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HS Code |
694255 |
| Chemical Name | 3-Fluorobenzyloxybenzene |
| Molecular Formula | C13H11FO |
| Molecular Weight | 202.23 g/mol |
| Cas Number | 104898-68-4 |
| Appearance | Colorless liquid |
| Boiling Point | 296-298 °C |
| Density | 1.132 g/cm³ |
| Solubility | Insoluble in water, soluble in organic solvents |
| Smiles | FC1=CC=CC(COC2=CC=CC=C2)=C1 |
| Purity | Typically >98% |
| Refractive Index | 1.561 |
| Storage Conditions | Store at room temperature in a tightly closed container |
As an accredited 3-Fluorobenzyloxybenzene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Brown glass bottle labeled "3-Fluorobenzyloxybenzene, 25g" with hazard symbols, lot number, and manufacturer details; securely sealed. |
| Shipping | 3-Fluorobenzyloxybenzene is securely packaged in accordance with standard chemical shipping regulations. The material is contained in sealed, chemical-resistant bottles and cushioned to prevent breakage. It is clearly labeled and accompanied by appropriate documentation, including safety data sheets (SDS). Shipping is typically via certified couriers specializing in chemical transport, ensuring safe and compliant delivery. |
| Storage | 3-Fluorobenzyloxybenzene should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from sources of ignition, incompatible substances, and direct sunlight. Keep the chemical away from strong oxidizers and acids. Ensure proper labeling and avoid moisture exposure. Access should be limited to trained personnel, wearing appropriate protective equipment. Store at room temperature unless otherwise specified by the manufacturer. |
Applications of 3-Fluorobenzyloxybenzene in Industrial Manufacturing3-Fluorobenzyloxybenzene serves as a critical intermediate in multiple high-value chemical synthesis routes in the pharmaceutical and specialty materials sectors. As the direct manufacturer, we supply this material to downstream partners who use it in tightly regulated environments with advanced formulation demands. Below we detail the principal application scenarios, each with specific compliance, formulation, integration points, and tangible end products. 1. Pharmaceutical Intermediates for Fluoroaromatic Drug SynthesisPharmaceutical manufacturers use 3-Fluorobenzyloxybenzene as a building block in the synthesis of innovative APIs, especially for developing molecules featuring fluorinated aromatic rings. This enables targeted functional group modifications in cardiology and central nervous system drug candidates during the early-stage and scale-up batch production phases. The compound enters multi-step synthesis campaigns requiring strict traceability and reagent quality documentation. Industry compliance standards
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2. Advanced Material Intermediates for Liquid Crystal Display CompoundsProducers of specialty display materials utilize 3-Fluorobenzyloxybenzene to prepare liquid crystal compounds for use in high-resolution LCD and OLED displays. Its unique fluorinated ether structure contributes to the synthesis of high-performance mesogenic molecules, supporting enhancements in dielectric anisotropy and response times. This application demands precise precursor quality and is tightly linked to Japanese and Korean electronic material regulations. Industry compliance standards
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3. Agrochemical Active Intermediate ManufacturingMajor agrochemical producers incorporate 3-Fluorobenzyloxybenzene during the multi-step synthesis of selective fluorinated herbicide and insecticide actives. Its electron-donating and -withdrawing properties support customized halogenation and coupling reactions, creating compounds with improved crop selectivity and degradation profiles. Regulatory focus on raw material traceability and contaminant limits imposes rigorous batch documentation. Industry compliance standards
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4. Custom Synthesis of Specialty Aromatic Monomers for Engineering PlasticsProducers of advanced polyarylether and fluoroaromatic polymers use 3-Fluorobenzyloxybenzene as a core monomer or end-functionalizing agent to regulate polymer structure and properties such as thermal resistance, solubility, and electroconductive capacity. The introduction point within the overall polymerization chain requires analytical verification and consistent process validation per customer technical dossiers. Industry compliance standards
Typical usage ratio
Downstream process integration
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Producing specialty chemicals like 3-Fluorobenzyloxybenzene has changed a great deal in the past decade. Every manufacturer likes to make broad claims about quality and purity, but those of us who run reactors and watch real batches behave have learned to value technical nuance over marketing talk. Not every fluorinated ether finds widespread demand, but 3-Fluorobenzyloxybenzene has carved out a spot as a trusted intermediate in pharmaceutical and agrochemical synthesis. Let us offer a detailed look at this compound, how we manufacture it, and why research labs and industrial customers seek it out.
We produce 3-Fluorobenzyloxybenzene with a focus on purity that hinges on both starting materials and control over reaction parameters. Chemical formula and structure stand as C13H11FO, with a molecular weight reflecting that specific substitution pattern. The fluorine at the meta-position on the benzyl moiety shifts the compound’s reactivity compared to unsubstituted and ortho- or para-fluoro analogs. For every batch, we utilize validated GC-MS and NMR protocols to identify and quantify trace impurities, so experienced buyers notice the difference in both purity and reproducibility. Most end-users are looking for material at 98% or higher purity, and every shipment undergoes a battery of spectral checks in-house to prevent batch-to-batch surprises. Melting point, appearance, and precise fluorine content follow industry-accepted figures, and we maintain traceable batch records that go back to raw material lot numbers. Whether the order is multi-kilo or pilot scale, the ethos remains the same: provide exactly what chemists need, no more and no less.
This molecule does not sit on a warehouse shelf for long. Most of what we make goes to process R&D or pilot-plant chemists in pharma companies refining active ingredient syntheses. The benzyloxy protection group lends stability during multi-step syntheses, yet comes off readily under mild conditions. The unique aspect here lies in the influence of the fluorine atom. Experienced process chemists have noticed how a single fluorine can shift electron density, adjust lipophilicity, and boost metabolic stability in finished drug candidates. That small change means libraries with 3-fluorobenzyloxybenzene often show improved activity profiles. Never mind what looks good on paper: real-world data keeps showing that these subtle modifications make a difference. Agrochemical researchers rely on the same properties—one fluorine might mean the difference between field failure and a promising new pesticide scaffold.
In our own scale-ups, practicalities count. 3-Fluorobenzyloxybenzene dissolves well in many common organic solvents, and it maintains chemical integrity through demanding reaction setups. Chemists working on prodrugs, resin-bound intermediates, or just expanding their SAR focus on this building block for a reason: it streamlines late-stage functionalization without forcing drastic changes to established protocols. It survives most common conditions for halogen exchange or oxygen nucleophile displacement, so it’s a mainstay in labs aiming for both speed and reliable selectivity.
Ask anyone who’s run a production line: small flaws in a key intermediate will surface, usually at the worst possible step downstream. Some suppliers blend stocks or repackage material from upstream sources, but as the actual producer, we know exactly where our edge lies. The starting fluorinated benzyl alcohol has strict handling procedures—moisture and trace oxygen exposure alter the profile and lower yield on scale. Our reactors feature nitrogen-blanketed atmospheres, and we’ve customized our filtration stages to guard against polymer formation that sabotages purity and recovery. Each transfer between vessels receives real-time pH and temperature logging, and data loggers guarantee that nothing slips through unattended shifts. This isn't headline innovation, but it takes off-the-shelf reaction schemes and upgrades them through stubborn, hands-on process control. Down the line, our customers rarely call us about contamination, uneven color, or poor dissolution. Regularity breeds trust: knowing that the 3-fluorobenzyloxybenzene from this week’s batch matches last year’s output, solvent for solvent, gram for gram.
In early years, we fielded complaints about suppliers providing "nominal" grades that deviated by several percent—sometimes enough to crash an HPLC system or gum up distillation glassware. Tightening up on starting reagent checks and solvent recycling allowed us to bring finished product homogeneity to within analytical error. There's no copy-paste solution for this; it's built from production runs and customer reviews, each one nudging the process closer to genuine reliability.
Anyone assessing benzyl ethers for project synthesis knows how subtle differences on the ring alter reaction profiles. Take standard benzyloxybenzene or its para-fluorinated cousin. Substitution at the meta-position, as in 3-fluorobenzyloxybenzene, reduces over-reactivity during nucleophilic aromatic substitution or Friedel–Crafts reactions. The electron-withdrawing fluorine atom at the 3-position hampers unwanted side-reactions common with more activated positions. If you’ve ever watched a messy TLC plate or scrubbed a gunked-up column due to off-pathway side products, you appreciate that subtlety. For customers planning to remove the benzyloxy group later, the ortho or para isomers can yield byproducts or require longer deprotection steps. The 3-fluoro variant streamlines these procedures, and as far as we’ve verified from returned feedback and our own downstream tests, this saves both time and solvents during scale-up work.
It helps to remember that many building blocks on the market come from large-scale, unmonitored streams. If you’ve ever had to toss half a kilo of unusable material due to unknown side-reactions or darkening during storage, you know the advantages of single-synthesis traceability. We don’t blend or relabel: from raw fluorinated alcohol to finished crystalline solid, the route runs under one quality system. That lets us guarantee not just specification, but real chemical behavior.
Facts learned from years on the production floor inform every modified protocol we ship to the analytical and production labs. Storage climate, drum age, even the order of solvent addition play their quiet roles. Shipping 3-fluorobenzyloxybenzene halfway across the world, especially during hot months, can test even stable stocks. Early on, we adopted multi-layer drum liners and non-reactive seals, based on real feedback about trace impurities formed under extended light or moisture exposure. There’s no shortcut—batch after batch, only careful control yields product that consistently dissolves clear and reacts evenly, regardless of destination or holding time on a lab bench.
Feedback travels both ways. Every so often a partner lab in Europe or North America will email with questions about crystal morphology or color shift under different humidity. We study those results in-house, then tweak storage and packaging to maintain high standards. Open communication saves time all around: customers see material that behaves as expected, and we gather field data to perfect reaction and handling conditions. Few things grind a development project to a halt like unexplained product variability, so we have built systems that keep those surprises to a minimum.
Every project manager or lab lead working on a new scaffold faces choices between catalog intermediates based on price or theoretical fit. Yet those with experience quickly learn to value proven reliability. It is no exaggeration to say that one batch of flawed intermediate can throw off weeks of planning, sour a project leader’s impression, and slow progress to the finish line. That’s precisely why actual producers play such an outsize role: we own the whole process and can pinpoint, and avoid, sources of error others overlook. Subtle differences between analogues cascade into real-world performance in yield, separation, and ultimate discovery success. Where others see a string of catalogue compounds, experienced chemists see a web of risk and opportunity balanced by supplier reliability.
Many of our earliest customers came looking for a harder-to-source building block—often after experiencing inconsistency from third-party traders or sweeping out failed pilot-batch reactors. Over time, they returned for the confidence that comes from direct-source knowledge. The field-tested consistency of our 3-fluorobenzyloxybenzene means fewer panicked calls during process transfer, fewer scrapped development steps, and more time spent actually exploring chemical space rather than troubleshooting starting material issues.
Every successful reaction, every well-characterized product, builds on real hands-on problem-solving. The daily routines in our plant—checking the dryness of the raw benzyl alcohol, logging every temperature swing, fine-tuning pH at workup—occur in labs and factories worldwide. What our in-house chemists have realized is that investment in quality at these stages rewards itself many times over in consistent product performance.
Our R&D team isn’t abstracted from daily production. Chemists who brainstorm new process improvements also scale up batches, solve vessel fouling, and watch for unanticipated impurities in control runs. Every so often, someone new to the process suggests a shortcut or a "good enough" stand-in. Long-time staff remember troubleshooting a ruined batch due to a misweighted raw material or an unfiltered byproduct. Discipline, not shortcuts, ensures that our 3-fluorobenzyloxybenzene holds up against any competitor, regardless of the application domain. Walking through real scenarios, these approaches bridge the gap between what people “expect” on paper and what truly performs in a beaker.
No single batch is perfect. Every production run teaches its own lessons—the small impurities that make it through first-filtration, the temperature spikes on cold nights, even the subtleties of bulk solvent storage. By maintaining full traceability from incoming materials right through shipping, we’ve built a feedback loop to catch and correct problems before they compound. For example, slight drifts in reactor temperature showed up years ago as minor changes in GC retention times. Closer monitoring, along with investments in hardware to stabilize heating and stirring, closed those gaps for good. Improved cleaning protocols for transfer vessels reduced the rare darkening issues some customers mentioned. These changes cost time and resources, but the downstream payoff is clear: a higher acceptance rate and fewer service interruptions for all customers.
From our own records, the shift from largely manual batch logging to integrated electronic tracking trimmed operator error nearly out of the picture. Combined with regular refresher training and in-house pilot runs, we move forward with a bank of knowledge that’s hard to replicate outside a manufacturing firm. These are user-driven improvements, routed directly back into every kilo of product. This commitment to honest, thorough process oversight lets us stand behind every shipment, confident it will serve its intended purpose whether in drug discovery, academic research, or high-end specialty syntheses.
Chemical buyers accustomed to off-the-shelf distributors quickly recognize the difference when dealing directly with a manufacturer. Challenges arise in both small and large batches: cross-contamination, fall-out of color, unexpected crystallization. Sending a team to physically sample returns, rerun spectra, and model chromatographic profiles has fixed more than one persistent puzzle. We listen to real needs—a research group’s need for solvent-free material for catalytic studies, or a scale-up pilot requiring sample drums for stability testing.
We take these requests as opportunities to refine our product and procedures. Special packaging for light-sensitive applications, small batch-outs for rapid screening, or larger drums for process validation get handled as practical solutions, not as burdensome exceptions. Rigid bureaucracy doesn’t appear on the factory floor; instead, day-to-day management means hands-on troubleshooting as soon as issues surface. It’s that background, over years, that persuades us to believe specific knowledge about the realities of the process marks the dividing line between decent products and those worth sourcing again and again.
Focusing on materials like 3-fluorobenzyloxybenzene only makes sense when you believe in the power of small changes to drive real outcomes in science and technology. Our investment in unwavering quality, detailed process monitoring, and ongoing feedback collection reflects a deep commitment to both the researchers developing novel molecules and the industries pushing the boundaries of therapeutics and crop protection.
Forging trusted relationships with labs and companies worldwide depends on matching claims with performance, shipment after shipment, year after year. Our practical knowledge of how 3-fluorobenzyloxybenzene operates at the bench and in production has proven invaluable—not just for our customers, but for our entire business, guiding every improvement to facilities and protocols. Being a manufacturer means standing behind each kilo, knowing every variable has been managed—not just for compliance, but for the satisfaction of those who depend on real, consistent results.
It is our hope that, whether you are facing scale-up hurdles with a novel candidate or simply searching for a new synthetic route, an honest introduction to our product and its manufacturing insight gives you a clearer path forward. Real chemical innovation starts with the confidence that your building blocks are built on substance, not just specifications. We invite you to experience that difference in every batch of 3-fluorobenzyloxybenzene shipped from our facility.