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2,4-Dimethoxybenzaldehyde

    • Product Name 2,4-Dimethoxybenzaldehyde
    • Alias Veratraldehyde
    • Einecs 218-253-4
    • 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

    759536

    Name 2,4-Dimethoxybenzaldehyde
    Molecularformula C9H10O3
    Molarmass 166.17 g/mol
    Casnumber 613-45-6
    Appearance White to off-white crystalline powder
    Meltingpoint 74-76 °C
    Boilingpoint 145 °C at 15 mmHg
    Density 1.14 g/cm3
    Solubilityinwater Slightly soluble
    Refractiveindex 1.562
    Smiles COC1=CC(=C(C=C1)OC)C=O
    Pubchemcid 11824

    As an accredited 2,4-Dimethoxybenzaldehyde factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A 100g amber glass bottle, tightly sealed with a screw cap, labeled "2,4-Dimethoxybenzaldehyde, reagent grade, CAS 613-45-6."
    Shipping 2,4-Dimethoxybenzaldehyde is typically shipped in tightly sealed containers to prevent contamination and moisture absorption. It is transported as a stable solid under ambient conditions but should be clearly labeled and handled according to chemical safety regulations. Packaging complies with international standards to ensure safe delivery and minimize the risk of spillage or exposure.
    Storage 2,4-Dimethoxybenzaldehyde should be stored in a tightly sealed container, protected from light and moisture, in a cool, dry, and well-ventilated place. Keep it away from incompatible substances such as strong oxidizing agents. Ensure proper labeling and store separately from food and drink. Use proper personal protective equipment when handling to prevent skin and eye contact.
    Application of 2,4-Dimethoxybenzaldehyde

    Applications of 2,4-Dimethoxybenzaldehyde in Industrial Manufacturing

    2,4-Dimethoxybenzaldehyde serves as an essential intermediate in several specialty chemical manufacturing routes. Our material supports end-use industries through controlled synthesis, consistent quality, and application-specific supply integration. Below, we present detailed use cases across primary downstream sectors, each with precise operational requirements and finished product links.

    1. Pharmaceutical Active Ingredient Synthesis

    Major pharmaceutical companies use 2,4-Dimethoxybenzaldehyde in synthesizing various active pharmaceutical ingredients (APIs), especially in the construction of aromatic intermediates required for antihypertensive and neuroactive medications. Our production lines meet stringent traceability and batch consistency demands, which are strictly followed in regulated pharmaceutical environments. This substrate integrates into protected aldehyde functionalization steps or selective oxidation reactions, typically within multi-step synthesis campaigns subject to full GMP compliance.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • European Pharmacopoeia (Ph. Eur.) general monographs where applicable
    • United States Pharmacopeia (USP) Chapter <467> Residual Solvents
    • FDA 21 CFR Part 210/211 (cGMP for finished pharmaceuticals)

    Typical usage ratio

    • 5–15% in target molecule step synthesis; exact quantities depend on stoichiometry for each API campaign
    • Adjusted in accordance with the desired throughput and process yield optimization

    Downstream process integration

    • Charged as an initial substrate or coupling partner in condensation or cyclization stages
    • Purification conducted via recrystallization or chromatography for API-grade output
    • Handled in enclosed systems to prevent cross-contamination

    Final product types

    • Antihypertensive drug intermediates
    • Neuropsychiatric agent building blocks
    • Specialty benzaldehyde-derived APIs
    • Regulatory DMF-registered intermediates

    2. Agrochemical Selective Herbicide Precursor

    Agrochemical formulators use this aromatic aldehyde as an intermediate in the synthesis of selective herbicide molecules, particularly those for broadleaf weed control. Its methoxy substitutions enhance the desired reactivity in formulating active compounds with high target selectivity. Factory protocols emphasize safe bulk handling due to the large-scale volumes required for gram-to-ton synthesis bridges and attention to field and environmental residue standards throughout subsequent processing.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems for chemical productions
    • Regulation (EC) No 1107/2009 concerning the placing of plant protection products on the market
    • REACH (Registration, Evaluation, Authorisation, and Restriction of Chemicals) for substance and use registration
    • OECD Test Guidelines for chemical safety evaluations

    Typical usage ratio

    • 8–12% as an intermediate during core structure assembly steps
    • Can fluctuate based on targeted esterification or coupling yield in technical-grade actives

    Downstream process integration

    • Presents in aldol condensations or heterocyclic formation pathways
    • Reacts directly with amines or acid chlorides in synthesis streams
    • Subject to effluent and emissions controls aligned with agrochemical plant design

    Final product types

    • Selectively acting herbicides
    • Pre-emergent and post-emergent crop protection agents
    • Weed management formulations for broadacre farming
    • Active ingredient technical concentrates

    3. Dye and Pigment Intermediate for Electronics and Imaging

    In dye manufacturing, 2,4-Dimethoxybenzaldehyde functions as a core building block for high-performance pigments and functional dyes. These molecules impart finely tuned electronic characteristics essential for organic semiconductors, specialty inks, and charge transfer materials. Quality management in this area addresses both the purity profile of aromatic feedstocks and process chemistries sensitive to oxidation, which are critical in manufacturing imaging-grade and electrically active compounds.

    Industry compliance standards

    • IEC 62471 for photobiological safety in display and electronic device components
    • RoHS Directive (2011/65/EU) for hazardous substances restrictions in electronics
    • EN 71-3 for heavy metal migration in pigments for toys and consumer goods
    • ISO 787 series (General methods of test for pigments and extenders)

    Typical usage ratio

    • 10–25% as a function of required chromophore structure or desired electrical properties
    • Dosing rates modified based on molecular weight targets in the dye or pigment formulation

    Downstream process integration

    • Condensation reactions for azo dye or anthraquinone pigment formation
    • Integrated into closed-loop batch syntheses with continuous quality monitoring
    • Final purification by solvent crystallization or vacuum distillation

    Final product types

    • Organic semiconducting dyes
    • Functional pigments for inkjet and laser printer cartridges
    • Photoconductive materials for imaging films
    • High-stability specialty colorants for electronics

    4. Flavors and Fragrance Aroma Chemical Manufacturing

    In the flavors and fragrance industry, 2,4-Dimethoxybenzaldehyde appears as a precursor for fine aroma chemicals, particularly for creating anisic and vanilla-like notes. Its chemical structure supports the synthesis of aldehyde-based aroma compounds, which undergo additional derivatization prior to blending into consumer fragrances or flavor mixes. All materials must comply with food safety and allergen labeling requirements, so each batch passes dedicated QC and release protocols under recognized global standards.

    Industry compliance standards

    • Food Chemicals Codex (FCC) for aroma intermediates
    • IFRA Standards (International Fragrance Association) for incidental dermal contact
    • EU Food Flavoring Regulation (EC No. 1334/2008)
    • FSSC 22000 for food-grade production environments

    Typical usage ratio

    • 2–7% in aroma intermediate or finished fragrance compound; precise usage varies by finished flavor intensity
    • Adjusted based on solubility and desired olfactory profile in the formulation

    Downstream process integration

    • First-step reactant for aldehyde condensation or etherification chemistry
    • Further conversion to acetal, acid, or ester derivatives
    • QC release including GC-MS purity, allergen screening, and sensory testing for each batch

    Final product types

    • Vanillic and anisic aroma intermediates
    • Flavoring additives for beverage and confectionery
    • Fragrance ingredients for fine perfumes and cosmetics
    • Aldehyde-based functional blends for personal care

    5. Organic Synthesis for Material Science Research

    Specialty material laboratories and commercial R&D divisions utilize 2,4-Dimethoxybenzaldehyde extensively in modifying benzene ring structures and constructing advanced molecular scaffolds. This application supports investigations into photoactive, conductive, and polymerizable compounds for use in advanced coatings, polymer films, and cross-linkable adhesives. Stringent documentation, traceability, and purity checks ensure reliability and reproducibility required in regulated analytical and industrial laboratories.

    Industry compliance standards

    • GLP (Good Laboratory Practice) for developmental chemistry
    • ASTM E2879 Standard Guide for Lab-Scale Synthesis Hazard Identification
    • ISO/IEC 17025 for calibration and testing laboratories
    • Relevant national occupational safety guidelines for chemical handling and storage

    Typical usage ratio

    • Ranges from 1–20%, as experimental pathways in research often vary by molecule structure and function
    • Dosing specified according to intended end-use and lab method scale-up requirements

    Downstream process integration

    • Serves as the protected or activated benzaldehyde component in reaction libraries
    • Introduced during early-stage synthetic design or scaffold optimization
    • Subject to analytical purity verification prior to further modification or scale transfer

    Final product types

    • Conductive or luminescent small molecules
    • Cross-linkable monomer intermediates
    • Polymeric research materials for advanced coatings
    • Specialty molecular targets for proprietary applications
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    Certification & Compliance
    More Introduction

    2,4-Dimethoxybenzaldehyde: Reliable Precision from a Trusted Manufacturer

    Introduction to 2,4-Dimethoxybenzaldehyde

    As a chemical manufacturer dedicated to consistent quality, we have worked with 2,4-Dimethoxybenzaldehyde (CAS Number 613-45-6) for many years. Our production team, led by seasoned chemical engineers, knows this compound well—not just from data sheets, but from hands-on synthesis, purification, and regular quality controls. The product, recognized for two methoxy groups sitting at the 2 and 4 positions of the benzaldehyde ring, brings unique value across sectors that demand high-purity aromatic aldehydes.

    Detailed View of Our Process and Quality Commitment

    Our process employs tried-and-tested methodologies refined through repeated batch work and problem-solving on the plant floor. Using methylation steps followed by controlled formylation, we gain strong control over product consistency and purity, essential for laboratories and commercial projects.

    Every batch we dispatch undergoes gas chromatography to verify identity and purity—typically above 99%. Trace residual solvents, moisture, and related aromatic aldehydes are measured by our in-house analytics team. If a batch doesn't meet target specifications, it is reprocessed or rejected; customer-facing quality means everything to our business.

    Physical and Chemical Profile

    Production scale has granted us experience with the physical form and the practical realities of packing and shipping. 2,4-Dimethoxybenzaldehyde presents as a pale yellow crystalline powder, with a melting point near 44-46°C. Employees responsible for drying and packaging constantly monitor for clumping or color shift, ensuring the product remains untainted during handling. Aromatic odor, typical of benzaldehyde derivatives, is easy to recognize—a detail not lost among our experienced warehouse staff who have caught off-spec materials long before they reached customers.

    Applications Shaped by Real-World Experience

    Our larger clients operate in pharmaceuticals, fine chemicals, and advanced materials. 2,4-Dimethoxybenzaldehyde frequently acts as a building block in the synthesis of medicinal agents. Chemists regularly select it for producing substituted stilbenes, flavonoids, and other complex aromatic scaffolds, especially where precise placement of methoxy groups affects downstream reactivity.

    Feedback from pilot plants and research partners has taught us this: slight impurities (particularly other benzaldehydes or unreacted anisoles) can derail a synthesis or complicate purification. Years of feedback help our team fine-tune washing and recrystallization to routinely hit the purity levels developers demand.

    The Impact of Impurities and Handling on Performance

    Some users approach us after previous trouble with off-brand batches. Customers report unexpected side products, lost yield, or difficult chromatographic separations. Our firsthand experience suggests that suppliers who neglect final purification steps often leave behind related methoxybenzenes or trace organic acids. Over the years, our team improved solvent recovery and minimized decomposition by adjusting transfer temperatures. We also discovered that product stored above room temperature can develop yellow discoloration, so our storerooms maintain consistent climate control. These types of process tweaks are easy to overlook but make a big difference in performance downstream—especially for pharmaceutical partners with strict cGMP requirements.

    Comparing 2,4-Dimethoxybenzaldehyde to Analogues

    Several aromatic aldehydes bear structural similarity to 2,4-Dimethoxybenzaldehyde. For example, 3,4-Dimethoxybenzaldehyde, a common cousin, often serves as a precursor in similar synthetic routes. Through side-by-side trials in our applications lab, we noted three main distinctions:

    These facts are not academic; they inform inventory decisions and process clocks in our client’s operations. Our technical sales and support teams routinely exchange this knowledge with partners to help avoid costly mistakes.

    Consistent Particle Size and Application Efficiency

    Through years of scaling up, we've seen how particle size impacts dispersion in solution, filtrability, and weighing accuracy. Micronization or excessive grinding can increase dust, raising inhalation hazard and complicating cleanroom environments. Our plant routines avoid excessive comminution while providing a free-flowing product that doesn’t stick in laboratory spatulas or clog process feeders.

    Some clients, especially those automating their processes or running larger reactors, value consistent flow properties and batch-to-batch homogeneity. We respond by auditing our blending and packaging steps periodically. Every container shipped comes with a certificate specifying appearance, melting point, and GC purity—all freshly checked.

    Quality Assurance Grounded in Day-to-Day Operations

    Our approach to quality assurance is practical and embedded—daily logs reflect every batch’s journey from raw input to packaged product. Our technicians frequently recalibrate HPLC, GC, and Karl Fischer instruments, often catching minute shifts in purity before they matter externally. Batch traceability extends beyond record-keeping: we run “mock recalls” to stress-test our chain of custody and ensure that any issue, no matter how minor, can be traced back to root cause.

    Every month, customer feedback sessions guide next improvements. If a researcher or manufacturer experiences solubility anomalies or detects trace impurities, we treat it as a chance to sharpen our controls. This loop—real-world use feeding directly into process design—keeps our offering reliable.

    Safety, Packing, and Storage Lessons from Experience

    Our team knows handling specifics inside out. 2,4-Dimethoxybenzaldehyde requires careful storage, shielded from strong light and moisture. Absorbed water or prolonged contact with air can trigger unwanted changes. By consistently double-sealing drums and jars inside desiccated rooms, we cut down on degradation. We’ve also had to intervene quickly when warehouse conditions once slipped due to a failed air conditioner. Quick action and clear labeling of affected batches saved us from sending product below our quality threshold.

    Experience taught our shipping staff the importance of strong, airtight containers. During cold months in northern climates, shipments have arrived with condensation if packaging isn’t robust. This lesson led us to adopt thicker barriers and enhanced tamper-seals. Our logistic partners know these standards and help us maintain them further along the chain.

    Environmental and Safety Considerations

    Any chemical can create risk if handled poorly. Our onsite teams wear appropriate PPE—gloves, coats, local exhaust ventilation—during every transfer. Spills, though rare, are cleaned following clear protocols. Waste solvents and product residues never leave the facility untreated; they get incinerated or sent to licensed disposal. We willingly share these details with clients who face increasing regulatory scrutiny or need documentation for audits. Their confidence comes from our willingness to let them see our practices up-close.

    We continuously monitor updates in environmental regulations, adjusting our collection and treatment systems accordingly. Few people outside a plant understand how much work goes into making a specialty intermediate like 2,4-Dimethoxybenzaldehyde both high-grade and safe for workers and downstream communities. From overpressure alarms on storage tanks to staff training refreshers, these are lessons born from direct experience, not theory.

    Supporting Research and Innovation

    Over the years, we have collaborated with universities and startups on method validation and new synthetic applications. Occasionally, a researcher finds an unexpected outcome, often dependent on the purity or isomeric form of the aldehyde. Our staff chemists exchange technical updates with these partners, sharing spectral data and best practices for handling. This practical science—fine-tuning reaction conditions, comparing yields, understanding subtle impurity effects—keeps 2,4-Dimethoxybenzaldehyde a trusted staple for new discoveries. Our openness with collaborators comes from the belief that good science needs openness, not secrets.

    Real Problems, Real Solutions from a Manufacturer’s Perspective

    Every manufacturer faces setbacks. Equipment failures, unexpected contamination in raw materials, supply chain interruptions—all these have challenged us at some point. Each incident, fully documented, led to process audits and redrawn risk maps. Over one decade, we cut unplanned downtime by upgrading our filters, automating temperature monitoring, and cross-training teams to spot and flag issues. Our goal goes beyond meeting a specification; we want reassurance that every kilogram leaving our gates can carry a guarantee rooted in experience, not just paperwork.

    Listening and Improving with the End User in Mind

    We work best when our customers speak up. After all, their experiences using 2,4-Dimethoxybenzaldehyde in a pressure vessel or stirred tank go deeper than any certificate. By listening closely to feedback—how a batch dissolves, how color or odor shifts, how crystal size matters—we uncover new ways to improve. An open phone line, regular site visits, co-developed handling protocols: these touchpoints shape how we evolve.

    On more than one occasion, a biopharma client or academic demanded sharper melting point control or lower trace byproducts than any catalog standard. Our organization responded by revising synthesis parameters and tracking performance over several production runs, ultimately delivering a version that hit their needs. These upgrades stick. Teams integrate new control charts and retrain as necessary, making adaptation a shared experience, not a top-down mandate.

    Conclusion: Why Source Directly from a Knowledgeable Producer?

    With years of hands-on production, our staff knows what it takes to deliver real quality in 2,4-Dimethoxybenzaldehyde. Our team stands behind every lot, confident in why it behaves as it does, how it differs from similar molecules, and what steps protect its integrity from synthesis to delivery. By building strong relationships with end users and inviting oversight, we deliver assurance rooted in practical experience, not just technical data. Crafting and shipping 2,4-Dimethoxybenzaldehyde at the highest standard isn’t about meeting a list of criteria. It’s about continuous improvement, responsible stewardship, and a commitment to the chemists, engineers, and researchers who count on us to get their work done right.