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HS Code |
604334 |
| Chemical Name | Benzyl 3-Bromopropyl Ether |
| Cas Number | 41121-08-6 |
| Molecular Formula | C10H13BrO |
| Molecular Weight | 229.12 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 131-133 °C at 10 mmHg |
| Density | 1.31 g/cm³ at 25 °C |
| Refractive Index | 1.533-1.537 |
| Purity | Typically ≥98% |
| Solubility | Insoluble in water; soluble in organic solvents |
As an accredited Benzyl 3-Bromopropyl Ether factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle, 100 grams, with a secure screw cap and tamper-evident seal; labeled with hazard warnings and product details. |
| Shipping | Benzyl 3-Bromopropyl Ether should be shipped in tightly sealed containers, protected from light and moisture. Use appropriate secondary containment and clearly label as a hazardous material. Ship under ambient conditions unless otherwise specified, and adhere to all local, national, and international regulations for transport of hazardous chemicals. |
| Storage | Benzyl 3-Bromopropyl Ether should be stored in a tightly sealed container in a cool, dry, well-ventilated area, away from sources of ignition, heat, and incompatible substances such as strong oxidizers. Protect from moisture and direct sunlight. Use only with proper ventilation and wear appropriate protective equipment when handling. Store in accordance with relevant chemical safety regulations. |
Applications of Benzyl 3-Bromopropyl Ether in Industrial ManufacturingBenzyl 3-Bromopropyl Ether serves as a highly selective alkylating agent and intermediate in specialized industrial processes, enabling the synthesis of a variety of high-value chemicals. As a direct manufacturer, we focus on providing consistent, traceable quality for mission-critical downstream applications where regulatory compliance, process performance, and precise formulation are essential to our B2B partners. 1. Pharmaceutical Intermediate SynthesisBenzyl 3-Bromopropyl Ether is widely employed in the synthesis of active pharmaceutical ingredient (API) intermediates, specifically for constructing ether and alkylated side chains in compounds such as antihypertensives and antiviral medicines. Controlled addition allows for repeatable reaction yields and trace impurity control, essential for GMP pharmaceutical production. Downstream manufacturers integrate our material during the etherification step to introduce defined benzyl-propyl moieties, vital for both process safety and final API integrity. Industry compliance standards
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2. Agrochemical Active Ingredient ManufacturingThis material is relied upon for forming ether-bridged linkers in the synthesis of crop protection agents, particularly pyrethroid analogues and fungicide stability enhancers. It enters the process during the key synthesis of oxygenated bridge groups, determining the bioactivity and environmental persistence of the end formulation. Agrochemical companies depend on consistent batch purity and traceability for large-scale campaigns under GLP and global export requirements. Industry compliance standards
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3. Specialty Polymer ModificationChemical manufacturers incorporate this ether as a co-monomer or as a functional end-group modifier in the production of specialty block copolymers and cross-linked resins. It enables precise control over polymer architecture, imparting enhanced solubility or targeted cross-linking points, particularly in advanced coatings and high-electrical-resistance materials. Polymer engineers integrate the material in the modification stages to ensure consistent chain termination and surface chemistry for high-performance molded goods or films. Industry compliance standards
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4. Fine Chemical Building Block SupplyCustom synthesis laboratories and fine chemical producers use this ether as a building block for manufacturing specialty intermediates—including compounds for fragrance fixatives, high-purity linkers, and protected alcohols. Its high reactivity under anhydrous conditions allows for the extension or modification of complex carbon skeletons, where traceability and specification compliance matter for downstream applications in sensitive manufacturing flows. Labs utilize our product for controlled alkylation or ether bond construction under specific regulatory and analytical regimes. Industry compliance standards
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Walking through our manufacturing facility each morning, we are reminded that every freshly synthesized batch of Benzyl 3-Bromopropyl Ether tells its own story. The hum of reactors, the measured pull of vacuum lines, technicians monitoring color and clarity—these become daily rituals. As a team working hands-on, we don’t just produce a chemical; we shape its future. Each lot of this ether carries our fingerprints, and because we witness its transformation from raw materials to finished product in real-time, we owe our customers accuracy and insight, not flashy adjectives or marketing promises. We prefer practical talk: what works, what lasts, and what sets this specialty ether apart from the generic labels and marketing claims scattered across the market.
Benzyl 3-Bromopropyl Ether carries the model number C10H13BrO for us, shaped by the specific demands of our industrial synthesis route. It’s not just chemistry on paper; the molecular weight, consistency of bromine content, and purity levels we achieve matter in every real-world application. From our experience, customers in the fine chemical sector, pharmaceutical intermediates, and specialty polymer compounds often need detailed assurance—no unwanted residuals, no confusing variability lot to lot, and no unexplained discoloration. We’ve minimized those headaches in our shop through tight controls and regular spot checks, not endless shelf tests or “certifications” divorced from actual workflow. Every shift, our supervisors monitor the reaction progress and distillation cut, keeping the water content and acid value low—an effort that saves our collaborators hours of troubleshooting downstream.
Benzyl 3-Bromopropyl Ether looks clear and possesses a distinct, sharp odor characteristic of benzyl derivatives. This isn’t just a matter of aesthetics—it impacts workup steps, solvent exchanges, and physicochemical compatibility for a wide range of formulation processes. We produce it as a colorless to pale yellow liquid, with a controlled density and a boiling point finely tuned by fractional distillation. Our team learned early that unrefined materials, even from established sources, often show yellowing or precipitation when left too long in storage. By tightening our handling, filtering twice directly off the column, and using sealed, moisture-free packaging, our product maintains stability that lab techs appreciate. Feedback from customers reinforces this: a little extra care in the factory translates to far easier handling and dosing for researchers and process chemists.
It’s easy to overlook specification tables. Inside the manufacturing bay, we see those numbers as daily hurdles instead of mere lines on a certificate of analysis. Water content must stay below 0.1% unless you like headaches in your next nucleophilic substitution. Acid value—the hidden detail lots of non-producers skip—directly influences shelf life and product compatibility, especially for pharma-grade uses or when blending into resin backbones. We've learned from a decade of direct troubleshooting that ignoring these may mean irritating phone calls from anxious customers asking why yields dropped. Our Q.C. lab can trace every lot back to the raw bromine shipment and the benzyl alcohol drum—no luck involved, just systematic records. For us, transparency starts with our own internal audits and records, not just what we hand over to regulatory agencies.
Benzyl 3-Bromopropyl Ether works as a powerful building block in a variety of organic syntheses. Its structure offers both benzyl and bromoalkyl reactivity, which opens doors for creative chemistry. Our regular customers range from global pharma giants refining new APIs to material science labs developing custom ion-exchange resins. The “ether” linkage in the molecule confers distinct solubility properties and ensures a latent functional handle in later steps. In our own development process, we repeatedly saw chemists select this compound specifically where directly using benzyl bromide or 3-bromopropanol caused side reactions or decomposition. By offering enhanced thermal and chemical stability, this ether steps in where others fail or require costly protection/deprotection strategies.
A core use is as an alkylating or etherifying agent. For example, in manufacturing specialty crown ethers or macrocycles, our material gives superior yield and purity compared to off-the-shelf alternatives. Customers working on new organometallic ligand scaffolds tell us our product’s tight control over halide content keeps their reaction rates predictable. In pharma R&D circles, the compound fills a niche as a protected intermediate during multi-step synthesis, where direct use of more reactive halides risks unwanted rearrangement. Over years of collaboration with peptide and oligonucleotide labs, we've observed our Benzyl 3-Bromopropyl Ether providing a reliable benzyl-protecting option for sensitive alcohol groups, with fewer side products than broader-chain analogues.
In polymer science, feedback from technical teams underscores the benefit of using this molecule as a chain extender or modifying group in specialty resins. It offers easy activation of the propyl bromide moiety while the benzyl segment remains unreacted until late-stage processing. One notable instance: a partner working on anti-static surface coatings swapped to our grade after repeated problems with batch inconsistency from bulk suppliers. Even small batches with tighter controls not only solved their problem but led to a 20% yield increase in curing efficiency at lower temperature. These operational details matter far more in practical settings than any glossy specification sheet could advertise.
Some customers initially seek Benzyl 3-Bromopropyl Ether based on literature synthesis alone, believing it’s interchangeable with 1,3-dibromopropane, benzyl bromide, or 3-bromopropanol. Experience says otherwise. 1,3-dibromopropane substitutes in alkylation reactions with less selectivity, trailing higher side product content—most noticeable in scale-up kilo-lab runs. Benzyl bromide, popular and available, often brings higher volatility and toxicity risk, not to mention a tendency to over-alkylate, especially in crowded functional group environments. Spec-for-spec, Benzyl 3-Bromopropyl Ether integrates the best: reactivity without runaway side reactions, moderate handling precautions, and lower risk of accidental benzylation where not intended.
Our in-house comparison trials showed that even small shifts in molecular structure—like swapping the benzyl for an alkyl group or shifting the bromo from the propyl to the benzyl moiety—cause dramatic changes in both reactivity and downstream behavior. Certain application-specific needs, such as the requirement for a clear, storable intermediate in progressive pharmaceutical synthesis, demand these nuanced differences. The ether bond here imparts notable hydrolytic stability, a favorite for clients storing intermediates for months without reporting degradation or off-odors. Relying only on supplier claims overlooks years of muscle memory from actual process lines—something we cultivate internally and share directly with partners and clients.
Much of our advantage comes from investments in process understanding, not from purchasing more advanced reactors or issuing new certificates. It’s about short feedback loops within our factory. Routine maintenance of distillation lines, regular cartridge replacement in microfiltration set-ups, and qualified operators in each shift—these controls keep batch-to-batch variations less than 0.5%, an achievement reflected in fewer after-sale support calls and higher customer satisfaction. During troubleshooting, our chemists don’t hide behind forms; they often walk suppliers or research partners through actual run logs, and they’re honest about anything they catch during spot checks. We’ve traced minor off-odors in shipping barrels to inadequately rinsed pumps—lessons burned into our SOPs, not the next promotional brochure.
Our strategy takes full account of how this product interacts with diverse feedstocks. Small differences—variations in precursor purity, ambient moisture, temperature swings mid-reaction—show up in rheology and color, which affect downstream use in synthetic schemes. We don’t treat these as routine background noise or fudge them behind vague promises of “high quality.” Revealing such process knowledge sometimes means losing easy sales to traders looking for the cheapest offgrade material. We’re content with that, knowing every returning client shares our appreciation for predictability—something beyond words, proven by years of repeated, open feedback.
Engineers and chemists buying Benzyl 3-Bromopropyl Ether from our production lines often manage bench-scale projects turning into commercial-scale runs. The material we send out shapes their own yields, timelines, and cost forecasts. Some clients adapt their synthetic plans to leverage the unique reactivity of our product, while others optimize downstream workups based on its stability profile. We answer detailed questions on solubility in nonpolar and polar organic solvents, possible residuals, and exclusion of certain catalytic trace metals. These are not “nice-to-know” topics for our partners, but core concerns that either improve or threaten their bottom line. Our R&D staff regularly joins discussion calls with clients’ technical teams, aiming to diagnose, support, and learn from their successes and pain points.
Every improvement—even those as humble as a change in drum lining material—emerged from careful technical discussions about loss on storage, migration, or compatibility in customer reactors. As we see it, the path to reliable chemicals lies in confronting real-world application problems with a factory mindset. If a run needs tweaking for a client’s process, we engage in hands-on requalification, not brush-off excuses or ambiguous suggestions. Regular in-person audits and shared troubleshooting sharpen both sides’ understanding, ensuring the material fits the customer’s role, not just passing internal technical specs or regulatory compliance hurdles.
With disruptions across chemical supply lines making headlines, many of our new customers come to us after hitting barriers—late shipments, inconsistent batches, or mislabelled intermediates. We see this as a result of distancing producers from end users. By controlling the process in-house, from raw materials to finished packaging, our facility bridges the gap between theoretical value and actionable certainty. Our stockrooms run on actual projections built from conversations with longtime partners, not only forecasts from sales teams. This advantage turns up again in logistics: custom packaging on request, sealed drums suited to sea or air transit, real-time batch traceability, and optional stock reservation keep projects on track and prevent line-down events.
On compliance, we take regulations seriously. Instead of box-checking, our compliance workflow involves thorough batch documentation and regular third-party audits, where inspectors walk our floor and sample directly from live production batches. Our team appreciates that many customers require documentation for sustainability, traceability, or safety audits in their own operations. By laying out the full journey of each lot—inputs, controls, shipments—we help partners satisfy their own end-clients’ requests with real data, not assumptions or incomplete reports.
Every month, feedback from partners around the world finds its way to our process improvement meetings. For example, requests for larger packaging volumes prompted us to expand our filling line capabilities by adding new 200-liter drum filling stations with specialized inert gas blanketing to preserve purity for export. Several biotech clients mentioned trouble with dosing accuracy using previous suppliers’ uneven viscosity batches. Our operations team addressed this not by changing the base molecule, but by refining our distillation cut points and adding a secondary filtration step—resulting in smoother, more consistent liquid flow even during extended pipetting or bottling sessions.
Another regular request involved lowering trace residuals—sulphur, halogens, and heavy metals—below standard thresholds for advanced electronic and medical segment users. Instead of dismissing these quality drives as “special requests,” we incorporated extra polishing steps and revalidated our raw material sources. The new analytical regime led to more rigorous controls, teaching both our staff and our clients how technical discipline brings measurable benefits beyond paperwork or test reports. Being present at every production step enables us to explain these refinements in granular detail to every customer who asks, without hesitation.
Our production team keeps up with the latest advances in synthetic organic chemistry, both for in-house projects and to support our clients’ evolving needs. Whether reading literature on electrolyte development, new polymerization techniques, or improved protocols for tandem alkylation/reduction, we sharpen our own approach. We have invested in a compact pilot lab directly within the factory, so improvements suggested on the factory floor pass directly to small-scale validation and, if successful, full production. Putting academic theory to the test under live process constraints helps us challenge assumptions, weed out impractical fads, and endorse the practices that truly make a difference at the operator’s bench or in a client’s pilot plant. Learning doesn’t stop at science; it extends to supply chain management, green chemistry, and even packaging design, always driven by real user challenges.
In the daily flow of manufacturing, we define reliability not by what we promise, but by what arrives in our clients’ hands. If a batch arrives at a hospital compounding lab, an R&D center, or a specialty materials pilot plant, we expect it to work as planned—no surprises. It’s easy to promise specifications on a website; it takes harder work to ensure that, six months down the line, a stored drum still delivers on its original clarity, odor, and reactivity. If a project leader flags a variance or expects a tweak, we talk through real-time solutions, not scripted answers. The open exchange with users at every stage—purchasing, inventory, application—shapes new improvements and inspires us to stretch for even higher reliability. That is the unseen handshake we share with every partner.
The world of specialty chemicals such as Benzyl 3-Bromopropyl Ether is filled with noise—layers of claims, datasheets, and sometimes less-than-transparent sourcing. Over decades, we have learned to tune that out in favor of direct action. Every liter, kilo, or ton shipped directly shapes another research breakthrough, a regulatory step, or an end-use application people may rely on for years. We measure progress in reduced troubleshooting calls, fewer product holds, faster downstream workflow, and most importantly, in the mutual trust built between our team and the chemists and engineers who depend on us.
For new partners considering Benzyl 3-Bromopropyl Ether, our doors—both literal and figurative—remain open for technical discussions, real-world application support, and feedback loops that inform tomorrow’s production standards. We know it’s easy to browse for a chemical; it’s far harder to choose a supply partner ready to match your standards with their daily actions. Our product stands ready, shaped by years of hands-on improvements and a company culture that values collaboration over empty slogans.