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HS Code |
518793 |
| Product Name | 6-Methyl-2-Pyridinecarboxaldehyde |
| Cas Number | 1122-54-9 |
| Molecular Formula | C7H7NO |
| Molecular Weight | 121.14 g/mol |
| Appearance | Yellow to brownish liquid |
| Boiling Point | 237-239 °C |
| Density | 1.122 g/cm³ at 25°C |
| Solubility | Soluble in organic solvents, slightly soluble in water |
| Purity | Typically ≥98% |
| Smiles | CC1=CC=NC(=C1)C=O |
| Inchi | InChI=1S/C7H7NO/c1-6-2-3-8-7(4-6)5-9/h2-5H,1H3 |
| Refractive Index | 1.567 (20°C) |
| Flash Point | 111 °C |
| Storage | Store at 2-8°C |
As an accredited 6-Methyl-2-Pyridinecarboxaldehyde factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle, 100 grams, tightly sealed with a screw cap, labeled with chemical name, CAS number, hazard icons, and purity. |
| Shipping | 6-Methyl-2-Pyridinecarboxaldehyde is shipped in tightly sealed containers, protected from light and moisture. It is transported as a hazardous material according to relevant regulations. Packages are labeled appropriately, and handling precautions are observed to prevent leaks or exposure. Ensure compliance with local, national, and international shipping guidelines for chemicals. |
| Storage | 6-Methyl-2-Pyridinecarboxaldehyde should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from heat, light, and incompatible substances such as strong oxidizers. It should be kept at room temperature and clearly labeled. Ensure storage areas have suitable spill containment and are compliant with local regulations for handling hazardous chemicals. |
Applications of 6-Methyl-2-Pyridinecarboxaldehyde in Industrial Manufacturing6-Methyl-2-Pyridinecarboxaldehyde serves as a crucial chemical intermediate across multiple advanced industrial sectors. As an original manufacturer, we supply to producers requiring precise quality standards, stable supply, and traceable process documentation for downstream integration. We outline key application segments below, addressing compliance, formulation, workflow position, and resulting finished goods for each industry. 1. Agrochemical Synthesis IntermediatesAgricultural chemical manufacturers incorporate 6-Methyl-2-Pyridinecarboxaldehyde as a building block for specific herbicide and fungicide actives, targeting the pyridine-ring-modification step during intermediate stage production. Typically, experienced companies adjust reaction parameters to optimize selectivity in condensation or amination reactions, especially when producing active substances listed under regulatory frameworks for modern crop protection agents. Industry compliance standards
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2. Pharmaceutical Intermediate for API Synthesis6-Methyl-2-Pyridinecarboxaldehyde is widely used to construct advanced pharmaceutical intermediates, specifically in the production of several anti-infective and central nervous system API precursors. Formulation chemists select precise ratios depending on the synthetic route, with in-process controls over aldehyde feed to maintain chiral integrity and to reduce side product formation during condensation or cyclization with amine reactants. Full traceability supports cGMP batch records required for regulated pharmaceutical supply. Industry compliance standards
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3. Manufacturing of Specialty Dyes and PigmentsSpecialty colorant production facilities employ 6-Methyl-2-Pyridinecarboxaldehyde in the synthesis of metal-complex dyes and pigments, where it acts as a precursor to ligands that stabilize dye structures. Exact ratios depend on target dye shade and substrate compatibility. Operators introduce the aldehyde during the azo-coupling or chelation step to obtain controlled chromophore configuration, with tight monitoring for batch consistency and heavy metal impurity profiles. Industry compliance standards
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4. Electronic and Fine Chemical SynthesisProducers in the fine electronics industry utilize 6-Methyl-2-Pyridinecarboxaldehyde for manufacturing specific pyridine-based ligands used in liquid crystal displays, OLED precursors, and high-sensitivity sensor components. As part of advanced material synthesis lanes, users require ultra-pure feeds and stable supply for batch-to-batch reproducibility. Addition points vary: material may directly couple to active core intermediates or functionalize polymer backbones by controlled condensation. Industry compliance standards
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In the chemical industry, each compound brings its own unique story—rooted in structure, utility, and the lessons learned along the path from raw material to finished batch. As a manufacturer of 6-Methyl-2-Pyridinecarboxaldehyde, we’ve come to know this yellowish liquid in ways a simple product sheet cannot tell you. Years spent in synthesis, refining distillation methods, and solving stability issues have taught us that real value comes from hands-on experience and staying close to the chemistry. We know where the quality pressure points tend to lurk, what downstream users tend to encounter, and how this particular aldehyde stands apart from the crowd.
6-Methyl-2-Pyridinecarboxaldehyde is much more than another “fine chemical.” On the production floor, it stands out for its reactive pyridine ring and that signature methyl group, which influences its behavior during transformations. The molecular formula, C7H7NO, pushes the chemistry in useful directions. Laboratories use it as a valuable starting material for synthesizing pharmaceuticals, agrochemical intermediates, and specialty ligands. Many requests we field come from process development groups focused on identifying effective building blocks for biaryl systems, condensation products, or complex heterocycles. Watching it at work in these syntheses, we see how its selective reactivity sets it apart from other “pyridinecarboxaldehyde” family members. Yield improvements or cleaner profiles on scale-up often hinge on the subtle steering effect of that 6-methyl group.
We’ve spent years refining the isolation and purification of 6-Methyl-2-Pyridinecarboxaldehyde. Using high-grade feedstocks, we pay close attention to temperature control and solvent management to push the desired aldehyde over undesired oxidized or reduced products. Switch a solvent, misjudge a reflux period, or rush the work-up, and the impurities can climb—affecting both yield and downstream use. Real consistency comes from controlling those variables, using only chromatographic techniques when needed, and, more importantly, keeping our equipment operating within target parameters. Many customers don’t see those early-stage quality measures—what really matters to them is a consistent batch-to-batch product that behaves as expected, minimizes troubleshooting, and doesn’t blindside you with trace byproducts or color shifts during storage.
Our batches routinely meet high purity levels, with GC and NMR analyses monitoring trace levels of 2-pyridinecarboxaldehyde, methylpyridines, and related side products. The difference isn’t just academic. High-end applications—like pharmaceutical synthesis or ligand assembly—amplify the consequences of even minor contaminants. A small impurity in the aldehyde can quickly become a big headache after several synthetic steps. We stay close to our customers’ technical staff to provide answers and authentication when a question arises, sharing spectra and tracing as far upstream as needed.
In the world of substituted pyridines, 6-Methyl-2-Pyridinecarboxaldehyde occupies a special niche. Structural isomers like 2-pyridinecarboxaldehyde or 4-methyl analogs deliver similar reactivity—yet differences quickly show in practice. That methyl group at the 6-position changes electron distribution, which subtly shifts reactivity in formylation or condensation steps. For instance, researchers have documented how this structural tweak can improve selectivity or decrease side product formation in Mannich reactions or cross-couplings. In our own plant, we saw that 6-methyl substitution led to cleaner crystallizations during downstream transformations, reducing the need for extra purification cycles. Compared to the parent 2-pyridinecarboxaldehyde, the 6-methyl version shows a lower tendency to undergo unwanted oligomerization under basic or acidic conditions, translating to better shelf stability for anyone storing it for extended periods.
From the perspective of production, the difference comes down to controllability. The presence, quantity, and location of the methyl group greatly influence how the raw material behaves during distillation and final handling. If you’ve ever tried to fractionate a mixture containing several pyridines, you’ll know that boiling ranges and volatilization can push product losses or tie up capacity. Our focus on narrow boiling point cuts, tight pH control during aqueous work-up, and efficient solvent recovery pays off in both purity and sustainability—less waste, more reliable output, and fewer surprises during QC release.
Many of our regular shipments land in the hands of pharmaceutical innovators. As a building block, 6-Methyl-2-Pyridinecarboxaldehyde offers a flexible platform for synthesizing specialty APIs or active intermediates, particularly those involving complex nitrogen heterocycles or metal-ligand scaffolds. The compound’s aldehyde functionality opens routes to imines, oximes, and Schiff bases that figure prominently in medicinal chemistry. Agrochemical researchers also value the unique reactivity. Multiple patent filings cite this material in creating new crop protection agents or growth regulators, with that 6-methyl group often playing a key role in improving bioavailability or shifting selectivity profiles against target organisms.
Chemists working in academic or industrial labs tell us they notice improved yields and reduced side-reactions when swapping in our product in place of less carefully sourced material. The reproducibility of reaction outcomes isn’t just a point of pride; it’s a necessity, especially in settings where multiple steps or regulatory filings are at stake. Some clients develop specialty ligands for catalysis or electronics, requiring trace-level purity and reliable stoichiometry. We support these demands not only through strict QA procedures; we also provide technical insight into handling, stability, and storage based directly on our own standard operating procedures.
Real chemical manufacturing never completely escapes minor setbacks and surprises. With 6-Methyl-2-Pyridinecarboxaldehyde, we faced challenges with storage stability, occasional trace polymer formation, and color change on long storage. To mitigate these, we switched to oxygen-excluding packaging, reduced headspace, and ran systematic storage trials at different temperatures. We share our findings so users avoid common headaches—like unwanted side reactions triggered by air exposure or poorly cleaned glassware. Our team has responded to emergency shipment requests when a batch on the customer’s side turned amber due to prolonged light exposure. Fast, informed troubleshooting depends on direct experience—something we always aim to pass along to users who share our respect for sound chemical practice.
Waste management and regulatory compliance have grown in importance across the sector. With stricter discharge limits, the choices made in upstream processing—solvent selection, recovery efficiency, and in-process monitoring—shape both product quality and the plant’s environmental footprint. We optimized our own workflow to minimize organics in waste streams, recovering and purifying solvents when feasible and reducing water content in the final product. The outcome: not just a better product, but also fewer surprises for regulatory auditors and an easier time for users tasked with downstream compliance documentation.
Meeting required specifications forms only the starting point in specialty chemicals. No analytical certificate can capture everything that production knowledge, daily testing, and open lines to customers provide. With 6-Methyl-2-Pyridinecarboxaldehyde, we go beyond required purity checks. Batch sample tracking, retention policies, and trending of minor impurity profiles help us preempt issues before they affect scale-up synthesis elsewhere. Our own staff uses this compound daily to validate synthetic steps and QC protocols, so issues are caught at the bench—not just in the control room or the QA department.
Cross-comparison with other grades of pyridines in our own inventory has shown us where details matter. A rise in water content or trace oxidized byproducts may not affect every reaction, but for those doing high-precision work, the margin of error shrinks fast. We run Karl Fischer titrations and keep a close eye on aldehyde-specific degradation trends by batch and by storage condition. This hands-on management supports reproducibility for scale-ups and regulatory submissions, where documentation and traceability matter as much as the product itself.
The relationship with customers using 6-Methyl-2-Pyridinecarboxaldehyde extends beyond regular shipments. Chemists often reach out to troubleshoot a stuck reaction, query a spectral anomaly, or explore alternate handling techniques. Experience tells us that listening to these stories sharpens our own understanding—a seemingly minor handling detail can affect scale rates, solvent loss, or even container compatibility. We learned to recommend storage under inert gas for long-term users and to avoid certain plastics in packaging after noticing extraction into container seals during lab-scale testing.
We welcome engagement because our business depends equally on our reputation and our chemistry. Offering documented lot histories, detailed spectral records, and advice on handling strengthens trust, reduces downtime, and minimizes costs for everyone involved. For new applications—those still in feasibility or scale-up—we can adjust production runs for tighter or looser specifications or tailor volumes based on anticipated process demand.
The last decade has seen demand for 6-Methyl-2-Pyridinecarboxaldehyde shift from bulk intermediates to more niche, high-value sectors. With growth in precision medicine, specialty agrochemicals, and advanced materials, the tolerance for impurities and variability steadily shrinks. Industry regulations on trace metal content, labeling, and environmental impact continue to tighten. These changes force us to maintain discipline in cleaning, calibration, and supplier relationships. Such realities shape how we train our staff and invest in plant upgrades—whether introducing better atmosphere control, automating analytical data management, or qualifying alternate raw material vendors to reduce supply chain risk.
Customers now ask for increasingly detailed certificates, product origin assurances, and deeper supply chain transparency. Responding to these requirements draws on our accumulated experience. We maintain full documentation of sourcing, manufacturing, and release testing across all production runs. Typical routine includes monitoring for trace solvents, unrelated methylpyridine isomers, and persistent residuals from synthesis reagents. This deep level of transparency, along with our readiness to answer technical queries well after delivery, sets a standard difficult for non-manufacturers to duplicate.
Chemical synthesis always walks a fine line between efficiency, sustainability, and reliability. As producers, we understand our responsibility extends well beyond selling a compound—it’s about supporting research, manufacturing, and safe handling on every tier of the value chain. The lessons learned with 6-Methyl-2-Pyridinecarboxaldehyde—whether they relate to purity thresholds, byproduct management, or downstream reactivity—inform how we approach each new process and customer requirement. Real trust arises from showing up for the tough calls, sharing expertise, and never cutting corners on things that matter most: quality, documentation, and long-term supply assurance.
Bringing this experience to bear in each batch, we aim to provide not only a reliable product but also a resource for chemists and innovators who trust their next project to our hands. In the stories we hear from the lab, the plant floor, or the warehouse, we see how far commitment to solid manufacturing and open communication can reach. For us, handing over a drum of 6-Methyl-2-Pyridinecarboxaldehyde means sharing the results of dedicated work, careful stewardship, and a willingness to keep learning along with every new application and every customer partnership.