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HS Code |
697225 |
| Product Name | 3-Fluorobenzal Chloride |
| Cas Number | 328-52-9 |
| Molecular Formula | C7H5Cl2F |
| Molecular Weight | 179.02 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 211-213 °C |
| Melting Point | -6 °C |
| Density | 1.37 g/cm³ |
| Refractive Index | 1.563 |
| Flash Point | 90 °C |
| Solubility | Insoluble in water |
| Purity | Typically ≥98% |
| Synonyms | α,α-Dichloro-3-fluorotoluene |
| Storage Conditions | Store in a cool, dry, and well-ventilated place |
As an accredited 3-Fluorobenzal Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle containing 100 grams, tightly sealed with a screw cap, labeled "3-Fluorobenzal Chloride – Handle with care." |
| Shipping | 3-Fluorobenzal Chloride is shipped in tightly sealed, corrosion-resistant containers to prevent leakage and protect from moisture and light. The chemical is transported as a hazardous material, following all relevant regulatory guidelines, including proper labeling and documentation. Adequate ventilation and temperature control are ensured during shipping to maintain safety and product integrity. |
| Storage | 3-Fluorobenzal chloride should be stored in a tightly closed container, in a cool, dry, well-ventilated area away from sources of ignition and incompatible substances such as strong oxidizing agents, bases, and moisture. Protect from direct sunlight and store at room temperature. Ensure the storage area is equipped with spill containment and appropriate safety equipment to minimize exposure and environmental release. |
Applications of 3-Fluorobenzal Chloride in Industrial ManufacturingAs a direct producer of 3-Fluorobenzal Chloride, we have documented its use in specific advanced chemical supply chains. The sections below highlight detailed application areas based on customer formulation requirements, process flows, and international compliance protocols. 1. Pharmaceutical Intermediates for Active Ingredient Synthesis3-Fluorobenzal Chloride functions as a core intermediate during multi-step synthesis of certain fluorinated pharmaceutical agents. It enables regioselective aromatic substitution and controlled introduction of fluorine within the precursor framework. Our facility ensures strict batch traceability and meets rigorous solvent and by-product removal protocols expected in EU and US-regulated supply. Downstream partners request extensive documentation to support DMF filings and API registration, as any change in impurity profile directly impacts clinical approval prospects. Industry compliance standards
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2. Agrochemical Synthesis – Herbicide Precursor ProductionLeading agrochemical innovators select this raw material for formulating advanced herbicide scaffolds, especially in developing next-generation substituted phenyl herbicides. The defined reactivity of the fluoro-substituted benzyl chloride ensures high selectivity and efficient ligation onto target groups. Our in-line QC consistently delivers specification compliance across multi-tonne lots. We provide granular product impurity data for both GLP and field-validated agrochemical projects to downstream process engineers. Industry compliance standards
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3. Specialty Polymer and Resin Monomer Development3-Fluorobenzal Chloride serves as a strategic monomer precursor during the manufacture of advanced performance polymers and engineered resins. Customers incorporate it to impart distinct fluorinated aromatic segments, boosting chemical resistance, thermal stability, and surface property control. Precise control over addition and reaction sequence is essential, as any deviation influences downstream cross-linking and polymer chain distribution. Technical documentation provided with each drum includes batch-specific impurity breakdowns, supporting high-end quality assurance needs. Industry compliance standards
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4. Advanced Organic Electronic MaterialsMaterial scientists leverage the reactivity of 3-Fluorobenzal Chloride in synthesizing building blocks for OLED, OFET, and solar cell materials. Its controlled integration into precursor frameworks enhances charge carrier mobility and environmental stability. We supply electronic grade quality—strictly filtered and metal-ion-tested—meeting functional material research and scale-up pilot demands. Semiconductor material makers request application certificates correlating impurity specifications with electronic property validation, ensuring downstream process fit. Industry compliance standards
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Turning raw materials into something more valuable demands old-fashioned diligence and modern process control. Every batch of 3-Fluorobenzal Chloride starts in our reactor hall, where we measure, mix, and monitor by hand and machine alike. We insist on this approach because experience shows precision makes the difference between successful downstream chemistry and wasted effort. As manufacturers, we’re reminded every day that batch reproducibility keeps our customers moving, so there’s no room for shortcuts.
The heart of our 3-Fluorobenzal Chloride work revolves around the fluorination of benzal chloride. This reaction behaves differently depending on pressure, temperature, and purity of feedstock. Our engineers work directly on the floor, overseeing every stage to minimize variable yield and keep byproducts as low as possible. This close attention stretches back decades and grows out of direct conversations with the chemists and engineers who test, scale, and validate our product in their own plants.
We focus production on the technical grade material optimized for advanced organic synthesis. Regular tests confirm purity levels above 97% GC, and our process produces products that avoid the haze and tint found in lower-grade imports. Colorless to pale yellow in appearance, our 3-Fluorobenzal Chloride offers guaranteed lot retention samples and transparent traceability. Boiling point sits comfortably above room temperature, which allows for safe handling, storage, and transportation during the hottest months without unexpected loss. Specific gravity falls in a tight range based on quality controls enforced on every lot.
Colleagues who work with this compound highlight its fluid stability compared to other benzal chlorides. We’ve seen how shipments maintain integrity even after journeys halfway around the world. This results from simple discipline: monitoring moisture content, avoiding air ingress, and using robust anti-leak seals. These small steps prevent product degradation, yield unwanted hydrolysis, or color shifts that cause customer complaints down the line.
We measure our success by how reliably end-users can build on our work. Procured in kilogram to ton quantities, our 3-Fluorobenzal Chloride serves as a building block for fluorinated intermediates. Demand in pharmaceutical and agrochemical spaces is persistent, since even a simple change — adding a fluorine atom — can expand a molecule’s performance or alter its metabolic stability.
Unlike non-fluorinated benzal chlorides, this compound integrates easily into multi-step syntheses that require robust selectivity. Customers often mention its role in forming specialty ligands or targeting moieties. Others leverage its reactivity to introduce fluorine at a late stage, letting them modify complex cores without a complete route redesign. The difference is more than theoretical: R&D teams tell us, time and again, that products like ours save weeks of method optimization, simply by behaving predictably.
We don’t view 3-Fluorobenzal Chloride merely as a commodity. Consistency matters. Color, odor stability, and impurity profile weigh as much as purity percentage. We keep records of every lot’s starting materials and process deviations, using that historical data to tighten tolerances every year. By comparing chromatographic profiles lot after lot, we ensure batch-to-batch similarity. Our applications team runs parallel syntheses on retained samples when customers call with feedback, bringing real-world problems straight back into the plant.
Some customers new to 3-Fluorobenzal Chloride ask us why not use the unsubstituted version, or why not simply introduce a different halide. The reason traces back to selectivity and reactivity. A fluorine substitution shifts both electronic and steric properties. This change can improve yields in certain Friedel–Crafts or nucleophilic aromatic substitutions, or block undesirable side-reactions that plague less customized routes. Phosgenation and functional group transformations often benefit as well, with more reliable isolation of the intended product.
We regularly compare run results with similar products. 4-fluorobenzal chloride or other positional isomers offer different reactivity profiles, but the meta-position in 3-Fluorobenzal Chloride balances activity and stability. In our direct testing, this compound holds up exceptionally well through extended reaction conditions, limiting tar formation and colored impurities. Our internal R&D tries both laboratory and pilot scale runs, measuring shelf-life as well as actual yield, not just theoretical compatibility. Our team adjusts purification steps to remove trace dichlorides or excess fluorinated byproducts which are common in sloppier syntheses.
We store finished product in temperature-controlled drums. Internal audits check container integrity and monitor for polymerization or over-chlorination — an issue more common with badly controlled processes elsewhere. We realize a single leaking drum or degraded sample causes headaches for users, so we maintain our filling area with food-grade cleanliness even though regulations are looser for industrial chemicals.
Before shipping, we run batch samples through both bench and pilot-scale simulations to confirm suitability for chlorination, acylation, nucleophilic substitution, and condensation reactions. Chemists who use our product report tangible benefits — sharper reaction endpoints, lower color formation in final actives, fewer purification stages downstream.
Some buyers use 3-Fluorobenzal Chloride in manufacturing active pharmaceutical ingredients (API), where both quality and consistency directly impact regulatory compliance. Missed targets here cost six-figure sums in repeat analysis or FDA rework cycles. Others use it to tweak properties in crop protection actives, where shelf life against heat and humidity in tropical climates carries real commercial value. Downstream products benefit when inputs remain the same year after year, so we commit to holding our routes steady, validating every recipe change through a wet chemistry lab rather than relying only on simulation or literature data.
On the storage front, we take lessons from real-world incidents. Several years ago, a batch was stored by a client in an open drum, drawing moisture from the air and hydrolyzing into a sticky mess. This drove us to provide more robust guidance — always keep containers tightly sealed, use inert gas purging on bulk stocks, and avoid prolonged UV exposure. Investing in such advice reduces both returns and waste on both sides.
We face regular audits on emissions and waste handling. Chlorinated and fluorinated intermediates have well-known regulatory limits, so we invested in multi-stage scrubbers, leak detection, and upgrades to loading points. Waste solvent from washing reactors is collected and either recycled or neutralized, not simply dumped or diluted. Our operators log every process deviation or spill, which feeds back into annual safety training.
New operators shadow experienced staff for months before running any process solo. They learn to catch the early signs of runaway chlorination or incomplete reaction — lessons passed down from a generation before, not just printed in a manual. By making safety mistakes part of our ritual storytelling, we maintain a culture that respects both the product and the team.
We keep a close eye on emerging regulations in North American and European markets, where thresholds for trace organic contaminants and residual chlorides tighten each year. Our approach treats compliance not as a one-off hurdle, but as a quality metric in its own right. Every process upgrade gets evaluated for both greener alternatives and cost, balancing industry trends with financial sustainability.
With halogenated intermediates, buyers want clarity around both function and risk. Over the years, we have dealt with customer concerns about shelf stability, batch-to-batch differences, and compatibility with proprietary reaction schemes. Some users have reported material freezing or phase-separating under cold storage; we recommended standardizing storage temperatures above the cloud point and avoiding temperature cycling in warehouse management.
In processing, users sometimes face challenges with side-reactions in downstream coupling steps. Based on our own runs, issues often tie back to minute traces of unreacted starting material or the presence of specific byproducts. Our chromatography and NMR study data help pinpoint and minimize these impurities before the product ever leaves our plant. We encourage customers to send reaction snapshots back for troubleshooting, drawing on our experience to help optimize conditions — not just for our benefit, but because a reliable supply chain builds trust in the long term.
Supply chain disruptions have become more common. From raw material shortages to shipping delays, we build safety stock and maintain long-standing relationships with logistics partners. This allows us to keep up with urgent orders without cutting corners on quality.
We have found that clear communication makes all the difference. Our technical team fields questions about customization, purity standards, or suitability for highly specialized syntheses. Those calls shape how we approach new process improvements and what sort of data ends up on our COAs. Sometimes buyers need lower moisture tolerances, sometimes a different packaging style — rarely does one approach suit every application.
Unlike resellers, we know exactly how each lot was made, which reactor it came from, and which technician managed it. We regularly send product managers to customer sites to observe real-world usage, lending both advice and an extra set of eyes in troubleshooting. Feedback isn’t just welcomed — it’s folded back into routine improvements. Over the last decade, this cycle closed the gap between plant production and end-use chemistry. Today, most of our successful modifications were sparked by conversations that started with a simple question or operator’s observation.
The chemistry of 3-Fluorobenzal Chloride opens new avenues as markets develop better catalysts, greener solvents, and more selective reagents. We collaborate with academic and industrial R&D groups, exploring ways to minimize environmental impact while improving process economics. This sometimes means running pilot studies with new fluorinating agents, or introducing supplementary purification to tighten impurity levels.
Customers in pharmaceuticals and crop sciences constantly push for cleaner, safer, more efficient intermediates. We keep pace by revalidating our synthesis steps, adapting new quality controls, and investing in digital tracking. This multiplies the knowledge base across batches, ensuring every new run builds on what came before. When problems arise — contamination, unforeseen reactivity, unexpected color shift — our lab troubleshoots in hours, not weeks, because the complete manufacturing story is only a call or a click away.
We recognize the impacts downstream, whether in reduced filtrations, easier handling, or more reliable kinetics. 3-Fluorobenzal Chloride may be only one step in a longer synthesis, yet every link needs the strength that comes from careful, repeated practice. This is the sort of product where experience means fewer surprises and more predictable results, shipment after shipment.
The push for ever-higher performance in fine chemicals puts new pressures on producers of chemical intermediates. Our team doesn’t operate on autopilot or stick to outdated procedures just because “it’s always been that way.” Every operator and chemist here sees first-hand what can go wrong from neglecting small details or skipping a process check.
We have learned by trial, error, and close partnership with chemists that no single process fits every application. Instead, the best results come from direct engagement: listening to user challenges, backing up advice with robust data, and never letting concerns drop off the radar. This approach builds both product quality and the kind of trust that outlasts market trends or price fluctuations.
After years in this field, we value questions more than praise. Each new inquiry about 3-Fluorobenzal Chloride — from reaction protocols to handling hazards to troubleshooting purification steps — lets us improve both our product and our service. As industries move toward more complex, more demanding molecules, we plan to keep refining our approach, balancing traditional craftsmanship with the best available analytical tools and real-world evidence. That commitment defines what 3-Fluorobenzal Chloride means to us: more than a reagent, it’s a reflection of the transparent, continuous improvement our customers expect and deserve.