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HS Code |
134214 |
| Productname | Bis(2-Chloroethoxy)Methane |
| Casnumber | 111-91-1 |
| Molecularformula | C5H10Cl2O2 |
| Molecularweight | 189.04 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boilingpoint | 211-213°C |
| Meltingpoint | -54°C |
| Density | 1.243 g/cm³ at 20°C |
| Solubilityinwater | Insoluble |
| Refractiveindex | 1.443 at 20°C |
As an accredited Bis(2-Chloroethoxy)Methane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Bis(2-Chloroethoxy)Methane is packaged in a 500 mL amber glass bottle with a secure screw cap and hazard labeling. |
| Shipping | **Shipping Description for Bis(2-Chloroethoxy)Methane:** Transport in tightly sealed, clearly labeled containers suitable for chemicals. Store and ship away from heat, open flames, and incompatible substances. Handle as a hazardous material, following local, national, and international regulations. Use appropriate protective equipment during handling, and ensure containers are upright and secure to prevent leaks or spills. |
| Storage | Bis(2-Chloroethoxy)methane should be stored in a cool, dry, well-ventilated area, away from ignition sources, heat, and direct sunlight. Keep the container tightly closed and clearly labeled. Store separately from strong oxidizers, acids, and bases to prevent hazardous reactions. Use chemical-resistant containers and ensure proper secondary containment to avoid spills or leaks. Follow all local and regulatory storage guidelines. |
Applications of Bis(2-Chloroethoxy)Methane in Industrial ManufacturingAs a direct manufacturer with decades of experience supplying Bis(2-Chloroethoxy)Methane to global industries, we have documented and supported its use across a limited set of downstream sectors. Below, we outline established application scenarios, referencing real compliance standards, batch-level formulation guidance, specific process integration points, and resulting final product categories as seen at our end-user partners’ facilities. 1. Active Pharmaceutical Ingredient (API) Intermediate ManufacturingMajor API synthesis operations select this material for its function as an etherification and alkylation reagent, especially where reactivity under controlled conditions enables the construction of specific heterocyclic and side-chain functionalities. Its use requires stringent documentation and trace analysis, with QC trails ensuring absence of critical genotoxic impurities in the resultant intermediates. Industry compliance standards
Typical usage ratio
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2. Agrochemical Synthesis (Herbicide and Pesticide Intermediates)Our large-volume agricultural clients integrate Bis(2-Chloroethoxy)Methane in the molecular assembly of ether and acetal moieties within selective herbicide and insecticide active substances. The material supports precision reactivity in forming complex backbone structures, critical for the activity and selectivity of the final agrochemical agent. Industry compliance standards
Typical usage ratio
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3. Polymer Modifier Synthesis (Specialty Coatings and Resins)Resin and specialty polymer producers utilize this raw material as a reactive chain extender or crosslinker in producing etherified resins and specialty polyols, particularly when targeting enhanced flexibility or solvent compatibility in coating applications. Batch records reflect critical monitoring of incorporation efficiency and byproduct minimization to ensure compliance and downstream performance. Industry compliance standards
Typical usage ratio
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4. Specialty Solvent and Additive SynthesisChemical formulators incorporate Bis(2-Chloroethoxy)Methane as a building block in the formulation of custom solvents and additive components, particularly where specific polarity, volatility, or reactivity profiles are required. End-to-end QC validation ensures that both intermediate and final formulations maintain stability and meet all handling and application safety regulations. Industry compliance standards
Typical usage ratio
Downstream process integration
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At our chemical manufacturing plant, years of hands-on experience shape the way we craft Bis(2-chloroethoxy)methane and support our clients. We have watched the market shift, regulations tighten, and end-user demands rise, pushing all involved to demand more from their chemical raw materials. Our journey with this compound started with customer requests seeking higher purity and fewer impurities than industry benchmarks. Over time, lab results and production feedback brought us valuable knowledge about what separates outstanding product batches from passable ones.
Bis(2-chloroethoxy)methane stands out with the formula C5H10Cl2O2. Inside our operations, purity and batch consistency remain our benchmarks. Spec sheets, in our experience, matter less than trust built from every drum or tanker load that meets customer expectations for clarity and reactivity. Most clients come from the fine chemicals market and intermediates for synthesis, frequently processing our product into further derivatives or specialty chemicals. For each run, our process control team checks impurities—especially monochloro byproducts and water content—which, left unchecked, can alter the reactivity and yield of later-stage syntheses. Technicians sample production streams at several points to track appearance, water, acidity, and individual chlorine-containing contaminants. This ongoing scrutiny ensures we catch outliers before shipment leaves our plant.
Our standard grade typically delivers a minimum assay above 98.5%, though we sometimes receive specific requests for even higher purity for research or electronics applications. Years of process optimization, including distillation and tailored filtration, help us reach these specifications. We have found that stray color, presence of moisture, or overlooked sub-ppm organochlorides spark trouble for downstream reactions. QC data backs this claim: batches with flagged trace oxidation products or excessive acidity often prompt customer complaints, especially from those in agrochemical synthesis or resin manufacturing.
Comparisons arise frequently around selection of bis(chloroalkyl) ethers. Bis(2-chloroethoxy)methane offers unique reactivity compared to its close cousins, such as bis(2-chloroethyl) ether or dichloromethane derivatives. As a manufacturer, we see these choices play out in the field. In alkylation or etherification applications, technical substitution is not always feasible—our product’s additional ether linkage and specific carbon chain length provide different solubility, boiling point, and bond reactivities. End-users working with resin and adhesive formulations have pointed out to us that bis(2-chloroethoxy)methane delivers certain mechanical properties or flow characteristics after curing that they cannot match with other options.
A big part of this difference ties to volatility and ease of handling. Our operator crews deal directly with the materials, so we address volatility up front: bis(2-chloroethoxy)methane sits between more volatile, less viscous dichloromethane and bulkier, more inert chlorinated polyethers. Maintaining containment and purity in storage tanks comes easier, minimizing off-gassing losses compared to more volatile analogues. By adjusting storage climate controls and using corrosion-rated piping, we avoid clogging, fouling, or corrosive vapor buildup. These are practical concerns every chemical producer, in our experience, faces daily.
Most shipments move toward advanced synthesis routes—pharmaceutical intermediates, crop protection agents, and custom polymers get built up from the core structure of bis(2-chloroethoxy)methane. Production managers from clients’ plants give us regular feedback. They cite ease in metering doses, predictable reactions during substitution or alkylation steps, and lower incident rates of side-product formation as salient benefits. Organic synthesis shops and pilot plants trust that our batch-to-batch consistency translates into fewer scrapped runs and less time spent on troubleshooting unexpected reaction profiles—an outcome we attribute to continuous monitoring right through final container filling.
Electronics and specialty coatings applications, where the presence of trace metal and chloride levels can upend downstream purity, require careful process management. Our engineers adapted purification steps so that these markets receive separate lots subjected to even stricter trace element and byproduct analyses. As a plant operator, record-keeping and transparency become personal: our logs detailed the CA and ECHA regulation requirements, prompting round-the-clock training for reactor operators to comply with REACH and other chemical safety rules. This transparency not only meets the compliance needs of global end-users; it builds lasting trust between us and formulation chemists downstream.
We treat occupational health and safety with seriousness, not only because regulations demand it, but because of what we have seen: even one fumbled transfer operation with chlorinated ethers can result in unnecessary downtime or harm. Our process design engineers favor single-use transfer manifolds and double-sealed pumps to limit worker exposure. During high-volume campaign runs, we train all operators in leak detection and spill containment. We learned early to fit tank farm piping with real-time sensors for pressure and vacuum anomalies, so we intercept leaks before they grow.
Transportation needs special focus. Over the years, the feedback from logistics managers led to improved drum closures, corrosion-resistant liners, and traceability labels that meet international standards. Routine transit stress, sunlight, or vibration can weaken seals and risk release if not appropriately managed. We share this logistical knowledge with our clients, providing storage and transfer advice tailored for their in-house operations.
We recognize a manufacturer’s obligation to reduce environmental impact at every stage of the product life cycle. During process intensification efforts, solvent emissions reduction ranked high on our list. We switched older vacuum stripping designs to closed-recycle loops, cutting down vent losses. Upgrading effluent handling meant installing specialized treatment units to scrub chlorine-containing waste before release. These investments reflect our commitment to responsible production, not just risk mitigation. We track emissions and water use, sharing this data with regulatory partners and customers alike.
Disposal concerns do not vanish at the point of sale. Clients ask us directly for guidance on post-use byproducts and safe destruction routes. Our technical advisory teams have spent time collaborating with downstream partners, suggesting routes for capturing and neutralizing residuals—hydrolysis, incineration at approved facilities, or distillation reclamation. These conversations go well beyond the mere sale of chemical stock; they form a partnership mindset, one we believe is key to real progress in safe industrial chemistry.
Long-term customers return because they know what to expect. Variability in feedstocks, batch-to-batch drift, or overlooked impurities have real effects on production—even small changes in acidity or water content can alter whole process flows downstream. In our team’s experience, only vigilant, hands-on involvement from start to finish averts these headaches. During scale-up or new project launches, we always allocate additional resources to pre-shipment sample testing, tailored certificates of analysis, and technical troubleshooting—all based on real-world customer encounters.
The competitive landscape does not allow cutting corners. Price pressure persists, but skipping quality checks or minimizing analytics has never worked out for anyone in the long run. Client reaction yields and process throughput depend on the unseen details: trace metals, oxygenates, or decomposition products. Often, the client’s process cannot reveal small differences until later, so our ongoing dialogue with their engineers supports problem-solving months or even years after the initial order leaves our warehouse.
Continuous improvement drives every update to our bis(2-chloroethoxy)methane product line. Much of it comes from the real-world situations we confront daily in reactors, storage tanks, and QA labs. For example, client audits pushed us to automate pH and Karl Fischer analysis in-line, giving us trend data that uncovers slow process drift before it risks a whole batch. Regular maintenance shutdowns prompted us to add backup filtration units and increase training for night-shift staff on abnormal event response.
Internally, monthly reviews of incident reports and customer complaints have shaped product labeling, transport procedures, and operator training. We see tangible improvements: fewer rework requests, reduced transit damage, and positive feedback from end-users whose critical syntheses depend on reliability. No improvement carries weight if it doesn’t translate into better performance for clients; this is our north star.
Several aspects distinguishes our product from comparable supply chains. Real depth lies in the details: regular production lots tested for reactivity, moisture, color, and acid number; tailored support for special-case synthesis routes; prompt technical guidance on handling and application. Customers regularly mention that our batch documentation assists troubleshooting and regulatory submissions.
Unlike broad-market distributors or trading houses, we build the product to fit targeted end uses, not just general stock. If technical teams need extra assurance or process consultation, we deliver sample data and production insights gained through years of plant operation and troubleshooting alongside global chemical processors. Our advice and our product arise from the same shop floor.
The most persistent challenge across the years remains the tightrope between scale, purity, and safety. Balancing market demand for short lead-times with the labor-intensive process controls of high-purity chlorinated ethers demands both engineering investment and process discipline. During periods of high output, unexpected impurity excursions sometimes occur, especially if minor process steps change or raw material variability creeps in. We control batch data in real time, halt production the moment red flags pop up, and retrain operators with every near-miss report. On-site technical staff perform root-cause analyses, informing future process tweaks.
Sustainability concerns also compel continual investment. Whether responding to regulatory changes in chlorinated substance handling or implementing new wastewater cleaning protocols, we devote leadership bandwidth to anticipating the next challenge. Our operations team led a switch to less hazardous auxiliary chemicals in cleaning and maintenance. Regular collaboration with waste management firms refines the post-use treatment and encourages clients to recover or treat byproducts responsibly rather than venting or dumping.
Aging infrastructure causes headaches for any manufacturer. In our facilities, phased upgrades target weakest links, replacing legacy fittings with corrosion-proof alloys or upgrading old control software to integrate predictive analytics. Through ongoing investment, we minimize unplanned downtime and ensure that critical safety systems always operate as planned.
Chemical manufacturing draws its reliability from established production records and verifiable process histories. We base each assertion on logged empirical data: analytic test results, performance feedback, and customer case reports. Every claim about our bis(2-chloroethoxy)methane links back to tangible actions—testing protocols, shipment records, and batch genealogy. New team members receive hands-on training, learning directly from our veteran staff rather than distant instruction manuals.
Transparency in production and recordkeeping enables customers to cross-check claims and validate batch-to-batch reliability. We believe detailed manufacturing logs, real-time analytical data, and documented corrective actions strengthen confidence not only in our product, but in the entire supply chain. With each lot shipped, our technical support team remains available for troubleshooting, clarifications, or secondary verification of results. It’s a relationship built on real data, not marketing or sales gloss.
The path from raw material to finished high-value product touches many hands. From our docking bays to the synthesis labs of our clients, a spirit of partnership and mutual commitment defines success. Our role as manufacturers of bis(2-chloroethoxy)methane extends beyond the plant fence to active involvement in customer R&D, problem solving, and regulatory compliance efforts. We draw on both process experience and field feedback, and invest in continuous education, training, and technology upgrades.
By focusing on detail, operational excellence, and an open channel for technical exchange, we help clients achieve their production goals. The distinctiveness of our product lies not just in purity or specification, but in the confidence we inspire from our collective experience—both the lessons learned through challenge and the solutions built from the ground up. Each delivered batch represents not only chemical compounds, but years of knowledge, improvement, and partnership.