and ensure consistent results at every stage from pilot to full scale, sourcing Methyl Trichloroacetate directly from the original manufacturer removes uncertainty from your bottom line. Our commitment runs deeper than spec sheets and certificates of analysis—it reflects the lived experience of professionals ensuring stable, predictable performance in every shipment.