|
HS Code |
217964 |
| Name | Ethyl 3-Furancarboxylate |
| Chemical Formula | C7H8O3 |
| Molecular Weight | 140.14 g/mol |
| Cas Number | 614-99-3 |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 198-200 °C |
| Melting Point | -28 °C |
| Density | 1.123 g/cm3 at 20 °C |
| Refractive Index | 1.474-1.477 |
| Solubility In Water | Slightly soluble |
| Flash Point | 86 °C (closed cup) |
| Odor | Sweet, fruity |
| Purity | Typically ≥98% |
| Storage Conditions | Store in a cool, dry, well-ventilated place |
As an accredited Ethyl 3-Furancarboxylate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250g of Ethyl 3-Furancarboxylate is supplied in a sealed amber glass bottle with a tamper-evident cap and clear labeling. |
| Shipping | Ethyl 3-Furancarboxylate is shipped in tightly sealed containers, typically made of glass or high-density polyethylene, to prevent leakage and contamination. The packaging is clearly labeled with hazard information. It is transported as a regulated chemical, in compliance with relevant safety and environmental regulations, protecting against moisture, heat, and direct sunlight. |
| Storage | Ethyl 3-Furancarboxylate should be stored in a cool, dry, well-ventilated area, away from sources of ignition and incompatible materials such as oxidizing agents. Keep the container tightly closed and protected from direct sunlight. Proper chemical storage cabinets, clearly labeled, are recommended to prevent accidental exposure, contamination, or spillage. Use only with appropriate personal protective equipment and adhere to standard chemical storage regulations. |
Applications of Ethyl 3-Furancarboxylate in Industrial ManufacturingEthyl 3-Furancarboxylate serves as a key intermediate and additive across several specialized manufacturing sectors. Downstream users rely on its unique organoleptic profile and chemical reactivity to formulate premium-quality end products. The following application scenarios detail its integration into established industrial processes, referencing compliance benchmarks, controlled usage parameters, specific formulation stages, and actual finished goods found in the market. 1. Flavor & Fragrance Compounds for Food AdditivesFood flavor houses incorporate this ester to impart mild, sweet, caramelized notes, particularly in bakery, confectionery, and beverage flavor blends. It functions as a characterizing ingredient to build depth and natural complexity in high-value compounded flavors, used either as a top note or a background nuance depending on the matrix. Only certified food-grade material is accepted, with batch traceability and allergen-free status mandatory in large-scale blending and spray drying operations. Industry compliance standards
Typical usage ratio
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2. Pharmaceutical Intermediate for Active Ingredient SynthesisResearch and commercial pharmaceutical APIs utilize this compound as a core building block for the synthesis of furan-based scaffolds, particularly in heterocyclic drug design. It enters multi-step reaction sequences executed under validated GMP conditions. Its consistent purity grades, low residual solvent profile, and well-documented impurity spectrum are essential to downstream quality and pharmacopoeial compliance. Industry compliance standards
Typical usage ratio
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3. Aroma Chemical for Fine Fragrance and Cosmetic FormulationsMajor perfume and personal care brands include this ingredient among specialty aroma chemicals to achieve refined gourmand and caramelized notes in complex fragrance accords. Its excellent miscibility with both alcohol and carrier oils enables accurate dosing in compounding tanks and ensures stability through high-shear emulsification and cold-fill operations. Formulators monitor trace allergen content to comply with safety and labeling standards. Industry compliance standards
Typical usage ratio
Downstream process integration
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4. Industrial Resin Modifier in Coatings and AdhesivesManufacturers of specialty resins for solvent-borne and waterborne adhesive formulations use this compound to introduce polar functionality and flexibility within polymer chains. It is integral in adjusting the glass transition temperature and adhesion performance of polyesters, especially for high-heat or specialty flexible packaging applications. Its input requires stringent raw material approval and tracking in accordance with sector-specific chemical safety and environmental requirements. Industry compliance standards
Typical usage ratio
Downstream process integration
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Ethyl 3-Furancarboxylate has always struck a special chord with our team. We see it make a real difference in labs and production lines around the world. Our crew works daily with this product, guiding each step of the synthesis and quality control phases. We know what it takes to make a batch that passes every checkpoint, and we've seen how careful process design affects performance in downstream applications.
We supply Ethyl 3-Furancarboxylate with a focus on purity, aiming for consistent GC assay readings above 99%. Each batch lives up to the standards set by responsible manufacturers. Technical staff manually check its clarity and odor profile, catching any anomalies before they leave our door. Trace moisture can create issues in some final products, so our dryers run long enough to hit industry-expected limits. Every production run relies on industrial furan feedstock of controlled provenance, ensuring the product is free from off-spec byproducts that sometimes creep in during rushed syntheses.
This molecule finds use in making flavors, fragrances, pharmaceutical intermediates, and specialty polymers. Its mild, sweet, slightly roasted aroma brings subtlety to flavor blends and fragrance bases, and it serves as a valuable building block in scent chemistry. In fine chemical synthesis, it acts as a precursor for active pharmaceutical ingredients, helping chemists build more complex molecules without unnecessary side-reactions. During esterification or amidation reactions, clean Ethyl 3-Furancarboxylate keeps impurities down and yields high. Plant operators and R&D chemists tell us that our batches speed up workups and cut the need for deep purification downstream.
We also hear from polymer manufacturers who value its furan core. It introduces rigidity and chemical resistance to polyesters and polyamides. This performance edge can be traced right back to batch purity and the absence of oxidized tars or unreacted alcohols. Our distillation and purification processes target these common pain points, saving time and labor for polymer specialists.
Working as a chemical manufacturer—not as a reseller or third-party—we control everything from sourcing to final QC. We get direct feedback from maintenance teams who run the reactors and filtration units. If a distillation cutoff gets tweaked or a cleaning protocol shortens downtime, we learn about it before it becomes a major production concern. Our plant team doesn’t rely on assumptions or distant supply chains, so traceability goes beyond a shipping manifest. Tightly closed process steps reduce the risk of contamination and downtime, and small changes in raw material supply show up in real-time process logs.
Many other suppliers don’t have the ability to adjust production in real time. Our team inspects and calibrates glassware and reactors, uses in-line monitoring, and tracks temperature and pressure curves constantly. This reduces both yield loss and the chance for uncontrolled exotherms, producing a purer material with every run. Downtime costs us as much as it costs our customers, so we keep lines clean and equipment feedback-driven.
In technical circles, people occasionally confuse Ethyl 3-Furancarboxylate with its methyl or propyl counterparts. These alternatives may be easier or cheaper to synthesize, but they don’t match the performance needed in certain applications. The ethyl group strikes a better balance of volatility and stability, especially in formulations where flavor or fragrance persistence matters. Users looking for a sharper profile lean toward the methyl ester, but when a rounder note or improved solvent effect is required, our ethyl variant takes the lead.
Other options like 2-furancarboxylate esters do not provide the same selectivity in reactivity or maintain consistent melting ranges. These small details make a difference in both lab and large-scale production. The downstream isolation steps work better with our material’s distillation profile, and end-product stability receives a boost. That comes from close process control, tight feeding schedules, and batch-by-batch feedback between our reactors and labs.
Nothing replaces the feedback loop between workers, operators, and lab personnel. Our storage staff logs every drum and verifies tight sealing and labeling. The mild, nutty aroma lets people know if a seal breaks. Logistics do not end at the dock; routine checks show if material integrity is holding up, and we invite clients to share their storage experiences. Since some end-users seek raw materials without stabilizers, we keep storage times short and prioritize fast shipments.
Every step, from distillation to final drum filling, sees hands-on oversight. Acid numbers and any residual bases or water levels are documented, as a sign of real-world usability. If a customer describes unusual haze or a drifting odor, our process engineers review stored samples from the same batch. They retrace process parameters and trace the anomaly all the way back to reactor settings or raw material changes. Such follow-through only happens on the production floor or in direct collaboration with customers—not through paperwork alone.
Our experience has taught us that traceability takes more than digital barcodes. Keeping records on tank cleaning schedules, equipment checks, and small batch deviations gives us tools for root-cause investigations. If complaints ever arise, we provide details on condenser settings, feedstock batches, and analytical results for the batch in question. Our system enables field engineers and clients to get precise answers. These aren’t abstract assurances; they represent hours spent troubleshooting and resolving real world issues, whether they concern haze formation or small differences in reaction times.
The promise of “assay by GC not lower than 99%” might sound simple. In practice, reaching that target batch after batch takes reliable reactor setup, regular calibration of analytical gear, and team accountability. We replace old gaskets before scheduled runs and verify our GC calibration routine each week. If an unexpected chromatogram spike appears during batch testing, we don’t ship out the lot; we review the feed and reactor logs first. This diligence protects our partners from product recalls and inconsistent batch results.
Our operators’ experience is that off-odor or faint color in samples often tie back to coolant leaks or over-exposed catalyst beds. Quick action on the production floor avoids entire batches turning off-spec. As a result, our Ethyl 3-Furancarboxylate shows low odor variability and good storage stability. Suppliers working at arms’ length from the process miss these subtle but important production realities.
Ethyl 3-Furancarboxylate plays a key part in both legacy and innovative chemical synthesis. Its stable ester group enables safe handling and broad compatibility with a range of reagents. In pharmaceutical labs, chemists use it for constructing furan-linked intermediates. Careful process control stops side reactions from introducing cross-contaminants that could affect the final drug product's purity. The product has a clear record as a fragrance intermediate, offering a cost-effective route toward high-odor-impact aldehydes that underpin signature flavor releases.
In academia, researchers appreciate the consistent quality. Study after study, they note the predictable melting range and NMR signals, making it simpler to publish reproducible work. Our technical support team handles requests for detailed spectral libraries, and we see return buyers who value knowing what to expect in their flask or reactor every time.
Recent years have shown how fragile chemical supply chains can become. As a direct manufacturer, we respond by keeping a clear picture of available feedstocks and backup process routes. Long-standing relationships with key feedstock suppliers and automation upstream limit the chance of unexpected interruptions. Rapid adjustments between lots or to unexpected regulatory changes come as part of the job. Unlike traders or resellers, we don’t rely on months’ worth of shipping; we pivot as soon as material realities shift.
During times of tight supply, being able to remap purification protocols or balance feedstock volatility makes all the difference. Our engineers constantly experiment with incremental process changes, improving throughput or lowering waste output. Knowledge built on real practice—learning which distillation cuts preserve the right aroma and minimum impurity levels—lets us pass on process improvements directly to clients.
Users call for predictability batch after batch. Plant managers emphasize uninterrupted production and low analytical surprises. We adjust by double-checking each distillation run, sampling mid-process, and updating standard operating procedures as raw material qualities drift over time. We’ve learned from years of feedback: a single off-batch can disrupt schedules and eat up budgets. Direct dialogue with industry partners gives us the foresight to tweak the process before problems escalate.
Worker feedback also helps us improve operator safety and maintenance schedules. The learning runs both ways—if a safety cap doesn’t close tight or a storage drum lining starts reacting, floor staff log the case and we modify packaging specs as needed. These lessons keep both the material and our team safer.
People familiar with furan esters sometimes ask why Ethyl 3-Furancarboxylate deserves attention. Its balance of molecular weight and boiling range makes processing on industrial lines more manageable. It evaporates steadily at working temperatures, which helps both in solvent removal and in maintaining controlled concentrations in reactors. Similar esters like methyl or propyl forms either flash off too early or stick around longer than desired, impacting yields and downstream separations.
Many esters in this family start to polymerize or oxidize under moderate heat. Our process avoids side reactions with excess oxygen and controls temperature ramps to ensure stability. The result: better shelf life, less yellowing, and fewer customer complaints. Other products may bring lower up-front costs, but their unpredictability translates to more time spent on reprocessing or refining finished goods.
We design our plant processes to cut emissions at every turn. Furan derivatives can be sensitive in regulatory contexts, and trace solvent residues draw environmental scrutiny. Our in-house waste stream management sends still bottoms and off-gas through neutralizing and recovery systems. Maintenance logs show a steady drop in non-recoverable residues and solvent loss, due to real-world operational changes instead of paperwork alone. That means downstream users receive a cleaner material and don’t face surprises with local compliance checks.
By removing unstable byproducts before shipment, the risk of chemical degradation in transit lessens. International shipments have encountered fewer regulatory hold-ups, saving time for both our team and our partners. Our experience shows that strong in-plant control makes paperwork less of a burden and keeps cargo moving through customs quickly. For those developing new products, this reliability can determine whether a project stays on schedule or accumulates hidden costs.
We see R&D intensive partners using Ethyl 3-Furancarboxylate as a launching pad for both scaling-up and exploratory chemistry. They count on batch-to-batch consistency for dispersion studies, flavor creation, and synthesis of potential drug candidates. By holding our internal analytical criteria to demanding standards—tracking not just GC purity, but also color, acid value, and reaction histories—our partners don’t deal with unexpected surprises in their workflow.
Technical support goes beyond an MSDS or lot certificate. Staff chemists can answer direct questions about minor component profiles and analytical quirks. Production chemists and engineers maintain close relationships with regulatory teams, so we can respond quickly to documentation requests. As the chemical world evolves, so do we—incorporating feedback, acting on it quickly, and updating internal protocols as industry expectations change.
Our role as a direct producer lets us see both the chemistry and the practical realities involved in every shipment of Ethyl 3-Furancarboxylate. Each improvement in process controls, storage, staff training, or traceability translates into better material for the next customer—and less effort spent troubleshooting. This connection to the real product gives our team motivation to refine further and helps clients do more with each kilo.
In a world where reliability and transparency drive both science and industry, we’ve found that keeping production in-house and feedback direct brings lasting advantage. Every batch reflects ongoing collaboration between operators, analysts, engineers, and end users. As manufacturing conditions and industry needs evolve, so does our approach, built on years of practical experience and close technical partnerships. Clients can see these details not just in paperwork, but in the results they get from their own labs, plants, and finished products.