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3-Formyl-6-Methylchromone

    • Product Name 3-Formyl-6-Methylchromone
    • Alias Heterocyclic Aldehyde
    • Einecs EINECS 249-443-8
    • 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

    318525

    Chemicalname 3-Formyl-6-Methylchromone
    Molecularformula C10H8O3
    Molecularweight 176.17 g/mol
    Casnumber 4677-14-9
    Appearance Yellow to orange crystalline powder
    Meltingpoint 147-151°C
    Purity Typically ≥98%
    Solubility Slightly soluble in water, soluble in organic solvents (ethanol, DMSO)
    Smiles CC1=CC2=C(C=CO2)C(=O)C=C1
    Iupacname 3-formyl-6-methyl-4H-chromen-4-one
    Storagetemperature 2-8°C

    As an accredited 3-Formyl-6-Methylchromone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 3-Formyl-6-Methylchromone, 5g, is supplied in a sealed amber glass vial with a tamper-evident cap and clear labeling.
    Shipping 3-Formyl-6-Methylchromone is shipped in tightly sealed, chemical-resistant containers to prevent leaks or contamination. It is packaged according to regulatory guidelines for hazardous materials, with appropriate labeling and documentation. Transport is conducted under controlled conditions to ensure stability, safety, and compliance with international chemical shipping standards.
    Storage 3-Formyl-6-Methylchromone should be stored in a tightly sealed container, away from light and moisture, at room temperature (15–25°C). Keep in a cool, dry, well-ventilated area, separate from incompatible substances like strong oxidizers. Label the container clearly and avoid exposure to air to prevent degradation. Utilize proper personal protective equipment when handling and storing this compound.
    Application of 3-Formyl-6-Methylchromone

    Applications of 3-Formyl-6-Methylchromone in Industrial Manufacturing

    3-Formyl-6-Methylchromone serves as a key intermediate in multiple advanced chemical production sectors. Its unique reactivity profile supports high-value molecule synthesis across several regulated markets. Below, we detail core industrial application tracks based on client feedback and observed supply chain integration.

    1. Active Pharmaceutical Ingredient (API) Intermediate for Anticancer Agents

    Pharmaceutical companies use 3-Formyl-6-Methylchromone as an essential building block in the synthesis of select chromone-based antineoplastic drugs. Its formyl group enables efficient condensation reactions, particularly in the preparation of cytostatic agents targeting kinase pathways. During process development, synthesis chemists adjust input ratio and purification protocols to comply with strict pharmaceutical quality standards. The compound feeds directly into API intermediate stages, impacting both yield and impurity profiles prior to final purification. Manufacturers of approved anticancer drugs rely on the precise control of this raw material to meet regulatory registration filings and ensure patient safety in final medicinal products.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Part 210/211 for pharmaceutical manufacturing
    • EU GMP Guidelines (EudraLex Volume 4, Part II)
    • Japanese Pharmacopoeia (JP) for intermediates in drug synthesis

    Typical usage ratio

    • 0.8–1.5 molar equivalents relative to starting amine or hydrazine reactant per batch, fine-tuned based on target API, process validation, and batch yield optimization.

    Downstream process integration

    • Charged during the condensation or cyclization step to construct heterocyclic scaffolds; further purification utilizes recrystallization and chromatography to meet impurity profiles for API submission.

    Final product types

    • Small-molecule kinase inhibitors
    • Research-stage oncology lead compounds
    • Clinical trial batch APIs for solid and liquid oral anticancer formulations

    2. Specialty Dye and Pigment Intermediate

    Manufacturers of functional dyes incorporate 3-Formyl-6-Methylchromone in the synthesis of high-performance chromone-based dye structures for textiles and advanced coatings. Through electrophilic aromatic substitution or condensation reactions, the compound enables introduction of chromophoric groups, enhancing color stability and intensity. Colorant formulators select process conditions depending on solubility needs, lightfastness, and compatibility with textile polymer substrates. The raw material enters during pre-final dye molecule assembly, ensuring traceable batch quality and regulatory compliance in coloration end products.

    Industry compliance standards

    • OEKO-TEX Standard 100 for textile chemicals
    • REACH Registration, Evaluation, and Authorization of Chemicals (EU)
    • ZDHC (Zero Discharge of Hazardous Chemicals) Manufacturing Restricted Substances List

    Typical usage ratio

    • 5–20 wt% relative to core chromogenic backbone per formulation, with adjustment based on absorption maxima and intended fastness properties.

    Downstream process integration

    • Added at secondary synthesis stage for chromophore functionalization; post-synthesis purification involves solvent extraction and crystallization aligned with dye purity standards.

    Final product types

    • Reactive dyes for cotton and viscose textile applications
    • Pigments for technical inks in security printing
    • Color concentrates for plastics and fibers

    3. Fine Chemical Intermediate for Agrochemical Synthesis

    Agrochemical firms utilize 3-Formyl-6-Methylchromone as a scaffold in synthesizing select crop protection molecules. Its aldehyde function reacts with various nucleophilic partners to form bioactive heterocycles used in fungicidal or herbicidal active ingredient development. Process chemists monitor input ratios and reaction conditions to maintain compliance with regulatory impurity limits. The chromone derivative is introduced during targeted ring-closure or alkylation steps, where its precise structure influences the bioactivity and safety of the resulting agrochemical.

    Industry compliance standards

    • FAO/WHO Specifications for Agricultural Pesticides
    • OECD Guidelines for the Testing of Chemicals—Residues in Crops
    • China GB(T) standards for pesticide formulation intermediates

    Typical usage ratio

    • 10–25 mol% of total reactant mixture during active ingredient precursor synthesis, guided by target molecule structure and impurity tolerances.

    Downstream process integration

    • Fed into ring-forming or substitution steps leading to final active ingredient; processed through extraction and crystallization before formulation into bulk product.

    Final product types

    • Systemic fungicides
    • Pre-emergence herbicidal formulations
    • Intermediate concentrates for formulation into SC, WP, or EC crop protection products

    4. Analytical Reagent and Chromogenic Marker Synthesis

    Producers of specialty analytical reagents deploy 3-Formyl-6-Methylchromone as a starting reagent for synthesis of chromogenic markers used in biochemical assays and diagnostic kits. Its electron-rich aromatic system allows for subsequent derivatization, producing high-contrast signal compounds compatible with colorimetric, fluorescence, or HPLC-based test platforms. Laboratory chemical suppliers require manufacturing control to meet high-purity analytical standards. Integration tightens around derivatization steps, where reagent purity directly impacts test accuracy and repeatability for end users.

    Industry compliance standards

    • ISO 9001:2015 Quality Management for chemical manufacturing
    • ISO 13485:2016 for in vitro diagnostic reagent suppliers
    • European Pharmacopoeia—Analytical reagents section

    Typical usage ratio

    • 0.05–0.5 wt% of reagent blend, set by required marker signal intensity and background absorbance in target assay format.

    Downstream process integration

    • Used in precursor synthesis of chromogenic or fluorogenic markers; downstream involves coupling to carrier proteins or substrates for final kit assembly.

    Final product types

    • Diagnostic kit color-markers for ELISA, rapid tests, or titration
    • HPLC calibration standards
    • Specialty reagents for research and clinical analytical applications
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    Certification & Compliance
    More Introduction

    Direct From the Source: 3-Formyl-6-Methylchromone in Modern Chemistry

    Introduction to 3-Formyl-6-Methylchromone and Our Approach to Manufacturing

    As a team working with 3-Formyl-6-Methylchromone for over a decade, there’s a story behind every flask we fill and every drum that heads out our doors. We know this compound well, not through sales brochures or secondhand information, but from countless batches made, tested, purified, and shipped to labs and plants across the world. We have watched its use evolve and sharpen in a range of industries, and every project deepens our understanding of how this molecule helps researchers and manufacturers move new ideas from paper to production.

    The molecular structure—C10H8O3, with a unique combination of a formyl group at position 3 and a methyl substitution at position 6 on the chromone backbone—brings out properties that set it apart from other chromones, flavones, and related aromatic aldehydes. For those in the trenches of organic synthesis, these small changes in structure can mean everything for selectivity, reactivity, and finished yield.

    The Model We Produce and Its Specifications

    Our primary model of 3-Formyl-6-Methylchromone aims for high purity, keeping impurity levels low without sacrificing yield. Each lot comes with individually validated purity, measured by HPLC and NMR, often exceeding 98 percent. Unlike off-the-shelf offerings that advertise nominal purities but skip batch-specific documentation, we attach an analytical report with every order, based on tests run directly on your batch. Moisture levels and inorganic residues stay at the bare minimum, thanks to carefully controlled crystallization and drying techniques honed from constant feedback between our production team and downstream users.

    This attention to detail makes a visible difference. The yellow crystalline powder that leaves our facility blends and dissolves smoothly for downstream reactions. The product remains free-flowing and lump-free under ordinary storage, a direct result of tight process control and continuous review of each step. We don’t rely on excess stabilizers, which can complicate downstream work. For customers who need slightly tailored physical forms—finer powder for rapid dissolution, or coarser particles for extended storage—we draw on practical experience to adjust grinding and sieving, not guesswork.

    Distinguishing 3-Formyl-6-Methylchromone from Other Chromone Derivatives

    In the lab, it’s tempting to substitute one chromone for another, expecting minimal changes. Our chemists have run enough parallel syntheses to know that 3-Formyl-6-Methylchromone often runs a different course. Introducing a formyl group at position 3 opens up a unique route for condensation reactions, especially in Knoevenagel and related transformations. The 6-methyl position steers electrophilic attacks, suppressing side products common with plain chromones.

    Over the years, we’ve worked with researchers who tried swapping in 3-formylchromone or 6-methylchromone only to lose product in low-yielding side reactions. With the dual substitution, customers achieve higher selectivity, which often reduces subsequent purification hassle and waste solvating. Sometimes, those differences save entire projects, especially where minor impurities threaten to trip up biological studies or disrupt catalysis tests.

    Even outside of benchwork, there’s a physical distinction. Unsubstituted chromones tend to clump or darken over time. 3-Formyl-6-Methylchromone, properly handled, holds its color and form for longer periods, showing resilience in bulk storage or in shared lab settings. That stability, which we constantly monitor with sample retention and periodic re-testing, means customers rarely face out-of-spec surprises months later.

    Applications We’ve Witnessed in Real Projects

    The demand for this molecule comes from two main directions: research and synthesis. In the last quarter alone, requests came in from university groups studying anti-inflammatory properties, and from commercial R&D looking to use this compound as an intermediate for advanced material science. The breadth impresses us, but the core driver has always been the unique reactivity profile.

    Many customers use our 3-Formyl-6-Methylchromone for heterocycle synthesis. The aldehyde facilitates rapid formation of new rings and linkers, producing compounds that would otherwise demand multi-step procedures. In pharmaceutical and agricultural chemistry, we’ve seen this material underpin SAR campaigns, helping project teams quickly map out structure-activity relationships as they search for better biologically active agents. Even outside of strictly medicinal chemistry, we’ve supplied laboratories developing new organic semiconductors, where chromone-based scaffolds impart electronic properties not easily matched by other aromatic aldehydes.

    These applications come from feedback and close discussions with customers rather than assumptions. Learning directly from users how minor purity shifts or changed particle size can affect their syntheses has shaped how we manage production targets. For instance, an agrochemical team found trace water in some commercial samples led to batch inconsistencies. Fixing that issue meant rethinking both solvent choice and dryer operation in our process, not simply adjusting a spec on paper.

    Challenges with Sourcing and Quality in the Market

    Too many stories reach us of researchers frustrated by surprising impurities or inconsistent product specs from third-party traders and brokers. One biochemist described three failed screening runs because 3-Formyl-6-Methylchromone from a bulk reseller arrived already partly decomposed—there’s nothing like fresh, well-packaged material to make the difference between a clean chromatogram and a confusing mess.

    Our response draws directly from these lessons. Direct manufacturing control limits the risk of cross-contamination. Warehousing doesn’t become a graveyard for aged lots, which would otherwise accumulate unknown degradation products. We routinely place blank substrate lots alongside active production runs to check for air-borne or contact contamination. By talking straight with end-users, not just procurement teams, we focus upgrades on practical issues like packing speed and air sampling, not just paperwork or standard-form COAs.

    We ship in packaging that preserves the crystalline nature, holding off humidity and oxidative stresses. The impact can be seen easily: the same powder maintains color and melting point readings after weeks in storage, and SMEs working with high-throughput robotics or manual benches can take material from jar to flask without delays or need for extra purification steps.

    The Role of 3-Formyl-6-Methylchromone in Research and Scale-up

    Lab-scale chemistry often struggles to bridge into kilo-scale batches, especially with less common intermediates. Unlike distributors who balance multiple sources, we invest in continuous reactors and flexible crystallization setups, so we can move from gram to multi-kilo scale with the same attention to detail. As a result, researchers can confidently switch from exploratory screens to pilot runs, knowing batch-to-batch consistency won’t become a stumbling block.

    We see this firsthand with several collaborations—some early-stage biotech firms started with 10-gram orders and now receive batches in the multi-kilo range. This flexibility relies on maintaining strict source traceability, investing in analytical equipment, and keeping the feedback loops open with our customers’ process developers. Whether the work involves producing a few milligrams for a screening project or several kilos for process optimization, every order builds into our broader database. This closes the gap between pure research and practical, scalable synthetic work.

    Supporting Advanced Research Through Reliable Chemicals

    One myth persists in discussions about research-grade chemicals: that higher purity equals better reactivity or outcomes. Our experience says otherwise—sometimes it takes careful balancing of process parameters rather than simply pushing analytical scores higher. Some of our customers, especially those scaling up, prefer slight variations in particle size or reduced fines to optimize mixing and solubility in their systems. Understanding how products perform across different reactors, not just under ideal HPLC conditions, brings an edge that pure data sheets can’t match.

    A team working on synthetic dyes once approached us after struggling with filtration clogging from excessively fine powder sold as “ultra-pure” by another source. Together, we tested several grind parameters, landing on a lot with marginally larger average particles that ran through their filters without clogging, without sacrificing their end-product quality. Cases like this remind us that chemistry serves practical goals—not just numbers on a printout.

    Industry Demands and New Trends in Intermediate Manufacturing

    Regulations are tightening around trace metal contamination and solvent residues, so monitoring those factors from raw material to finished product has become a daily routine in our lab. Newer applications in materials chemistry, photovoltaics, and advanced electronics push requirements even higher, demanding strict profiles for organics, metals, and particle distribution. These requirements don’t just come as checklists—they involve constant conversation with end-users and technical teams. Sometimes, this means adjusting washing protocols or swapping a drying agent for a less intrusive alternative.

    Because we oversee the process from initial input to finished goods, we can certify every batch in a meaningful way. Supply chains are under pressure from geopolitical disruptions and logistics hiccups, but vertical integration lets us weather these shocks, passing stability on to our customers. We act on feedback quickly; last year, a customer flagged a new impurity at low ppm, prompting us to update our filtration and solvent storage. These changes didn’t just stay on paper—every customer after benefited in tangible, measurable ways.

    Environmental Responsibility and Safe Manufacturing

    Legacy practices in chemical manufacturing often failed to account for waste, emissions, and energy use. Our team has transitioned over time to solvent recycling protocols that recover and reuse upwards of 75% of process solvents, reducing both costs and environmental burden. This process started as a pilot, with line operators and R&D working side by side to make sure product purity didn’t slip. No single change makes the whole difference; quality stems from a series of deliberate, measured improvements made hand-in-hand with those carrying out the work each day.

    Every spent drum and discarded filter pad tells a story. Minimizing hazardous waste has shaped how we select raw materials and manage by-products. Even minor adjustments in post-crystallization washing reduced our hazardous aqueous waste stream by almost a third last year. These habits, once embedded in daily practice, pay off in fewer permit headaches and less downtime for compliance audits. Factory safety also improves, as operators spend less time managing risky processes and more time hands-on with quality control.

    Bridging Laboratory Needs with Bulk Production

    Batch consistency doesn’t come from automation alone. Our technicians and supervisors learn the quirks of every reactor and drying oven, tracing subtle clues in color, texture, and smell that even sophisticated sensors can overlook. We’ve found that human input makes crucial calls about batch end-points or the need for process adjustments—lessons big plants often lose in the race for scale.

    Scaling up often uncovers issues hidden at gram scale: non-linearity in crystallization, temperature gradients, or solvent hold-up. Fielding calls from process chemists, we troubleshoot side-by-side, providing insights from earlier runs and pilot data that can head off trouble. Across hundreds of batches, we’ve seen the same pain points arise: clumping during bulk drying, off-odors entering from pooled solvents, or mixing inefficiencies that drop yields. In response, we invest in practical changes—redesigned baffles for reactors, more rigorous environmental monitoring, and regular retraining for line operators.

    Not every adjustment appears dramatic, but each brings us closer to less downtime, fewer off-spec batches, and smoother transitions between research and scale production. Years of pushing for tighter process control mean that a grad student making a few grams on a research bench and a plant engineer handling hundreds of kilos share the same reliable starting point.

    Feedback, Innovation, and Continuous Improvement

    No manufacturing story stands still. Product development and process refinement rely on feedback loops with inquisitive partners. Each time a customer tries a new synthetic route or pivots to a novel target, we listen and tweak our processes, keeping ahead of changing demands.

    A few years ago, a research group exploring photochromic materials reached out after discovering that ultra-trace oxidized byproducts blocked their desired absorption curve. Working directly with their analytical team, we modified parts of our crystallization cycle to minimize oxygen ingress and reduce exposure time in open settings. Results improved steadily, building confidence not just in our 3-Formyl-6-Methylchromone but in our willingness to adapt. Now, we include extra air-barrier checks for lots destined for high-sensitivity work.

    Openness to feedback shapes our approach, not just industry trends or regulatory edicts. Engineers, chemists, and process managers engage in regular data sharing by phone, email, and site visits. In doing so, we capture insights missed in the detachment of large-scale distribution and keep pace with real-world needs instead of theoretical standards.

    Long-Term Perspective: Building Trust in Supply and Quality

    Relationships with research and manufacturing partners are built one batch at a time. Reliability comes less from slogans than from an unbroken chain of delivered lots matching specifications, arriving on time, and supporting each step of a project’s journey. Our track record doesn’t look glamorous in press releases—but in bench notes, lab journals, and pilot plant logs, the difference shows up plainly.

    We see customers return project after project not out of habit, but because performance matches the constraints they face every day: shifting deadlines, tricky analytical targets, or regulatory surprises. These ongoing partnerships motivate us to keep improving—celebrating each incremental success, learning from setbacks, and passing the benefits along in stronger product and smoother service.

    Final Thoughts on 3-Formyl-6-Methylchromone as a Building Block

    Through years of manufacturing, 3-Formyl-6-Methylchromone has proven itself as more than just a chemical intermediate. Its structure grants a tuning knob for synthetic chemists, enabling pathways otherwise cluttered by side reactions or poor selectivity. Pure catalog descriptions can’t reflect the value that comes from open communication, rapid response, and hands-on process knowledge. Each step, from raw material sourcing through crystallization and packaging, brings us closer to the kind of reliability and quality that keep projects moving forward, no matter how demanding the research or production schedule.

    In every project where this unique intermediate plays a role, customer success builds from combined expertise—ours as manufacturer, theirs as innovators. We remain committed to this process, ready to meet technical challenges with a practical mindset, and always aiming for purity, consistency, and safety.