|
HS Code |
270749 |
| Iupac Name | 3-Methoxybiphenyl |
| Molecular Formula | C13H12O |
| Molar Mass | 184.24 g/mol |
| Cas Number | 1984-15-2 |
| Appearance | White to off-white solid |
| Melting Point | 44-47 °C |
| Boiling Point | 297-299 °C |
| Density | 1.084 g/cm³ |
| Smiles | COC1=CC=CC(=C1)C2=CC=CC=C2 |
| Solubility In Water | Insoluble |
| Pubchem Cid | 31142 |
| Flash Point | 149.1 °C |
As an accredited 3-Methoxybiphenyl factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | A clear, glass bottle containing 25g of 3-Methoxybiphenyl, sealed with a screw cap and labeled with safety and identification details. |
| Shipping | 3-Methoxybiphenyl is shipped in tightly sealed containers to prevent leakage and contamination. The packaging complies with relevant safety regulations for handling organic compounds. During transit, it is protected from physical damage, moisture, and direct sunlight. Appropriate hazard labeling and documentation accompany the shipment to ensure safe and compliant transportation. |
| Storage | 3-Methoxybiphenyl should be stored in a tightly closed container in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizing agents. Protect it from light and moisture. Proper labeling and secure shelving are recommended to prevent spills. Personal protective equipment should be used when handling the chemical. |
Applications of 3-Methoxybiphenyl in Industrial Manufacturing3-Methoxybiphenyl is used as an advanced chemical intermediate in multiple industrial manufacturing chains. Our product supports high-value sectors with strict process control, consistent purity, and monitored integration into regulated end uses. Below are core downstream application areas, based on field-proven practices and global customer feedback. 1. Pharmaceutical Intermediate for Antihistamine SynthesisPharmaceutical manufacturers integrate 3-methoxybiphenyl as a key intermediate in the multi-step synthesis of second-generation antihistamines. It is usually coupled via Suzuki-Miyaura cross-coupling or Friedel–Crafts reactions in API manufacturing. Production facilities source this material to meet GMP requirements, feeding it directly into batch reactors after in-house QC. Its aromatic structure helps construct diaryl ether scaffolds present in proprietary drug molecules targeting allergic reactions and inflammation. Rigorous documentation tracks all raw material lots and intermediates throughout the API supply chain. Industry compliance standards
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2. Fine Chemical Material for Liquid Crystal ProductionDownstream electronic chemical manufacturers use 3-methoxybiphenyl as a building block in the formulation of liquid crystal compounds. Its rigid biphenyl core stabilizes mesogenic phases, while the methoxy substitution tunes polarity and melting point. Our technical-grade material enters immediately after nitration/coupling steps during proprietary liquid crystal design, under inert conditions. Rigorous trace impurity control ensures end-use stability in advanced display panels and imaging devices. All lots pass optical purity and spectroscopic validation before final delivery to the LC mixture blending lines. Industry compliance standards
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3. Agrochemical Intermediate for Selective Herbicide ManufactureAgrochemical synthesis operations incorporate 3-methoxybiphenyl in the assembly of specific selective herbicide structures, particularly those in the diphenyl ether class. Its aromatic features contribute to constructing active molecular backbones that disrupt weed-specific metabolic pathways. The material undergoes condensation reactions and ring functionalization at multi-ton scale, under strict environmental and operator safety monitoring. Trace heavy metal and residual solvent levels are verified at each batch before moving into final formulation lines for EHS compliance and downstream application safety. Industry compliance standards
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4. Dye Intermediate for Specialty Organic Pigment SynthesisLeading pigment producers utilize 3-methoxybiphenyl in the production of specialty organic dyes for inks, plastics, and coatings. The biphenyl structure provides stability and vivid hue. Methoxy modification enables precise tuning of electron density during azo coupling and diazotization cycles. High-purity requirements drive careful feedstock testing and batch colorimetric analyses. After strict process monitoring, the material supports creation of long-lasting, high-gloss pigments for premium-grade colorant products. Industry compliance standards
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The work on 3-Methoxybiphenyl did not start with a fancy pitch or marketing talk. The chemists on our team met this molecule in the heart of real production lines and R&D meetings with actual customers. In our facility, 3-Methoxybiphenyl gets respect for its chemical structure, clean reaction routes, and the way it holds up to scale. The core of its value comes from practical decisions our engineers make every day before the final drum gets sealed.
This compound stands out among biphenyl derivatives. Adding that methoxy group to the ring system changes how it performs in downstream processes. We have run this product through plenty of batch reactors and column purifications. By watching its behavior under different conditions—heat, solvents, catalysts—one truth keeps resurfacing: the substitution on the aromatic ring doesn’t just tweak its physical properties. It opens up new possibilities for further synthesis steps that regular biphenyls just can’t deliver.
Our team doesn’t treat every specification as a checkbox. For 3-Methoxybiphenyl, the typical model we offer brings a purity that holds up to genuine scrutiny. That means gas chromatographs regularly hit higher than 99% area, verified by hard data. Residual solvents and trace byproducts matter to us, because the end-user often cares about more than just “total organic content.” After years of drying, filtering, and tweaking reactor loads, we landed on a process that delivers consistent particle sizes and color, making downstream users’ processes smoother.
For those actually using organic intermediates, recipe details surface that don’t show up in journal articles. Clients in agrochemical and pharmaceutical labs talk about how 3-Methoxybiphenyl forms the backbone of several active ingredients. We hear from their chemists about its reliability in Suzuki couplings and other cross-coupling chemistry. Its behavior is predictable in palladium-catalyzed reactions, meaning we rarely hear about unexplained side products or mystery peaks.
Some teams choose it for synthesis of advanced materials and specialty polymers, exploiting that methoxy group to introduce specific physical features into large molecules. The reason: it can act as a useful handle for downstream functionalization. This flexibility leads to more creative chemistry, higher yields, and less hassle during purification.
In our experience, users care less about buzzwords and more about practical issues: how does the solid handle? How much dust does it generate in the charging hoppers? How fast does it dissolve in a standard ether or THF? On these fronts, 3-Methoxybiphenyl doesn’t disappoint. Grain size distribution stays consistent, so operators don’t get unexpected clumping. The melting point sits above room temperature, lending stability to transportation and storage while still making it workable on scale.
Not all biphenyl products perform the same way. Each substitution pattern affects reactivity and solubility in real, hands-on ways. Our line has included plain biphenyl, as well as several mono- and di-substituted varieties. 3-Methoxybiphenyl consistently stands out for its balance. Methoxy adds a small electron-donating effect, tweaking its behavior without making the ring too reactive. That gives synthetic chemists more control over downstream reactions. Other derivatives, like chlorinated or nitro-substituted biphenyls, act differently. They can bring higher reactivity or change the safety profile—sometimes at the cost of stability or practical handling.
Feedback from pharmaceutical integrators points to one reason they keep asking for this specific compound: it avoids the unpredictability that comes with more extreme substituents. We don’t see the decomposition issues or rapid color changes that crop up with heavier electron-withdrawing groups. The methoxy group stabilizes the aromatic ring for those longer synthesis campaigns, and our operators rarely need to troubleshoot new problems with this material. In that sense, 3-Methoxybiphenyl doesn’t require compromise between control and reactivity.
Against phenyl-substituted ethers or simple methoxybenzenes, you notice practical differences. Straight methoxybenzene is liquid at standard conditions, which complicates containment or dosing in bulk plants. 3-Methoxybiphenyl’s higher melting point gives a solid product with easier batch control and fewer leakage problems during transfer.
Producing this compound at commercial scale brings challenges you only meet after years on the floor. Early on, issues cropped up with controlling side reactions. Methoxylation can bring byproducts—over-methylated compounds, ring-oxidized impurities, and unreacted starting material that sneaks past the first purification step. By maintaining strict control of temperatures, stirring speeds, and reagent addition, those bugs in the process got ironed out. Every stage of synthesis gets monitored by trained eyes, not just an automated sensor feed. It's the way our engineers prefer: let the data guide improvements, never assumptions.
Drum inspections tell their own story. Packing lines run clean since we fine-tuned the drying step. White or off-white crystalline material gets bagged in consistent lots. We’ve worked with logistics teams to nail down handling procedures, so shipments arrive free from caking or contamination. Even in humid environments, the product holds up well, so customers don’t end up fighting clumps or moisture uptake during warehouse storage.
The biggest rewards show up on scale-up projects. Small-lab samples always look perfect in a catalog photo. In real kilo-scale runs, subtle differences in heat transfer and agitation make or break a batch. We pour attention into minimizing batch-to-batch differences, so what a customer receives from lot 1 matches what they get in lot 100. Regular feedback loops between plant operators and QC labs don’t just catch outliers—they identify trends before they become problems.
Any chemical manufacturer can claim quality. We back it up with open-door factory audits. End-users and regulatory auditors have walked through our production areas, checked the raw-material receipts, and reviewed waste-disposal records. True confidence in supply comes from this kind of trust, not just a number on a CoA document. Our policy requires each batch to pass a suite of tests: melting point, GC area percent, water content, and regular heavy metal checks. Lab staff don’t just report numbers; they log any shift in appearance or odor, and those reports trigger investigation if a pattern shows up.
Occasionally, a client asks about sourcing for critical ingredients. Every raw material supplier gets vetted for compliance with relevant local and international standards. Full transparency on solvent handling and traceability comes standard in our system. In years when global supply chains threw surprises our way, we kept production moving by planning two or three suppliers deep. That means customers can keep their own production lines running with no drama.
Regulatory compliance matters now more than ever. We don’t add extra components to chase speculative market trends. No unnecessary denaturants, fragrances, or colorants. Laboratories and production plants know exactly what they are putting into their systems. Our batch records live up to customs and shipping standards for both export and import needs. This doesn’t just keep our products moving; it gives peace of mind to downstream engineers juggling their own compliance headaches.
The role of 3-Methoxybiphenyl keeps expanding. Early years saw most demand from pharma discovery teams, looking for backbone structures to build new molecules. Agrochemical research quickly spotted the value in its adaptable substitution. Over the last decade, new applications have emerged—from performance polymers to coatings and electronic materials. This range comes from the chemical flexibility baked into the molecule and from careful conversations with users pushing into new territory.
We log every inquiry about unusual applications. That includes questions from startups in energy storage, as well as established firms exploring greener solvents or cleaner reaction protocols. In these fields, the product’s ability to stay stable under a wider than usual temperature range helps synthesis campaigns run longer and scale up faster. Batch reproducibility means less wasted time repeating failed reactions.
Research staff on our side keep up to date with published literature and share insights across international affiliates. If a new method tweaks a downstream functionalization, those notes reach the production floor faster than they did a decade ago. This isn't just lip service—actual process tweaks have reduced solvent use, cut byproduct formation, and improved overall yields year-over-year.
Users bring feedback straight to technical staff, who listen before speaking. Common headaches tell familiar stories: shipment delays, caking in bulk bags, slight yellowing after storage, or mysterious contaminants showing up in HPLC traces. Sometimes, the source is in transport (humidity, vibration, packaging), sometimes in unexpected warehouse conditions. We’ve switched packaging formats and tested anti-static liners to tackle static buildup, which used to lead to powder loss and mess during container transfer.
Over time, warehouse partners learned to rotate stock systematically, keeping the product fresh and avoiding issues tied to long-term storage. Once, a much-anticipated drum came out yellower than usual; rather than blame the user’s warehouse, we re-examined our own filtration steps. Tighter sieving and batch-by-batch color checks now form a permanent part of our in-process QC, narrowing lots that make it through final packaging.
Scale-up brings its own set of hurdles. Users shifting from exploratory syntheses to multikilogram lots need confidence each unit will treat their reactors the same way. We share batch history, particle size distribution data, and impurity profiles, rather than hiding behind a generic spec sheet. If a new trace impurity crops up, multiple teams dig into the cause and resolution right away.
Anyone in chemical manufacturing learns humility. No matter how long a process runs without trouble, an unexpected variable can crop up. Once, a longstanding vendor for a raw material shifted their grinding method, changing the settling rate of particles. A sharp-eyed operator noticed a new haze in the mother liquors, and production crews flagged unusual filter clogging. Frontline workers and lab techs huddled, reviewed process records, and discovered the culprit before it worked downstream. Small discoveries like this reinforce direct communication and attention to detail.
We keep detailed records of every process deviation, even those that never leave the plant. Over the years, this habit has prevented small anomalies from turning into big headaches. Annual reviews dig into recorded process improvements—reagent ratios, agitation rates, dosing times—to eke out better consistency and higher yields. Every minor tweak gets weighed against long-term impact, rather than chasing short-term gains.
Feedback from customers about practical handling—the way the powder pours, the time it takes to dissolve, the consistency in filtration—feeds back into retooling the process. We hold review calls with teams who run our material through automated charge systems, finding out how it performs under differing temperature and humidity ranges. They report fewer issues with 3-Methoxybiphenyl than with some alternatives, which keeps lines running and maintenance costs low.
Changing regulatory norms keep every manufacturer alert. Questions around permissible levels of environmental emissions have raised the bar for our waste-handling. While we keep discharge under strict control, every improvement in solvent recycling or reaction efficiency translates to savings both for us and our clients. Transparent reporting on emissions and waste streams comes with every audit, building trust and reinforcing the value of steady supply chains.
Sustainability means more than a buzzword. It’s real when a process engineer sits down and calculates solvent requirements, then finds a path to recover and reuse up to 95% in each batch. Newer trends encourage substitution of older, hazardous reagents. We pursued greener alternatives for reagents in the methoxylation stage, lowering both our carbon footprint and the exposure risks for plant workers.
The downstream users—whether in pharma, agro, or material science—push us to stay current on innovative process chemistry. Our technical team occasionally gets pulled in to troubleshoot integration of this material into a customer’s unique reactor setup, especially with continuous flow processes. By keeping our doors open to study these setups, we tailor supply to fit modern production trends, not just traditional batch operations.
It’s not unusual for us to field a question about potential new applications or compatibility with unlisted solvents. These questions bring real value to both sides. Every answer adds to the body of knowledge about 3-Methoxybiphenyl and its uses. Technical partners get clarity. Our staff pick up practical lessons that roll into better products year after year.
Trust grows out of honest back-and-forth, not just data. We share not only the highlights of performance, but occasional struggles, batch improvements, and ongoing projects to reduce trace impurities. Openness builds loyalty and helps manufacturing partners minimize risk. The shared experience leads to long-term success, both for us as a supplier and for our customers on the production side.
If users develop new derivatives or introduce the compound into specialized formulations, our staff can assist in piloting and troubleshooting—drawing on observations from both synthetic chemistry and real plant operation. These technical conversations have sparked genuine process improvements, sometimes pushing our own technology forward beyond typical catalog offerings.
Years of hands-on work taught our team that details separate an ordinary intermediate from a reliable asset. 3-Methoxybiphenyl holds up under scrutiny because it’s built on a foundation of experience, direct process optimization, and real customer collaboration. Attention to every part of its life cycle—from reaction flask to drum to end-user—has earned it a solid reputation in our line.
This compound stands as a go-to choice for users who want stability, flexibility, and proven quality in one package. Every step, from raw-material sourcing to technical support calls, gets handled by people who care about more than just paperwork. If your own processes demand reliability with no handwaving or gloss, this compound just fits—delivering solutions shaped by hard experience and straight talk from the people who make it.