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HS Code |
457003 |
| Chemicalname | Ethyl Benzilate |
| Casnumber | 86-00-0 |
| Molecularformula | C15H16O3 |
| Molecularweight | 244.29 g/mol |
| Appearance | Colorless liquid |
| Boilingpoint | 323°C |
| Meltingpoint | -16°C |
| Density | 1.13 g/cm3 |
| Solubilityinwater | Insoluble |
| Refractiveindex | 1.548 |
| Flashpoint | 151°C |
| Smiles | CCOC(=O)C(C6H5)O |
| Synonyms | α-Phenylbenzeneacetic acid ethyl ester |
| Odor | Mild aromatic |
| Storagetemperature | Store at room temperature |
As an accredited Ethyl Benzilate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 500 mL amber glass bottle with secure screw cap; labeled "Ethyl Benzilate," CAS number, hazard warnings, and supplier information clearly displayed. |
| Shipping | Ethyl Benzilate should be shipped in tightly sealed containers, protected from moisture and light, and stored in a cool, well-ventilated area. It is classified as a hazardous material; proper labeling and documentation are required. Follow all applicable local, national, and international regulations for transport, including packaging and handling precautions. |
| Storage | Ethyl benzilate should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers and acids. Protect it from heat, moisture, and direct sunlight. Use appropriate chemical storage cabinets and ensure proper labeling. Avoid ignition sources, as ethyl benzilate is combustible and may decompose on prolonged exposure to light. |
Applications of Ethyl Benzilate in Industrial ManufacturingAs a direct manufacturer of Ethyl Benzilate, we supply this specialty intermediate to several core sectors with established use and regulatory recognition. The following downstream applications reflect genuine industrial pathways, formulated based on current market practice, process know-how, and compliance requirements. Each scenario outlines sector-specific compliance standards, formulation guidelines, integration points within downstream production, and the nature of final end products. 1. Anticholinergic Active Pharmaceutical Ingredient (API) SynthesisPharmaceutical API manufacturers utilize Ethyl Benzilate as a synthetic intermediate in the multi-step production of anticholinergic compounds such as benztropine and related tropane derivatives. The compound supports precise structural modifications and functionalization steps required by medicinal chemists for selective muscarinic receptor antagonists. Careful dosage calculation during preparative steps ensures maximum yield and purities aligning with pharmacopoeial standards for human use. Since Ethyl Benzilate influences final API impurity profiles, process control, traceability, and full tracking of the intermediate are mandated throughout synthesis and purification stages. Industry compliance standards
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2. Chemical Defense Reagent ManufacturingDefense-sector specialty chemical plants rely on Ethyl Benzilate as a core component in the synthesis of standardized riot-control and incapacitating agents required for testing and calibration of environmental monitoring equipment and protective gear. The substance participates in established reaction protocols to produce reference compounds where traceability and batch analytics are subject to controlled item regulations. Formulations involve monitored usage of Ethyl Benzilate during synthesis, with downstream tracking via analytical methods dictated by national and international statutes for chemical storage and handling. Industry compliance standards
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3. Specialty Analytical Derivatization ReagentsAnalytical reagent manufacturers employ Ethyl Benzilate in the synthesis of derivatization reagents used for chromatographic and spectrometric analysis. The compound enables the preparation of custom benzilate derivatives that modify physicochemical properties of analytes, thereby enhancing separation and detection sensitivity in gas chromatography-mass spectrometry (GC-MS) or HPLC methods. Compliance with reagent-grade purity standards and trace level impurity specifications is mandatory to prevent analytical interference, driving the need for controlled formulation and process documentation throughout batch preparation. Industry compliance standards
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4. Fine Chemical Intermediate for Custom Organic SynthesisFine chemistry laboratories and contract manufacturing organizations (CMOs) use Ethyl Benzilate as a building-block intermediate within custom multi-step syntheses, supporting the manufacture of structurally complex small molecules such as research standards, experimental drugs, or advanced intermediates. The role within the process demands reliability in batch consistency, extensive impurity profiling, and full documentation of supply chain traceability. CMOs scale the dosage depending on the unique synthetic route and downstream coupling reactions, with rigorous process monitoring to meet client project deliverables and to comply with global quality frameworks for commissioned custom synthesis. Industry compliance standards
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Ethyl Benzilate has earned its place as a specialty chemical in both laboratory and industrial settings. As a producer involved with this compound for decades, we know it inside and out. Through each stage—from raw material sourcing to the final product—our team values precision and responsibility. Ethyl Benzilate does not enter the focus of mainstream discussion, but those who depend on its qualities appreciate the work that goes into every batch. Over the years, demands have shifted. Regulations now shape how we source, purify, and dispatch each shipment. This adaptation hasn’t been optional for us; it forms our everyday effort. Trading or reselling never gave that level of insight into the chemical’s journey. Only our shop floor and our people can carry these details forward, one drum at a time.
Ethyl Benzilate’s chemical structure gives it uncommon properties. With the formula C15H15O2, this ester of benzilic acid and ethanol results in a pale, oily liquid under standard conditions. Customers often notice its mild aromatic scent and low solubility in water. In our catalog, we present Ethyl Benzilate under the designation EB-1515—a nod to its molecular specifics and the consistency maintained across our runs. This isn’t just a label for inventory; it indicates lineage back to our first production batch, when record-keeping took place with pen and carbon paper. Consistency grew from those humble routines.
Each lot of EB-1515 stands up against GC-MS purity testing to prove its identity and ensure both the absence of organic impurities and the reduction of moisture content to within strict limits. What we offer never feels accidental. Through hundreds of syntheses, we learned how to maintain purity above 98.5%, solidifying what our customers expect. Competitive products sometimes drop below this threshold or drift with lot-to-lot differences. In our experience, those variations show up quickly in downstream applications, where reproducibility means everything.
Our laboratory partners comment on how Ethyl Benzilate behaves as an intermediate. Its role often sits at the junction of organic syntheses—pharmaceutical candidates, research chemicals, and academic explorations. No two batches roll off our lines without a purpose. In drug development, researchers rely on this compound while constructing complex ring systems or exploring molecular rearrangements. What sets it apart from similar esters stems from its dual phenyl rings, introducing both bulkiness and electron density into compound libraries. These traits draw out different reactivities, so people interested in structure-activity relationships use Ethyl Benzilate for probing mechanism or tuning product selectivity.
From a manufacturing vantage, we’ve seen how Ethyl Benzilate survives scale-up pressures that challenge other esters. Aggressive conditions sometimes degrade simpler benzoates or cause local decomposition of alternatives. Our product, with its rugged phenyl backbone, tends to ride through those confrontations. Our technical teams often consult with R&D managers developing pilot-scale sequences. Digging into the details allows us to adjust specifications so that the compound stands up in both glassware and kilo-lab reactors.
In certain fields, especially within synthetic organic chemistry and medicinal design, Ethyl Benzilate offers unique leverage. It remains stable at moderate temperatures and resists hydrolysis longer than some lighter esters. That stability, pushed towards its upper limits, lets chemists utilize stronger conditions—sometimes higher pH or non-aqueous systems—to access transformations otherwise out of reach. Other suppliers sometimes market related esters such as methyl or propyl benzilates, but those alternatives tend towards earlier breakdown or offer less selectivity in key reactions. Our ability to scale Ethyl Benzilate without an increase in byproduct formation speaks to years of process tuning.
Comparisons with other esters and aryl derivatives highlight the reason buyers return to Ethyl Benzilate year-on-year. Methyl and isopropyl variants appear in catalogs but rarely mimic the balance of reactivity and resilience that the ethyl group provides. We’ve run side-by-side analysis through lab and pilot stages. Methyl benzilate decomposes faster with base, while propyl benzilate sometimes leaves residuals that interfere downstream. In the realm of mass balance, Ethyl Benzilate holds favorable volatility and lower risk of bottle loss under storage. Feedback often comes back from warehouses—drums retain content and resist clouding after months. Simpler esters don’t offer that predictability.
In larger chemical synthesis frameworks, even slight variances between similar esters affect safety, reliability, and product worth. Ethyl Benzilate scores high marks for its boiling point and manageable vapor pressure, leading to a lower flammability risk if managed with common precautions. Run data from our reactors supports this; yields track closely over years, deviating rarely. In laboratories where analytical precision sets the baseline for success, that reliability saves time. Researchers have pointed out that certain analytic traces—residual aldehydes, off-odors, or unstable color—happen less often in EB-1515, especially compared with purchases from bulk mixers who don't invest in rigorous purification.
User safety and clarity also benefit when using Ethyl Benzilate over more volatile or less tightly regulated alternatives. The compound's relative density and viscosity permit easier measurement for applications in instrumentation or automated runs. Feedback from users refining process control confirms that pipetting accuracy and mass readings stay within tighter limits versus lower boiling esters. This trait, often overlooked in commodity chemical markets, shows its worth in critical applications—clinical research, quality control testing, teaching environments, or custom synthesis routes.
Working upstream in the supply chain, we see not just the molecule but the entire infrastructure. From how solvents are sourced, to atmospheric controls in the plant, each decision reflects in the finished bottle. Our production cycles incorporate incoming bench checks—hydrolysis testing, color observations, and odour panels—before a run even advances past catalyst charging. Frequent operator rounds check that temperature rise and mixing stay inside proven limits. This hands-on discipline drives the uniformity of output that repeat customers notice once the seal breaks on their new bottle.
Many users request specific packaging: amber glass, lined drums, nitrogen sparging. We supply these needs directly, not through a catalogue but through ongoing dialogue. One customer needed a microbial count under tighter scrutiny; our technical crew handled manual cleaning with lab-grade alcohol and air-dried the bottles for sixty hours before filling. This attention to detail doesn’t come from a spec sheet; it comes from knowing the consequences of a failed run in our customer’s own work. Once, a shortage of raw benzilic acid led us to reroute production to a secondary synthesis method—giving us new data on reaction yields and side-product management. These episodes helped us implement triple distillation as our new standard, regardless of global supply chain hiccups.
We’ve tested every method suggested for improving shelf-life. Once, a customer needed guaranteed stability after storage in humid coastal conditions. We responded by trialing added overpressure sealing in our packing line. Even modest adjustments—in parafilm usage, for example—show up as longer retention of the ester’s clear appearance and scent. We track and share this information directly with users, not as “best practices” language but as practical advice: what to store, when to open, how to sample, and where to report issues if they arise.
What emerges isn’t just a chemical but a working relationship with the communities and companies who depend on what we make. CXOs, plant managers, and bench chemists have called in to check product details for both big and small jobs—sometimes for confirmation on a bottle’s age, other times for deep dives into physical parameters. These questions give us feedback that cycles back into the plant. As a direct producer, each interaction deepens our understanding of how Ethyl Benzilate fits into the larger web of scientific and manufacturing activity.
Manufacturing chemicals brings responsibilities that go far beyond paperwork. Each batch of Ethyl Benzilate comes with its own documentation, but behind those numbers live years of plant know-how and onsite safety. Over the past decade, regulatory expectations have expanded. Documentation for reach, transportation, and toxicology must match real-world practices—storage, containment, and labeling. In response, we have invested in closed-loop handling, solvent waste minimization, and real-time air monitoring around the plant floor. Regular training for our crews means that nobody here views safety drills as rote; they recognize the risks and the disciplines that go into producing a specialty ester like ours.
Environmental management never left our agenda. Effluent from production reactors passes through two-step neutralization and carbon filtration before it meets our regional water targets. We track the input and output of each ingredient—not because of regulatory pressure, but because our own chemists want assurance that standards rise, not fall. This attitude sprouted from small-plant philosophies: daily logs, open access to incident reports, and clear consequences whenever standards slip.
Some industry players skirt around proper waste stream tracking or limit internal traceability on small-lot chemicals. In our facility, every lot is tagged and can be traced back to a day, a shift, and a line operator. If questions about impurities, residuals, or off-label applications arise, we run lab analysis in-house and issue candid feedback. Shipping teams confirm hazmat requirements before each transport to minimize incidents. These choices aren’t a slogan; they’re part of daily practice. The teams here expect every new employee to blend safety knowledge with practical shipment experience—labeling, containment, and destination legalities included.
Competence looks like outcomes. Through years of production, we’ve learned what signals indicate good Ethyl Benzilate and which changes flag a problem. Inconsistent batches, from improper purification or unplanned moisture uptake, show up immediately in customer-side results: lower assay yields, increased chromatography baseline drift, and clogged lines. Tracking feedback, we learned that products from traders—who might move materials from plant to plant—meant that end-users sometimes ran blind to source. In contrast, we back each kit, bottle, and truckload with a single point of production and a record sheet that can be checked with a quick call.
Worries about lot drift or hidden formula changes keep many customers up at night. Spot checks and third-party sample submissions matter only if the supplier understands the reason behind the checks. As manufacturers, these questions become our improvement queue. Recently, market pricing pushed several users to try generic alternatives. We matched performance tests over six months and watched as their research teams came back to our product for long-term runs. It’s one thing to meet specs on paper; quite another to sustain that level through dozens of cycles, shipping delays, and storage challenges.
Ethyl Benzilate is not immune to market fluctuations. Prices can rise on global benzene, ethanol, or energy costs. We try to buffer customers by hedging our supplies and locking in long-term sourcing deals. In times of tight margins, those supply chain disciplines keep our product flowing, rather than leaving buyers with unwanted substitutions that can upend a year of method development. We find that predictability is as valuable to our users as meeting analytical specs. This only comes by sitting at the manufacturing desk, facing raw material shortages and logistics headaches firsthand.
Over time, direct communication helps keep technical snags from ballooning. Inevitably, a batch may not meet a user’s target, or new regulatory language requires a different documentation set. Our technical support team handles these cases by reviewing plant-level logs and recreating run scenarios. Sometimes, an extra double distillation pulls a suspect batch into spec. Other times, feedback from that episode gets folded back into our standard work instructions. Solutions aren’t generic—they draw on the manufacturing perspective that comes from sweating the day-to-day details over thousands of kilograms of finished product.
As regulatory requirements grow stricter, many buyers face headaches with import clearances or forensic audits of origin. As manufacturers, we continually upgrade our tracking systems to provide deeper product histories. By certifying every bottle back to its precursor batch, we can provide the paper trail that inspectors or customers demand. Our own teams routinely handle consignment returns, bottle recalls, and solvent lot checks. Improvements in tracking and reply times only result from deep familiarity with the regulatory landscape and determination at the plant level.
For long-term buyers facing process bottlenecks or changing application requirements, we offer trial shipments or modified pack sizes. Specialty packing, smaller aliquots, and flexible labeling all came from user feedback. One customer in Asia needed a reduced-volume shipment to match a revised research budget; we set up a drop plan within days and received direct feedback that our smaller lots allowed the project to proceed without disruption. This experience taught us that even incremental adjustments—from bottle neck designs to inclusion of traceability QR codes—have real-world impact.
Shipping, a constant challenge in chemical logistics, often creates last-mile delays. We contract with drivers and shipping companies who understand chemical needs—securement methods, spill response, and destination-specific compliance. By keeping this process inside our oversight, we ensure that Ethyl Benzilate arrives in the same state as it left our facility. Repackagers sometimes cut costs here, but in our experience that shortcoming marks the start of cascading problems for downline users.
Taking responsibility for every liter of Ethyl Benzilate means our answers grow from practice, not theory. Those who ask about color, stability, or impurity trace know that an authentic story backs each reply. We run technical troubleshooting faster than distant brokers or stock-movers can. Adjustments to synthesis scale, catalyst system, or workup procedure reflect in better product and safer outcomes—not just in our own plant, but in the hundreds of facilities that depend on consistent supply.
From handling raw materials to bottling, every member of our team engages in training cycles and review sessions that have grown in sophistication alongside technology upgrades. Operators with decades of experience work alongside new hires to pass on the utility of hands-on checks. These procedures don’t appear in Safety Data Sheets or catalog blurbs. Rather, they define what sets our process apart from less involved sources.
We recognize that every kilogram sold influences the outcome of research, production, and quality assurance in critical industries. Trust speaks for itself in the continuing cycle of returning buyers and open technical exchanges. As global demands shift, and as research frontiers cross over into new disease treatments and sustainable technologies, our commitment grows in parallel. Only the manufacturer’s bench offers this lens—grounded in daily reality, shaped by continuous learning, and proven by results.
Ethyl Benzilate continues changing through scientific discovery. Our plant teams and labs pay attention to emerging research, changing environmental rules, and evolving practical uses. We invest in analytical upgrades—spectroscopy, chromatography, and real-time digital logs—to anticipate and support this evolution. R&D groups from universities and industry call us each season with fresh requests: higher purity, new container types, enhanced trace documentation. Each challenge drives us to test, refine, and strengthen the way we work.
Every day, our teams see fresh evidence that direct manufacturing brings value unmatched by distribution or resale. Chemists in academic and industrial spaces need suppliers who speak their language and adapt with their timelines. By retaining core control over every process step—from raw material screening to last-mile delivery—we produce not just Ethyl Benzilate but peace of mind for those who depend on it.
Every new batch builds on all the lessons learned from previous runs. Whether research opens up novel pathways for the compound, or new users reach out for guidance, our production line answers these calls with experience and commitment rather than marketing language. This is how we view Ethyl Benzilate—not just as a product, but as an evolving collaboration between chemical manufacturing and scientific progress.