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HS Code |
661128 |
| Product Name | 5-(Chloromethyl)-1,2,3-Trimethoxybenzene |
| Cas Number | 60481-13-0 |
| Molecular Formula | C10H13ClO3 |
| Molecular Weight | 216.66 |
| Appearance | White to pale yellow solid |
| Melting Point | 64-67°C |
| Purity | Typically >98% |
| Solubility | Soluble in common organic solvents (e.g., dichloromethane, ethanol) |
| Smiles | COC1=C(C=C(C(=C1OC)OC)CCl) |
| Inchi | InChI=1S/C10H13ClO3/c1-12-8-4-7(6-11)10(14-3)9(5-8)13-2/h4-5H,6H2,1-3H3 |
| Storage Temperature | 2-8°C |
| Synonyms | 5-Chloromethyl-1,2,3-trimethoxybenzene |
As an accredited 5-(Chloromethyl)-1,2,3-Trimethoxybenzene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | A 25-gram amber glass bottle with a secure screw cap, labeled "5-(Chloromethyl)-1,2,3-Trimethoxybenzene, 98%," and hazard warnings. |
| Shipping | 5-(Chloromethyl)-1,2,3-Trimethoxybenzene is shipped in compliance with chemical safety regulations. It is securely packed in sealed, chemical-resistant containers, labeled with hazard warnings. The package is protected from moisture, heat, and direct sunlight. Transport is handled by certified carriers, following all local and international hazardous material shipping requirements. |
| Storage | Store 5-(Chloromethyl)-1,2,3-trimethoxybenzene in a tightly sealed container in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible materials such as strong oxidizers. Protect from moisture and direct sunlight. Clearly label the container, and keep it in a designated chemical storage cabinet with restricted access to trained personnel only. |
Applications of 5-(Chloromethyl)-1,2,3-Trimethoxybenzene in Industrial ManufacturingAs the direct manufacturer of 5-(Chloromethyl)-1,2,3-Trimethoxybenzene, we supply global process industries with this key intermediate, which plays a critical role in highly specialized downstream synthesis. Our expertise ensures that the material consistently meets the stringent technical and regulatory demands of innovator companies in active pharmaceutical ingredient (API) synthesis, specialty intermediate production, and advanced material manufacturing. Below, we outline the leading application sectors where our material is employed at scale, complete with detailed integration information for industrial partners. 1. Pharmaceutical Active Ingredient Synthesis (API Intermediate)Many global pharmaceutical producers incorporate this compound as a building block in the multi-step synthesis of APIs, especially for drugs featuring a trimethoxyphenyl core. The unique reactivity of the chloromethyl group supports alkylation or further derivatization on route to target molecules used in oncology and cardiology therapies. Process chemists value stable batch-to-batch supply meeting ICH and regional pharmacopoeia requirements. Industry compliance standards
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2. Agrochemical Intermediate ManufacturingLeading crop protection formulators and custom synthesis companies use this compound in the production of novel herbicide and pesticide intermediates. The presence of a chloromethyl group and the electron-rich methoxybenzene ring allows efficient downstream conversion into bioactive moieties, supporting scale-up for both patent and off-patent molecule production. Regional compliance and finished batch traceability figure prominently in supplier audits. Industry compliance standards
Typical usage ratio
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3. Advanced Liquid Crystal Material SynthesisMajor display and electronic material factories utilize the compound when manufacturing key intermediates for liquid crystal compounds. The methoxy group symmetry and reactive benzyl chloride functionality enable the construction of high-purity, custom-structured mesogens which serve as building blocks for advanced LC mixtures used in TFT displays. Strict control is required on trace halogen and aromatic impurity content to maintain optical clarity and electrical consistency in downstream alignment layers. Industry compliance standards
Typical usage ratio
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4. High-Performance Polymer Modification IntermediatePolymer compounders and specialty resin producers incorporate this substance to introduce chloromethyl and aryloxy functional groups into polymer backbones, thereby altering solubility, hydrophobicity, and thermal response. Utilized during copolymerization and post-modification stages, the molecule promotes new polymer property sets in advanced materials suitable for membrane filtration, separators, and coatings. Manufacturer-provided purity and trace impurity control reports serve as a baseline for consistent upscaling. Industry compliance standards
Typical usage ratio
Downstream process integration
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Stepping through the doors of the production facility each morning brings fresh focus to our team. We’ve spent years refining the manufacturing process for 5-(Chloromethyl)-1,2,3-Trimethoxybenzene—not just as a formula on paper, but as a product that moves from start to finish under our own roof. Focusing on consistency, purity, and long-term performance, we don’t view this compound as just another stock item for the catalog. Each batch carries the sum of practical work, countless adjustments, and a culture of feedback rooted in actual experience from the field.
Our current model of 5-(Chloromethyl)-1,2,3-Trimethoxybenzene targets customers who demand both practicality and reliability. In most synthesis workflows, slight changes in starting materials can lead to frustrating setbacks or process drift. Reliability starts with knowing what goes into the reactor. By keeping tight control at every step—from sourcing aromatic precursors to handling purification—we aim to remove uncertainty at the early stage. Fluctuation in impurity levels can spell trouble for downstream chemistry. We don’t leave that margin to chance.
Where comparable products aim for “within spec” results, we maintain strict monitoring for key impurities. Our workforce draws on direct hands-on experience. If something doesn’t match up in the testing suite, production halts and corrective action kicks in. This attitude doesn’t come from a sales brochure, but hard lessons. Delivering on-paper purity means less if trace contaminants slip by and gum up the final application. Process engineers in the pharmaceutical and agrochemical sectors often tell us what works for them in the lab doesn’t always work the same at scale. Reproducibility counts for more than isolated lab numbers. We listen to the feedback and shape our approach around real usage—not just the recommendations of guidelines, but the actual day-to-day needs of our customers.
The chemistry landscape has changed in recent years. Supply chains, environmental scrutiny, and technical challenges shape the way teams approach synthetic routes. We see our compound mainly make its mark as a building block in the preparation of more complex aromatic pharmaceuticals and crop-protection agents. Research chemists and production managers have depended on our batches for their reliability in forming advanced intermediates. The precise layout of the three methoxy groups and the chloromethyl substituent isn’t just a structural oddity—it delivers sites for selective transformation and electrophilic substitution with reliable predictability.
Comparing to more general aromatic halides and methoxylated benzenes, small shifts in the substitution pattern can make or break the efficiency of a key C-C or C-N coupling step. When the position of the chloromethyl group shifts, or the methoxy groups aren’t matched in both position and count, unwanted side products can form. This slows down the route and chews up resources. We have seen firsthand how a one-off bad batch, from earlier days before we nailed down our QC systems, can affect trust. Since then, adjustments—longer audits on raw material intake, and hands-on operator oversight—have allowed us to bring drift rates near zero.
Production doesn’t exist in a vacuum. We don’t just hear from procurement officers or logistics staff—we get to know the scientists who work with our product in the lab and on the plant floor. One customer, a project lead for a pharmaceutical pilot plant, pointed to the improvement in downstream yield after switching to our model. Their chemists faced issues with polymerization side reactions when using material from a different supplier, likely related to variable chloride content and trace organic impurities. After a few discussion rounds, we identified a specific point during the crystallization cycle that consistently cut impurity carryover. It sounds like a small change, but the ripple effects saved a week of work in the final analysis and packaging stage. Stories like these put faces and challenges behind the numbers.
Other feedback arrives from the agrochemical side, especially for those preparing heterocyclic scaffolds. Consistency in functional group delivery is where smaller details matter. From our end, distilling these learnings into better in-line monitoring and real-time analytics during synthesis has pushed our process to a new standard. Even with regulatory and environmental requirements tightening, our plant can hit the needed specifications without propping up the price or cutting corners.
Chemical manufacturing no longer takes place out of sight, out of mind. From start to finish, our team tracks the impact of each major decision—from solvent choice to waste handling. Chlorinated intermediates, for all their utility, often carry baggage in the form of residual contaminants or waste byproducts. We’ve invested deep in closed-loop solvent filtration, which keeps organochlorine emissions to a minimum, and real-time monitoring stations at the discharge line. This doesn’t just tick a box for compliance but lets us detect and address small changes before they become problems. It’s more work up front, but running clean pays back in fewer shutdowns, less corrective maintenance, and smoother community relations.
Colleagues in technical purchasing sometimes share worries about shifting regulation for chloroaromatic compounds—particularly questions about long-term supply security and potential downstream restrictions in key markets like the EU. Instead of just passing such concerns up the chain, our response has been to work with stakeholders early. For example, swapping to low-impurity precursors and non-halogenated solvents where feasible has given our teams flexibility in tuning the process. Compared to the early years, we use less solvent per kilo of product. And our wastewater leaving the plant shows significantly fewer residues, based on third-party lab results. Fewer emissions and lower effluent toxicity aren’t just talking points. Six months after retrofitting our main synthesis line, operator incident reports dropped while overall yield held steady.
Over time, applications for 5-(Chloromethyl)-1,2,3-Trimethoxybenzene cluster around the construction of advanced pharmaceutical and agricultural intermediates—not as the headline active ingredient, but as a workhorse building block. Its three methoxy groups provide ready attachment points for further functionalization. The chloromethyl moiety behaves as a versatile handle for nucleophilic substitution, allowing straightforward connection to a wide range of nucleophiles. Downstream, these properties support both selective coupling (thanks to the electron-donating effect of the methoxy groups) and controllable reactivity (due to precise placement of the chloromethyl group).
A lot of customers ask about using the compound in multi-stage synthesis of heterocycles or derivatives used in fine chemical production. Compared to similar benzene derivatives—say, those only bearing two methoxy groups, or carrying a methyl instead of a chloromethyl group—the reactivity and product profile shift. This opens up routes to intermediates with more complexity, flexibility, or improved yield in those small but critical steps at pilot or full production scale.
Our technical team has seen the product used in the synthesis of candidate oncology and CNS pharmaceuticals, often in fragments designed for high selectivity or metabolic stability. In agrochemical manufacturing, the structure fits as a reliable core for molecules targeting pest resistance or growth regulation. Every few months, we consult on new project requirements: scale adjustments, special form requests, or impurity thresholds that push yesterday’s comfort zones. Our answer to these needs relies on a mix of data from analytical labs, but even more from lessons learned in day-to-day production. Not everything translates to a tidy line item or spreadsheet. Often, a quick discussion on the plant floor reveals the workaround to a tricky reactivity issue or a packaging adjustment that reduces breakage in longer shipments.
Long before a batch gets loaded onto a truck, our warehouse and QA teams work together to ensure each drum or bottle leaves in a way that resists environmental stress and limits cross-contamination. The product itself takes the form of a pale solid, free-flowing and low in moisture uptake under standard conditions. Avoiding caking or agglomeration during storage matters for process reliability. Early on, we discovered that small shifts in storage temperature and humidity could affect product texture, sometimes even before the product made it overseas. We’ve updated our packaging to include improved moisture barriers and switched to anti-static liners after reviewing a string of customer delivery complaints during a hot, humid summer season. Water content remains capped at a strict threshold, with spot checks at both the packing and outbound stages.
We don’t chase fancy packaging, but we do pay attention to what survives transit best over longer routes or rougher handling. Shipments reach researchers and manufacturers in Asia, Europe, and the Americas, all with their own climate quirks and customs procedures. There’s no point in getting the chemistry perfect only to stumble at the last mile. Engineers on our team periodically liaise with logistics partners to review real-world shipping outcomes and tweak our approach. This has meant swapping from traditional fiber drums to lined steel containers for bulk buyers needing longer shelf life or repeated sub-sampling.
Drawing a direct comparison to similar methoxybenzene derivatives, the value of our 5-(Chloromethyl)-1,2,3-Trimethoxybenzene becomes clear in routine feedback. Many alternatives fall short in reactivity, or bring along stubborn impurities that interfere with later functional group transformation. One recurring theme in customer reports involves greater batch-to-batch uniformity than seen with 1,2,4- isomers, which tend to absorb more moisture and often contain varying chloride content. That leads to sticking points in heterocycle formation and lower overall conversion.
Whereas unsubstituted chloromethylbenzenes display less electron donation, making them less predictable in certain coupling steps, our compound’s methoxy orientation supports both reactivity and selectivity. Chemists handling multi-gram to multi-ton runs notice the difference—a reduction in side product formation and a boost in product purity. That means less time wasted on rework or double purification, lower solvent costs, and fewer headaches in scaling up.
For customers synthesizing target molecules under tight regulatory specs, our product’s impurity profile shows measurable improvements using independent analysis. We screen for organochlorine residues and residual solvents, based on both international requirements and local customer input. Continuous improvements—driven by customer applications and in-house process tweaks—feed back into the plant workflow to hone both product quality and ease of use.
Transparency builds confidence. Over the years, some buyers have shifted away from low-cost sources after supply disruptions, compliance failures, or hidden quality issues. We’ve made it a habit to open our doors—whether through official audits or technical visits—to show not only what’s on paper but what happens day by day in the plant. Analytical reports, GC and HPLC data, impurity trend logs, and change control histories all go into each shipment. We listen and respond quickly to discrepancies. If a customer notices an unfamiliar impurity or an unexpected melting point shift, our technical service answers right away, and our lab relays fresh analysis within days, not weeks.
Regular operator training and feedback loops keep our team sharp. Handling a process at scale means watching for issues not just under “ideal” conditions but right through cleaning, maintenance, and deviation periods. Years back, one simple adjustment—a manual temperature alarm on a crystallizer feed—prevented a near miss that could have cost thousands in lost product. Since then, we’ve added similar feedback-driven measures across other lines. This culture keeps both new and seasoned staff attentive and invested in collective success.
Manufacturing 5-(Chloromethyl)-1,2,3-Trimethoxybenzene isn’t a static affair. The intersection of customer needs, changing regulation, and technical barrier-breaking forces us forward. If a customer runs into a problem with incompatibility under new reaction conditions—say, requiring special packaging for a new continuous-flow synthesis pathway—we treat it as a problem for us to tackle, not just them. R&D pairs with production to adjust solid-state properties or tweak purification steps as needed.
We aim to support more than just the sale: troubleshooting, sharing best practices, and proactively gathering application data from customers shape our ongoing quality drive. It’s common for our technical and commercial leads to follow up long after shipment, gathering information on how the product performed in pilot or commercial synthesis, what pain points arose, and what tweaks helped scale up safely and efficiently. Looping these insights back into manufacturing strengthens the outcome for everyone involved.
As a manufacturer, our role extends past the gate. Seeing our 5-(Chloromethyl)-1,2,3-Trimethoxybenzene help drive success in a high-value project or set a new standard for an industrial partner validates the effort behind each step. Our team isn’t just making another chemical—we’re using hands-on learning, open communication, and steady progression to keep pushing standards higher for producers, formulators, and end-users who rely on products that don’t just fit the spec, but unlock new potential in complex chemistry.