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HS Code |
906995 |
| Productname | 1-Bromo-2-(2-Methoxyethoxy)Ethane |
| Casnumber | 6482-24-2 |
| Molecularformula | C5H11BrO2 |
| Molecularweight | 183.05 g/mol |
| Appearance | Colorless liquid |
| Boilingpoint | 201-202°C |
| Density | 1.432 g/mL at 25°C |
| Refractiveindex | 1.445 (20°C) |
| Flashpoint | 92°C |
| Solubility | Soluble in organic solvents, slightly soluble in water |
| Meltingpoint | -34°C |
| Smiles | COCCOCCBr |
As an accredited 1-Bromo-2-(2-Methoxyethoxy)Ethane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle with secure screw cap, labeled “1-Bromo-2-(2-Methoxyethoxy)Ethane, 100g,” including hazard symbols and handling instructions. |
| Shipping | 1-Bromo-2-(2-Methoxyethoxy)ethane is shipped in securely sealed containers, protected from moisture and light. It is classified as a hazardous material, requiring proper labeling and documentation. During transit, it should be handled according to relevant regulations, kept upright, and stored in a cool, well-ventilated area away from incompatible substances. |
| Storage | Store 1-Bromo-2-(2-Methoxyethoxy)ethane in a tightly closed container, in a cool, dry, and well-ventilated area away from direct sunlight, heat sources, and incompatible materials such as strong oxidizers. Protect from moisture. Ensure the storage area is equipped for handling flammable liquids and that all containers are properly labeled. Use secondary containment to prevent leaks or spills. |
Applications of 1-Bromo-2-(2-Methoxyethoxy)Ethane in Industrial Manufacturing1-Bromo-2-(2-Methoxyethoxy)Ethane acts as a vital intermediate in specialty organic synthesis across the fine chemicals and pharmaceuticals sectors. Its controlled reactivity with nucleophiles and solubility in various organic solvents make it suitable for high-value downstream applications that require strict regulatory compliance. Our manufacturing consistently meets demanding industry specifications, supporting our B2B customers’ development of advanced chemical products. 1. Synthesis of Pharmaceutical Intermediates for CNS-Active CompoundsThis compound serves as a key alkylating agent in the production of several central nervous system (CNS) active pharmaceutical intermediates. It enables precise etherification and bromoalkylation steps, often under mild base conditions like K₂CO₃ in DMF, allowing for high selectivity in ethylene glycol chain extension on core scaffolds. Downstream processes typically carry out rigorous residual solvent and purity checks due to the necessity to comply with global pharmacopeia monographs, with the raw material integration concentrated in the early to mid-stage API syntheses. Industry compliance standards
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2. Production of Specialty Surfactants for Electronic ChemicalsIn the field of electronic chemicals manufacturing, this glycidyl ether derivative is a critical alkyl group source for the preparation of tailor-made non-ionic surfactants. These surfactants, required for ultra-pure applications like wafer cleaning and photoresist processing, often undergo etherification with fatty alcohols in the presence of this bromo compound to afford high-purity glycol ether moieties. All handling occurs under ISO class cleanroom protocols to ensure low ionic contaminants, as demanded by microelectronics fabrication OEMs. Industry compliance standards
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3. Manufacture of Polyethylene Glycol Ethers for Agrochemical FormulationsAgrochemical formulators use this compound as an essential pegylation reagent for developing alkyl ether derivatives intended to improve solubility, stability, and spreading properties in pesticide and herbicide product blends. Using controlled alkylation processes, formulators graft short-chain glycol ethers to active ingredients or adjuvants, optimizing delivery efficiency while maintaining residue compliance in major export markets. Each batch receives GC-MS quality profiling to adhere to maximum residue levels established by international regulatory boards. Industry compliance standards
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4. Raw Material for Synthesis of Functionalized Polymers in Industrial LubricantsThis raw material functions as a monomeric building block for synthesizing specialized polyether and polyester copolymers used as viscosity modifiers and anti-wear additives in high-performance industrial lubricants. Utilizing step-growth polymerization with multi-hydroxyl or multi-carboxyl comonomers, it introduces controlled chain length and terminal ethylene glycol units, allowing manufacturers to fine-tune molecular weight distribution, pour point, and film stability. All production stages adhere to certified lubricant additive registration and testing standards. Industry compliance standards
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Competitive 1-Bromo-2-(2-Methoxyethoxy)Ethane prices that fit your budget—flexible terms and customized quotes for every order.
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Producing 1-Bromo-2-(2-Methoxyethoxy)ethane brings a variety of technical challenges and satisfactions that come with specialization. Having worked on its synthesis and delivery for over a decade, I can say this—customers looking for bromoethers with flexibility in solubility and reactivity often land on this molecule for good reason. Its halogenated chain and ethereal group provide unique access points for downstream chemistry, and our experience in purifying and characterizing the product directly impacts both yield and safety for users at the bench.
Our core batch process for this product, often referenced under the model 98-07-7 for industry shorthand, relies on meticulous moisture control from start to finish. Even at parts-per-million, stray water changes the character of the product, and this has real impact on subsequent reaction steps for anyone performing nucleophilic substitutions or ether formation. The structure—with a bromine at one end and an ethylene glycol methyl ether extension—offers the right level of volatility and reactivity, different from the more common, shorter alkyl bromides. Chemists aiming for tethered functionalities or long-linker introductions into molecules look here for good reason.
There’s a noticeable difference between this product and simpler bromoalkanes. We see requests from contract research organizations and pharma R&D labs who’ve run into problems using plain bromoethane or 2-bromoethanol. They report heavier by-product formation, unpredictable purification, or lower yields in some cases. 1-Bromo-2-(2-Methoxyethoxy)ethane offers a more controlled release of reactivity due to its extra ethylene oxide and the methyl-capping of the terminal oxygen. This translates to smoother chain extensions or safer introduction of bromo groups where unwanted rearrangements would otherwise occur.
We’ve sent technical representatives into universities and fine chemical plants to troubleshoot why competitors’ batches weren’t giving expected results. Most often, it comes back to overlooked impurity profiles. Our expertise comes in not only keeping color and volatiles within tight margin, but also in understanding subtle co-elution phenomena that can confuse NMR and GC-MS readings, which slow down the scientific process for our clients. Our feedback loop between production and customer support sheds light on which purity factors make a real-world difference.
High-purity 1-Bromo-2-(2-Methoxyethoxy)ethane looks clear and handles easily at room temperature. Density and refractive index control are not just numbers on a sheet—they are active markers that tell you whether batch composition has strayed from expectation. We keep these in a tight range because off-spec product later generates headaches in both formulation and waste disposal. Tightening control over these parameters means end-users spend less time troubleshooting and more time developing their own products.
Compared to shorter-chain bromoethers, our experience with the 1-bromo-2-(2-methoxyethoxy) backbone is that it stays more stable under temperature swings common in pilot plants. That matters for larger-scale operators where tank heating or extended mixing present risk of side reactions. While volatility still requires closed systems, fewer unplanned releases or off-odors are recorded compared to more reactive analogues.
Every time we get feedback directly from a bench chemist or plant process engineer, we learn which properties really count outside the catalog. The extended chain length and built-in ether group mean it acts as a better solubilizing linker for coupling reactions, compared to, say, just 1-bromoethane. There’s less tendency to produce gaseous by-products and less corrosive fume generation, which helps maintain equipment integrity and improves lab morale—no one likes unnecessary kaustik cleaning days.
In the real world, staff turnover can mean that knowledge walks out the door overnight. That’s why we run our process under automation but keep enough manual checkpoints so that in case anomalies appear, seasoned chemists can spot issues using UV or NMR trace readings long before they escape the reactor. Several of our clients run high-throughput runs that punish glassware and seals; when they use our product, their feedback is that downstream column purifications run easier, and they finish more batches per week.
It’s tempting for purchasing teams to go with the “closest” brominated ether, but that introduces risk when fine control is needed. We’ve had customers attempt synthesis with similar products, like 2-bromoethyl methyl ether, expecting matching reactivity. They reported more hydrolysis, and unwanted ether cleavage especially under acid catalysis. The structural difference—the extra ethylene glycol unit—means our product remains more inert in neutral media, and allows for gentler downstream modification. For those exploring long tethered architectures, the stability and solubility differences become dramatic in high-dilution or scale-up runs.
Technical documents sometimes gloss over the practical difference between direct alkyl bromides and these extended-chain ethers. Our experience is that this product bridges the old divide between process efficiency and safety. Colleagues in synthetic peptide and oligonucleotide work report less batch loss from undesired side reactions. They value how the methoxy group tames reactivity, while the bromo function remains targeting enough for efficient attachment.
Large-scale operations don’t always appreciate how tricky it gets to manage brominated organics during transfer. We’ve spent years refining our drum and bulk container fills to cut down accidental venting and cross-contact. This means fewer losses, but more importantly a safer environment for warehouse and technical personnel. Small-scale users in analytical labs also benefit—sealed ampoule and bottle packaging schemes retain product clarity and reduce n-oxide development over time, which can otherwise cause confusing NMR backgrounds or even safety hazards.
Repair shops and pilot plants who’ve tried to save on packaging quality usually call us back in a matter of weeks, reporting increases in spoilage rates or corrosion patchwork. Using proper inner liners and keeping headspace dry extend product shelf life and avoid unwanted interactions with metal container closures, so less downtime occurs for everyone involved.
Our own quality assurance lab pulls product samples from every batch and runs them against both published specifications and in-house benchmarks. TLC and GC retention times must line up with verified lots to receive shipment approval. Beyond the numbers, our chemists often pick up on subtle visual or olfactory cues indicating overbromination or breakdown. Time and again our method improvements trace back to open conversations with chemists who live with the material day in and day out, handling both uptime and mishaps.
We take customer complaints seriously because every production hiccup is magnified downstream. Direct dialogue has led to improved condensation drying, tweaks to quench sequencing, and even changes to which glassware grades are certified compatible during staged transfers. These refinements trickle down to our clients, who get a clearer, more consistent product that integrates with minimal fuss into their R&D, whether that involves complex natural product modification or routine halide substitution.
Regulations around brominated ethers fluctuate as safety data accumulates from the field. We maintain a close watch on what regional authorities require for handling, emission control, and environmental disposal. As manufacturers, we have a direct duty to not only supply a clean product but to share best practices for managing by-products and off-cuts. Our technical sheets give real disposal routes that prevent laboratory buildups and keep workspaces compliant without routine surprise audits.
Manufacturing this product generates minimal persistent by-products when certain routes and recovery practices are observed. Early in our production history, reclaiming spent solvent reduced major waste streams and allowed us to offer competitive pricing, while also avoiding environmental headaches at discharge stations. Facing inquiries from industrial buyers, we routinely share solvent lifecycles and renewable input options. With more labs shifting toward green initiatives, the dialogue now includes targeted suggestions for alternative quench agents and less aggressive degassing media—saving both money and environmental compliance headaches.
As a supplier with hands in both the synthesis and scaling of 1-Bromo-2-(2-Methoxyethoxy)ethane, our relationship with this compound continues to evolve. We listen to the needs of medicinal chemists looking for reliable building blocks, as well as polymer labs seeking scalable solutions. The constant across these fields is a need for materials that offer just the right level of reactivity and control.
The high purity and accurately controlled physical properties we deliver trace back to persistent technical investment. We did not arrive here overnight. Only continued collaboration with academic and industrial partners allowed us to refine purification strategies, raw material sourcing, and even error-proofing packaging. Every update to our operating procedures comes with feedback from decades’ worth of actual usage scenarios—data that informs every technical change.
Research groups working at the edge of modern science face enough challenges navigating regulatory change and analytical complexity. Our contribution comes from making sure their reagents don’t add to the pile. The specific qualities of 1-Bromo-2-(2-Methoxyethoxy)ethane—controlled volatility, robust chain length, uniformity of substitution—are not accidents, but hard-won results of consistent manufacturing focus. By sticking close to the real needs of the market and drawing lessons from every returned drum or troubleshooting call, credible manufacturing experience can continue to serve both established and emerging fields alike.
Formulators and researchers choosing to source directly from us—over trading houses or brokers—gain from the transparency and accountability that comes only from the original production line. With regulations tightening, and the shift toward more sophisticated synthetic targets, familiarity with the quirks and performance of starting materials takes priority. The feedback cycle between our plant technicians and bench scientists shortens turnaround during synthesis troubleshooting. Face-to-face problem solving, even over video call, prevents batch failures that cost weeks or months in developmental delays.
We’ve seen projects revived simply because a collaborative approach to process optimization revealed an overlooked variable or contamination source. Because we manufacture at scale but maintain customer-specific batch traces, our partners benefit from insight into where a reagents’ properties are tuned to match their needs. The direct path means less wasted effort tracking provenance, and more confidence that critical raw materials remain reliable and repeatable, year after year.
A number of our long-standing clients work in high-throughput medicinal chemistry environments. Their feedback underscores the importance of little details—seal integrity, documented trace metals, and authenticated impurity profiles. One example that stands out comes from a team pursuing electrophilic aromatic substitution chemistry who had experienced yield drops and inconsistent product purity using a lesser grade of bromoether. By switching to tightly controlled lots of our 1-Bromo-2-(2-Methoxyethoxy)ethane, they saw a reduction in side product formation and achieved more predictable downstream results.
Polymer labs working to customize macromolecular architectures also comment on this product’s role as a precision linker. The controlled chain length and methoxy-terminated end allow for cleaner reactions when introducing functionality along synthetic polymers, lowering the frequency of off-coloration and unexpected branching. By working with us directly, these users benefit from access to compound-level technical data that helps them interpret process deviations early—before a minor fluctuation escalates into raw material waste or a safety incident.
Reliable supply chains save budgets and time, but also avoid the kind of production gaps that force project delays. Our job as manufacturers doesn’t end with shipment—the essential service lies in empowering chemists to anticipate, optimize, and troubleshoot at their own pace. We prioritize open exchanges with end users, proactively communicating upcoming changes in raw material availability, purity metrics, or regulatory shifts. The aim is stability, with contingency built in wherever possible.
Members of our production team bring a range of skills from analytical chemistry, large-scale handling, and regulatory compliance. Being able to relate to the daily realities of a lab or a plant floor helps us shape policies and practices that cut through jargon and focus on solving problems at source. Major refinements in our production approach, whether it involves reactor upgrades or waste stream reductions, draw inspiration directly from the voice of the user community.
Manufacturing and supplying 1-Bromo-2-(2-Methoxyethoxy)ethane isn’t just about feeding demand; it’s about stewarding quality and enabling progress up and down the chemical value chain. Time and again, being present and responsive has enabled us to bridge technical divides, reconcile lab resilience with industrial output, and maintain a reputation for delivering what matters in practice, not just on paper.
Our commitment stems from years of feedback, technical troubleshooting, and a true appreciation of what working chemists face every day. When molecular complexity and batch performance matter more than ever before, a strong manufacturing partnership makes the difference between reliable progress and needless complication. Direct insight, hands-on troubleshooting, and ongoing dialogue—these are the tools that underpin our approach, and they make our product not just reliable, but indispensable to those who depend on it.