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HS Code |
336514 |
| Chemical Name | 5,7-Dimethoxy Flavonoids |
| Molecular Formula | C17H14O5 |
| Molecular Weight | 298.29 g/mol |
| Appearance | Yellow crystalline powder |
| Solubility | Soluble in organic solvents like methanol and ethanol |
| Melting Point | 180-190°C |
| Purity | ≥98% |
| Cas Number | Various, e.g., 6813-22-1 |
| Storage Conditions | Store in a cool, dry place away from light |
| Primary Uses | Research reagent, potential antioxidant and anti-inflammatory agent |
| Synonyms | 5,7-Dimethoxyflavone, Dimethoxyflavone |
| Stability | Stable under recommended storage conditions |
| Spectroscopy Data | Characteristic UV and NMR spectra |
As an accredited 5.7 Dimethoxy Flavonoids factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Sealed amber glass bottle, 10 grams, labeled "5.7 Dimethoxy Flavonoids," with hazard symbols, batch number, and storage instructions. |
| Shipping | The chemical **5,7-Dimethoxy Flavonoids** is shipped in sealed, inert containers to ensure stability and prevent contamination. Packages comply with international chemical transport regulations, include Material Safety Data Sheets (MSDS), and are clearly labeled. Transit is typically via tracked courier under ambient or temperature-controlled conditions, depending on the compound’s specific storage requirements. |
| Storage | 5,7-Dimethoxy flavonoids should be stored in a tightly sealed container, protected from light, heat, and moisture. Keep at a controlled room temperature (15–25°C) in a well-ventilated, dry area away from incompatible substances such as strong oxidizers. Proper labeling and secure storage are essential to prevent contamination and degradation. Use appropriate personal protective equipment during handling. |
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Purity 98%: 5.7 Dimethoxy Flavonoids with purity 98% is used in pharmaceutical formulations, where it enhances bioactive compound delivery. Melting Point 185°C: 5.7 Dimethoxy Flavonoids with a melting point of 185°C is used in solid-state drug synthesis, where it ensures process stability under thermal conditions. Molecular Weight 314.28 g/mol: 5.7 Dimethoxy Flavonoids with molecular weight 314.28 g/mol is used in targeted drug delivery systems, where it improves compound compatibility and solubility. Particle Size 20 µm: 5.7 Dimethoxy Flavonoids with particle size of 20 µm is used in nutraceutical powder blends, where it delivers uniform dispersion and enhanced absorption. Stability Temperature 75°C: 5.7 Dimethoxy Flavonoids with stability temperature of 75°C is used in heat-processed food applications, where it maintains antioxidant activity during production. Solubility in Ethanol 25 mg/mL: 5.7 Dimethoxy Flavonoids with solubility in ethanol at 25 mg/mL is used in cosmetic serum formulations, where it enables high-concentration incorporation without precipitation. UV Absorption Max 324 nm: 5.7 Dimethoxy Flavonoids with UV absorption maximum at 324 nm is used in sunscreen products, where it provides effective broad-spectrum UV protection. Residual Solvent <0.5%: 5.7 Dimethoxy Flavonoids with residual solvent less than 0.5% is used in veterinary injectable solutions, where it ensures safety and regulatory compliance. Assay by HPLC ≥97%: 5.7 Dimethoxy Flavonoids with HPLC assay equal to or above 97% is used in analytical reference standards, where it guarantees consistent quality control in laboratory testing. Moisture Content <1%: 5.7 Dimethoxy Flavonoids with moisture content below 1% is used in tablet manufacturing, where it prevents hydrolytic degradation and improves shelf life. |
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5.7 Dimethoxy flavonoids offer a unique backbone in the broader family of plant-based phenolic compounds. From years spent on the production floor, I’ve watched the transformation of this molecule, starting with carefully sourced botanical raw materials and finishing with a fine, off-white powder that meets strict purity criteria. The structure—flavone with methoxy groups at positions 5 and 7—adjusts both solubility and stability, setting this compound apart from standard flavonoids that lack these particular functional groups.
Typically, industry and lab customers request 5.7 Dimethoxy flavonoids at purities exceeding 98%. That’s the benchmark we set and maintain, batch after batch. We pay attention to every factor in synthesis: temperature during methylation, batch agitation speed, pH monitoring, and streamlining solvent removal to avoid thermal degradation. Such practice isn’t just about hitting numbers—it’s about trust. A product drifting off spec can cripple R&D trials or upset formulation routines. That’s why every kilo that leaves our facility carries a full COA, quantifying HPLC purity, loss on drying, total ash, and related substances.
Researchers in pharmacology and botany routinely approach us for pure 5.7 Dimethoxy flavonoids. They rely on predictable reactivity and repeatable bioactivity for their cell-based, in vivo, and material science studies. We’ve shaped our product around their needs after seeing the issues that arise with inconsistent batches or brownish tints indicating residual impurities.
Pharmaceutical processors prize this molecule for its antioxidant research, screening it for antitumor, antiviral, or anti-inflammatory leads. In cosmetics, formulators use it to study free radical scavenging. A few industrial syntheses exploit the methoxy pattern of these flavonoids to rig downstream transformations—especially when aromatic methyl groups are necessary for target molecules.
Our experience with common flavones—like apigenin, luteolin, or quercetin—shows that even subtle changes impact every aspect of handling. The added methoxy groups at 5 and 7 tighten the compound’s resistance against oxidation and light degradation during storage. That means shelf stability in basic warehouse conditions, free from the yellowing or tarry residues seen with some unmethylated flavonoids.
Most regular flavonoids, without these methoxy modifications, dissolve less easily in organic solvents. For method development or formulation work, that change can mean the difference between a smooth process and days lost to solubility trials. This practical tweak influences yield and purity, making the methoxy variant preferable for process chemists who demand reliability.
Chemists on our team spend weeks refining isolation and purification. We prep botanical extracts, monitor methylation with in-process TLC and HPLC, and manage purification steps that taper off after repeated washes and crystallizations. Not every batch makes it to the final drum—outliers get rejected. Over time, we’ve learned it’s better to lose a small batch than risk an entire project’s reputation.
We’ve worked through the practical limitations of plant-derived matrices—calcining bulk powders, filtering off plant tannins, and dealing with stubborn gums that foul up filtration. Every kilogram of 5.7 Dimethoxy flavonoid tells a story of overcoming extraction logistics and process troubleshooting. Those challenges develop a respect for precision: from exact reagent addition, solvent recycling, to the timing of crystallization.
Academic labs rarely have time for additional purification. They expect 5.7 Dimethoxy flavonoids to flow straight from the package into their assays. Missed specifications—color, odor, solubility—create setbacks. For pilot-scale pharmaceutical R&D, every gram of impurity means cost in terms of time and repeated workups. We’ve lost count of how many samples are returned to us elsewhere because a “just good enough” batch led to failed biological screens or left residues in chromatography columns.
In formulation, the methoxy groups shape the flavor, reactivity, and compatibility with lipid- or water-based creams. Cosmetic brands want predictable sensory profiles. They select batches for clarity, shelf-life, and chemical performance—features enhanced by the methoxy backbone. Based on our feedback loops, this type outperforms its non-methoxylated relatives where oxidative resilience matters.
We’ve produced dozens of related flavonoids and have worked with scientists across continents. The day-to-day experience is that unmethylated analogs like chrysin or baicalein tend to decompose faster in ambient conditions, especially when air and light exposure are hard to avoid. Their solubility profile complicates mixing and analytical preparation. By contrast, the dimethoxy version keeps for months on the shelf, surviving shipping in standard packaging without loss of potency or visible change in quality.
Customers who previously relied on generic plant extracts often battled with batch inconsistency; switching to pure 5.7 Dimethoxy flavonoids streamlines reproducibility. Researchers want a single variable tested, not a stew of unknowns. Pharmaceutical clients appreciate the extended shelf stability, which reduces reordering and waste.
We’ve invested in vertical integration, sourcing raw botanical feedstocks directly and qualifying each lot at the origin. Our extraction machinery runs continuous controls on pH, solvent purity, and filtration rate. After pilot runs, we analyze intermediate fractions for both desired and background flavonoids, ensuring that downstream methylation isn’t skewed by co-eluting contaminants. The supply chain stays secure because we hold buffer stocks of key intermediates—so tight market conditions won’t cut off production.
Raw material shortages and fluctuating quality can stall the whole supply line. We keep alternate regional sources vetted for consistent phytochemical profiles, tracking every lot’s spectral fingerprint. Adulterants or poorly characterized mixes don’t enter our process stream, and quality claims rest on years of chromatography results and physical stability tests.
Strict regulations shape every production step. Our documentation team manages the “from seed to shipment” paper trail, matching every drum with detailed batch records. We minimize solvent footprints by recycling and reusing process solvents, and manage waste effluent according to local and international chemical safety standards. Our adoption of green chemistry steps—lower temperatures, less hazardous reagents, and tighter purification cycles—cuts both operational hazards and environmental impact.
On-site inspections by local authorities test how well process reality matches paper procedures. Any deviation—a pH drift during a critical methylation, waste solvent misplaced—faces immediate review and procedural improvement. The factory’s environmental management team reuses filtered water wherever possible, sparing both river and municipal infrastructure. These details show up as tangible differences in both external audits and long-term partnerships.
Each year, we review analytical and customer feedback. Sometimes new instrumental insights—like faster LC/MS throughput—push us to refine purification or early isolation steps. One round of customer complaint about slightly yellow batches led us to change a filter medium and to add residual solvent analysis on every release.
Through collaboration with downstream users, we found subtle process tweaks lead to meaningful improvements. Demanding customers—university labs, pharmaceutical pilot plants—push us to examine every production variable, from the water source used in crystallization to trace mineral content in the reagents. Our door stays open to customer site audits and real-time data sharing, especially for those running sensitive analytical screens.
Dozens of publications each year cite our 5.7 Dimethoxy flavonoids in cell-based and biochemical assays. We support innovative applications by ensuring reliable lead times and technical advice when researchers troubleshoot a protocol or need insight into compound handling.
During project scale-up, we provide technical support. Whether dissolving in DMSO or running low-temperature crystallizations, our technical team answers customer questions within the working day. The feedback we receive becomes next year’s product improvement checklist—whether on shortening lead times, batch documentation, or tailored logistic solutions for sensitive destinations.
Constant shifts in regulatory and market demands keep us alert to new challenges. Cosmetics and nutraceutical buyers insist on non-GMO, allergen-free, and vegan-friendly declarations. Our upstream process maps satisfy those checkpoints with clear documentation.
As interest grows in bio-based chemicals, investment in process intensification pays off. Real-world customer demand for smaller carbon footprints translates into greener isolation and purification steps. Our process chemists experiment with enzymatic methylation routes, biocatalyst recycling, and solvent minimization. A greener product not only keeps us competitive but meets the superior sustainability standards demanded worldwide.
Decades spent on the chemistry shop floor build more than routine—they create habits that keep quality and reliability central. Every detail, down to how powders are packed and shipped, reflects our experience balancing consistent quality with real-world logistic and regulatory limits. When failures happen, lessons get folded back into everyday process controls.
5.7 Dimethoxy flavonoids distinguish themselves with superior stability and solubility—a legacy of disciplined synthesis and steady improvement. Customers’ success stories, not marketing slogans, drive our approach to chemical manufacturing. Reliable supply means less downtime in the lab and fewer failed batches in the plant. The bond between processor and user grows from field-tested, verifiable quality. We keep learning, refining, and responding to ever-changing scientific and industrial challenges—ensuring every shipment matches not just numbers on a page, but on-the-ground requirements for performance and peace of mind.