Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

3-(3-Methoxyphenyl)Benzaldehyde

    • Product Name 3-(3-Methoxyphenyl)Benzaldehyde
    • Alias m-Anisylbenzaldehyde
    • Einecs 705-799-9
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    482999

    Chemical Name 3-(3-Methoxyphenyl)Benzaldehyde
    Cas Number 76006-58-3
    Molecular Formula C14H12O2
    Molecular Weight 212.25 g/mol
    Appearance White to off-white solid
    Melting Point 61-64°C
    Boiling Point 369.6°C at 760 mmHg
    Density 1.16 g/cm³
    Solubility Slightly soluble in water; soluble in organic solvents
    Smiles COC1=CC=CC(=C1)C2=CC=CC=C2C=O
    Purity Typically ≥98%
    Storage Conditions Store in a cool, dry place, tightly closed

    As an accredited 3-(3-Methoxyphenyl)Benzaldehyde factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 100g of 3-(3-Methoxyphenyl)benzaldehyde supplied in a tightly sealed, amber glass bottle with clear labeling and hazard information.
    Shipping Shipping of **3-(3-Methoxyphenyl)benzaldehyde** typically involves secure packaging in tightly sealed containers to prevent leaks and exposure. The chemical should be transported under controlled, dry conditions, away from heat and direct sunlight. All packaging must comply with local and international hazardous material regulations to ensure safe delivery and handling.
    Storage Store 3-(3-Methoxyphenyl)benzaldehyde in a cool, dry, and well-ventilated area, away from direct sunlight and incompatible substances such as strong oxidizing agents. Keep the container tightly closed when not in use. Protect from moisture and sources of ignition. Use proper personal protective equipment when handling, and ensure storage is in accordance with local chemical safety regulations.
    Application of 3-(3-Methoxyphenyl)Benzaldehyde

    Applications of 3-(3-Methoxyphenyl)Benzaldehyde in Industrial Manufacturing

    As a direct manufacturer of 3-(3-Methoxyphenyl)Benzaldehyde, we provide this specialty intermediate for targeted downstream sectors with well-defined technical requirements and regulatory obligations. Below we detail its established industrial applications by specific sector, with explicit information for formulation, compliance, production integration, and finished goods types.

    1. Pharmaceutical Intermediate for Antihypertensive APIs

    This aromatic aldehyde is a critical building block in the synthesis of certain sartans and related antihypertensive drug molecules. Its methoxy-functionalized benzaldehyde group facilitates key condensation and cyclization reactions in multi-step active pharmaceutical ingredient (API) synthesis pathways. Process chemists select this intermediate according to precise purity and impurity profiles required by regulated pharmaceutical operations to ensure batch-to-batch consistency and meet regulatory filings across diverse markets.

    Industry compliance standards

    • ICH Q7 GMP for active pharmaceutical ingredients
    • Ph. Eur., USP, JP relevant monographs (as applicable to the API synthesis chain)
    • FDA 21 CFR Part 211 for finished pharmaceuticals
    • Chinese Pharmacopoeia for domestic (China) production

    Typical usage ratio

    • 5-12% w/w in the key cyclization or condensation steps, depending on the targeted molecular scaffold; exact ratio determined by stoichiometric calculations considering yield and impurity removal objectives

    Downstream process integration

    • Direct addition in closed-vessel, batch synthesis reactors at the intermediate stage (not at API crude mixing or final formulation); monitored by in-process HPLC for unreacted aldehyde content

    Final product types

    • Bulk antihypertensive API powders (e.g., Angiotensin II receptor blockers)
    • Film-coated tablet cores post-granulation (following full API synthesis, crystallization, and purification)

    2. Fine Fragrance and Aroma Ingredient Precursor

    In the fragrance manufacturing domain, 3-(3-Methoxyphenyl)Benzaldehyde serves as a highly selective chemical precursor for development of specific floral and woody tonalities in synthetic aroma chemicals. Its unique substitution pattern enables formulation chemists to create proprietary intermediates for blending bases used in prestige fine perfumes, especially in luxury consumer goods where olfactory stability and traceability are strictly controlled.

    Industry compliance standards

    • IFRA (International Fragrance Association) safety standards
    • EU Regulation (EC) No 1223/2009 on cosmetic products
    • ISO 9235 (Aromatic raw materials: terminology, test methods)
    • REACH pre-registration for import to EEA

    Typical usage ratio

    • 0.2%–2.5% in aroma chemical composition stages; levels set by desired impact strength, volatility, and IFRA-restricted thresholds in end-use perfumes

    Downstream process integration

    • Utilized at the intermediate perfumery ingredient synthesis stage—introduced in controlled oxidation or condensation reactions, prior to blending into master fragrance accords

    Final product types

    • Perfumery bases for fine fragrance manufacturing
    • Luxury Eau de Parfum and Eau de Toilette concentrés
    • High-end cosmetic fragrances and skin-contact aroma solutions

    3. Liquid Crystal Intermediates for Display Manufacturing

    Advanced electronics manufacturers adopt 3-(3-Methoxyphenyl)Benzaldehyde as a starting material for liquid crystal (LC) monomers required in the production of sophisticated nematic or smectic LC phases. The methoxyphenyl moiety imparts essential dielectric and alignment properties required by high-resolution display panels. Custom downstream chemical conversions optimize chain length and polarity for use in commercial LC blends for smartphones, monitors, and television panels, where purity of aromatic aldehyde residues is a prime concern for optical quality control and panel stability.

    Industry compliance standards

    • IEC 61290 (Liquid crystal materials – methods of test)
    • RoHS Directive 2011/65/EU
    • REACH SVHC screening for European sales
    • ISO 9001:2015 certified manufacturing for LC intermediates

    Typical usage ratio

    • 1–7% molar ratio in precursor derivatization reactions for LC monomer synthesis; adjusted per target birefringence and transition temperature specifications of the display panel product

    Downstream process integration

    • Charged into reactor systems for Suzuki coupling, etherification, or subsequent esterification at the initial phase of custom LC monomer synthesis

    Final product types

    • Nematic and smectic LC monomers for TFT-LCD applications
    • Ready-to-use LC mixtures for large-panel display manufacturers
    • High-speed optical switching films used in consumer electronics

    4. Specialty Dye and Pigment Intermediate

    Leading producers in the dyes and pigment sector leverage 3-(3-Methoxyphenyl)Benzaldehyde as a strategic intermediate in the synthesis of high-performance monoazo and polycyclic aromatic colorants. Its controlled reactivity ensures targeted chromophore insertion and color strength enhancement in processes for advanced textile dyes and specialty pigment formulations, which demand high batch reproducibility and resistance to photodegradation or chemical attack in challenging end-use environments.

    Industry compliance standards

    • OEKO-TEX® Standard 100 for textile dyes
    • EN 71-3 (Safety of toys: migration of certain elements)
    • ETAD (Ecological and Toxicological Association of Dyes and Organic Pigments Manufacturers) guidelines
    • China GB 38507 for industrial colorants

    Typical usage ratio

    • 1.5–6% by weight per batch in azo coupling reactions, adjusted based on desired pigment load, substrate compatibility, and targeted color index values

    Downstream process integration

    • Introduced during the synthesis of hydrazone intermediates or directly into diazotization-coupling reactions for monoazo dye production

    Final product types

    • Reactive and disperse textile dyes for polyester and nylon fabrics
    • High-performance organic pigments used in plastics, coatings, and printing inks
    • Color concentrates for masterbatch production
    Free Quote

    Competitive 3-(3-Methoxyphenyl)Benzaldehyde prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    Introducing 3-(3-Methoxyphenyl)Benzaldehyde: A Reliable Choice Directly from the Factory

    Proven Chemistry for Fine Synthesis: Our Experience with 3-(3-Methoxyphenyl)Benzaldehyde

    We know the chemical market has carved out a niche for high-purity intermediates over the last decade, which many day-to-day commercial labs often overlook. Years of hands-on experience with aromatic aldehydes have taught us that reliability, not just purity, keeps customers coming back. 3-(3-Methoxyphenyl)Benzaldehyde stands out as a key building block in modern synthesis, and we've steadily refined the way we make and handle it. Our crew relies on authentic in-house batch validation, with each lot checked against the same set of criteria we use for our own downstream steps. Through trial, retesting, and rigorous record keeping, we’ve learned that even minor differences—from crystal color to solubility—affect researcher outcomes.

    We keep the manufacturing process streamlined, drawing from simple Friedel-Crafts methods along with careful work-up steps for consistent results. There’s no fuss about shining up specifications past what’s required for real-world synthesis. The final product offers minimum 98% purity, based on HPLC and GC-MS checks, and the rest of the profile is just as important. We always pay close attention to methyl and aldehyde content, ensuring that the aromatic core doesn't drift into byproducts or over-oxidized material. From a practical standpoint, this direct approach provides better lot-after-lot uniformity than importers or traders can guarantee. If you’ve worked through unreliable supply chains before, you’ll appreciate how much time is lost when unexpected impurities show up. Supply direct from the source goes a long way to solve that headache.

    The Subtle Difference: Why This Intermediate Matters

    3-(3-Methoxyphenyl)Benzaldehyde doesn’t look much different from related compounds at first glance. Many users ask us: why not just substitute with plain benzaldehyde, or skip to another anisaldehyde isomer? We’ve studied enough projects to see the difference when developing active pharmaceutical ingredients, specialty polymers, or advanced dyes. The methoxy group in the 3-position delivers predictable influence on reaction rate and product yield during Grignard, Wittig, or reduction steps. Its arrangement stabilizes certain intermediates but stops short of making the molecule too unreactive. Many published syntheses show that the ortho- or para-methoxy variants don’t perform the same way.

    Process engineers often overlook how the source of an intermediate affects scale-up. We found out long ago, during a kilogram synthesis for a fine fragrance client, that even a subtle shift in substituent placement changed the profile of byproduct formation in the downstream steps. Choosing the right isomer streamlines purification, reduces solvent use, and narrows the cost gap for finished goods. From a practical lens, labs switching to this intermediate often report a marked decrease in side reactions, saving both time and downstream waste.

    Consistent Specifications That Reflect Real-World Conditions

    We’ve always argued that pure numbers don’t tell the full story, especially in bench and pilot plant settings. As manufacturers, we get calls whenever a batch turns up a new impurity peak or a slight yellow tinge. That’s why we take pains to maintain batch-to-batch color, solubility, particle size, and even odor, according to past feedback from end-users. A consistent pale off-white to light yellow crystalline product is our benchmark. Repeated melting point checks land around 75-77°C, which seasoned users know means a clean profile—no sticky masses or unexplained tailing. The standardized specification, which we share freely with every shipment, covers all the touchpoints that matter: moisture below 0.5%, heavy metals controlled to below 10 ppm, and detailed NMR scans available with every purchase.

    The manufacturing plant follows a strict change notice protocol. If we ever need to update process reagents or sources, users receive direct advanced notice, never a surprise. That’s the sort of transparency missing from reseller channels. We don’t see specification sheets as empty promises, either; our in-lab chemists run application-driven checks, like reactivity tests or stress storage, so users know exactly what to expect from real-world handling. Every sample that leaves our loading dock matches what our own in-house team would trust in a critical-scale reaction.

    Supporting Innovation in R&D, Pharma, and Specialty Chemistry

    This intermediate established itself as a cornerstone in fine chemical synthesis due to its versatility. Research labs use it regularly as a precursor for the development of bioactive molecules, including selective serotonin reuptake inhibitors, kinase inhibitors, or imaging agents. With the growing focus on medicinal chemistry, dependable access to 3-(3-Methoxyphenyl)Benzaldehyde makes a measurable difference. More than one customer has called out our robust supply chain, especially during the worst raw material shortages.

    Beyond pharma, polymer chemists and specialty dye manufacturers have adopted it for high-stability coupling reactions and colorant design. Our plant’s ability to deliver larger lots with the same tight impurity control, even at multi-kilogram scale, gives R&D teams the flexibility to run scale-ups without revalidation. We regularly ship to flavor, fragrance, and agrochemical developers for new concept testing, where subtle aromatic modifications often decide the success of a final product formulation.

    Many see benzaldehyde derivatives as “off-the-shelf” chemicals, but from our vantage, the subtleties can’t be discounted. Large-scale R&D partners have commented that predictable shelf stability, handling comfort, and unchanging spectral data win out over a supposedly cheaper imported product. Over the years, we’ve kept our own R&D clients updated on minor refinements to packaging, which have helped minimize product loss and avoid cross-contamination with similar aromatic aldehydes. Those with demanding dust or regulatory requirements know the headache a mislabeled or mispacked batch creates. We stepped up packaging solutions, moving from basic polyethylene liners to multilayer foil-sealed containers for sensitive clients, simply because feedback from analytical labs demonstrated clear value.

    Understanding the Nuances: Practical Differences among Aromatic Aldehydes

    We’re often asked why someone might choose 3-(3-Methoxyphenyl)Benzaldehyde over the better-known 4-methoxy or 2-methoxy isomers. Having worked with scores of projects across life sciences, materials, and fine chemical manufacturing, we’ve seen the impact firsthand. Compared with the para- and ortho- variants, our product gives a more selective performance in palladium-catalyzed reactions and minimizes over-alkylation during functional group transformations. That selectivity translates directly into yield and, more importantly, into downstream cost savings from fewer purification steps or wasted solvent.

    Another overlooked point, especially for labs tackling SAR studies or new molecular scaffolds, is how the position of the methoxy moiety affects binding affinity or stability in a biological context. We’ve supported teams running compound libraries who report clearer SAR results and less batch-to-batch drift in screen data when sticking with a well-characterized intermediate instead of switching suppliers or isomers on the fly. In our experience, those differences, while sometimes subtle, result in significant productivity improvements for medicinal chemists and process optimization experts alike.

    Addressing Challenges and Moving Toward Solutions

    Direct feedback from our customer base underlines an ongoing challenge in the specialty chemical market: inconsistent quality from indirect sources. Too many labs have experienced delays caused by incomplete CoA data, missed delivery deadlines, or unexpected off-spec batches when buying through multi-level supply chains. Our approach puts manufacturing control at the core—real batch records, traceable raw material sources, and no sub-delegated QC. We routinely open our doors to client audits or third-party inspections, which resulted in long-term trust and repeat orders.

    Historical pricing surges for aromatic reagents put even well-funded projects at risk. By keeping synthesis and logistics under one roof, we’ve softened the blow of raw material volatility and shielded partners from the worst of global demand spikes. Whether the project is a short-run lab screening or a multi-tonne industrial campaign, our experience shows that real collaboration—factory direct to end user—delivers better results and maintains long-term research continuity, even during uncertain global interruptions.

    Safe Handling and Application Experience

    Handling 3-(3-Methoxyphenyl)Benzaldehyde isn’t complicated, but experience has taught us that technique matters. Packs should always remain sealed under dry conditions until use, as aldehydes can slowly oxidize or polymerize in the open air. Our operations team adopted double-bagging as a standard after an early customer flagged slight color changes during a humid summer. On the lab bench, always use in a well-ventilated hood. Though it has a low vapor pressure, the aroma can linger. Our long-term warehouse data indicates shelf life of up to two years without measurable change in NMR or GC spectrum, as long as storage avoids temperature spikes.

    We support partners not just with product but also with practical information sharing. Each major client receives guidance on integrating analytical monitoring—like TLC or HPLC analytics—right after receipt, as even small environmental shifts between our plant and the end lab can alter handling outcomes. If novel scale-up questions arise, our in-house chemists stay available for direct consultation as a manufacturer, not through a distant middleman. Lessons from years of supporting start-up and high-throughput labs point to a clear truth: a manufacturer invested in your success is more valuable than a supplier focused on volume alone.

    Why Direct Manufacturing Drives Credibility

    Supplying 3-(3-Methoxyphenyl)Benzaldehyde right from our factory has defined our approach to chemical business relationships. A manufacturer stays accountable across every process step, so customers don’t face gaps or guesswork in traceability. Our technical documentation goes far beyond a routine CoA; for many projects, we’ve conducted custom impurity studies or supported root-cause investigations during pilot plant troubleshooting. That’s only possible with true end-to-end manufacturing oversight. We don’t see ourselves as just a source of materials, but as a partner who understands the downstream impact of each lot.

    Traceability matters, particularly amid heightened regulatory scrutiny in chemical R&D, pharma, or food. Our process captures raw material origin, in-process records, and finished product analytics, closing the documentation loop and reducing post-shipment surprises. Over the years, we’ve watched many traders disappear after a shipment goes sideways; a true manufacturer builds its name and trust over time—two things we’ve come to value above slick marketing.

    Direct Supply versus Third-Party Channels: Lessons Learned

    Shifting from third-party procurement to direct-from-manufacturer sourcing created an immediate quality uplift for our largest clients. In the past, too many supply chains suffered from silent relabeling, mismatched paperwork, or even undisclosed blending that led to out-of-spec batches. We take pride in single-source manufacturing because it lets us prevent those issues. Direct relationships with end-users mean we don’t have to rely on vague promises from brokers; instead, we address questions as they come, whether they’re about trace imine formation, batch color changes, or customized packaging.

    Manufacturers like us take accountability seriously. If a technical question arises months after delivery, we go back to our own records, not a string of purchase orders. That direct link benefits every quality-conscious research group, from start-ups to multinational corporations. We maintain contact long after delivery, so customers continue to trust our process, even across multiple project cycles.

    Looking Forward: Supporting Next-Generation Synthesis

    The chemistry landscape keeps shifting, placing new demands on intermediates and specialty reagents. We remain committed to evolving our production methods, keeping tighter impurity profiles, greener waste handling, and customized packaging for sensitive applications. Customer-driven development gives us new insights with every project, and those lessons feed back into process refinements year after year. As regulatory and performance expectations in pharma, materials science, and agrochem shift, manufacturers with real-life lab experience and direct oversight will stay best positioned to deliver. Our plant’s daily routine—guided by client feedback and hands-on technical staff—guarantees a product that enables research, not just fills a catalog listing.

    Whether you’re scaling a custom route for drug discovery, improving a colorant’s environmental profile, or prototyping a novel material, 3-(3-Methoxyphenyl)Benzaldehyde produced directly by our factory brings confidence with every batch. Ongoing partnership, real quality assurance, and a clear commitment to end-user results keep us focused on what matters: enabling your work through chemistry grounded in manufacturing experience.