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HS Code |
996645 |
| Productname | 2-Fluorobenzyl Isothiocyanate |
| Casnumber | 403-28-7 |
| Molecularformula | C8H6FNS |
| Molecularweight | 167.20 |
| Appearance | Colorless to pale yellow liquid |
| Boilingpoint | 104-106°C at 18 mmHg |
| Density | 1.201 g/mL at 25°C |
| Purity | Typically ≥97% |
| Refractiveindex | n20/D 1.595 |
| Smiles | FC1=CC=CC=C1CN=C=S |
As an accredited 2-Fluorobenzyl Isothiocyanate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The 25g bottle of 2-Fluorobenzyl Isothiocyanate arrives in an amber glass container with a secure, tamper-evident cap. |
| Shipping | 2-Fluorobenzyl Isothiocyanate should be shipped in sturdy, leak-proof containers, clearly labeled with hazard warnings. It must be protected from direct sunlight, moisture, and extreme temperatures. Transport must comply with local and international regulations for hazardous chemicals, with proper documentation and emergency procedures in place to ensure safe and compliant delivery. |
| Storage | 2-Fluorobenzyl Isothiocyanate should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers and acids. Keep it away from direct sunlight, moisture, and heat sources. Preferably, store under inert atmosphere (nitrogen or argon) in a dedicated flammable chemicals cabinet. Always wear suitable protective equipment when handling. |
Applications of 2-Fluorobenzyl Isothiocyanate in Industrial ManufacturingAs a direct producer of 2-Fluorobenzyl Isothiocyanate, we supply this specialty intermediate for critical applications in pharmaceutical synthesis, chemical research, crop protection, and specialty materials. Below we present specific downstream use scenarios, compliance frameworks, integration points, and finished product pathways from our real customers. 1. Active Pharmaceutical Ingredient (API) Intermediate SynthesisThis compound plays a vital role as a key building block for manufacturing select anticancer and anti-inflammatory pharmaceuticals. Chemists incorporate it in the early stages of multi-step synthesis routes, particularly for fluorinated heterocyclic structures required in modern APIs. The isothiocyanate group enables site-specific functionalization, improving target molecule pharmacokinetics. Synthesis requires close process control of reaction parameters and robust traceability to meet stringent GMP regulations set by regulatory agencies. Industry compliance standards
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2. Agrochemical Research & DevelopmentChemical companies rely on this specialty isothiocyanate for discovery and optimization of new pesticide and herbicide candidates. Product chemists employ it as a reactive handle to introduce fluorinated side-chains into bioactive test compounds. Laboratory-scale synthesis focuses on high-throughput analog generation, followed by pilot batches for biological efficacy profiling. The compound’s stability and selectivity are critical for the structural diversity required in crop protection product development. Industry compliance standards
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3. Chemical Biology Probe ManufactureResearch-grade manufacturers incorporate this isothiocyanate as a key labeling reagent for producing 2-fluorobenzyl-conjugated molecular probes. It enables covalent modification of thiol-containing proteins, peptides, or small molecules for structure–activity relationship studies. Strict control over residual impurities and absence of interfering byproducts is necessary due to the sensitivity of biological systems. Product is typically used by in-house QC-validated R&D laboratories and contract research organizations (CROs). Industry compliance standards
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4. Specialty Polymer and Cross-linker SynthesisPolymer manufacturers use this compound for the production of cross-linkers and bespoke functional polymers. The isothiocyanate moiety reacts selectively with polyamines and multifunctional thiols to introduce fluorinated pendant groups or crosslinked networks. These features translate to improved chemical resistance, thermal stability, and controlled hydrophobicity in specialty coatings and adhesives. Strict quality criteria on monomer purity and batch consistency are key for downstream polymer process control and performance validation. Industry compliance standards
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5. Fine Chemical and Custom Synthesis ServicesContract manufacturers employ this compound as a tailored intermediate for high-value fine chemical synthesis. It serves as a functionalization agent in the production of custom molecules for pharmaceutical, diagnostic, or advanced materials projects. Projects demand responsive adjustment of process parameters, strict impurity tracking, and lot traceability to support end-customer QC and regulatory filings. Industry compliance standards
Typical usage ratio
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Every batch of 2-Fluorobenzyl Isothiocyanate that leaves our facility reflects countless hours at the bench. This molecule, with a model quality of 98% minimum by GC and an appearance that stays consistent with a pale-yellow to colorless liquid, comes straight from our own reactors and purification lines. Our team approaches the handling and synthesis of this compound with an understanding grounded in years of scale-up and process improvement. Right from weighing the starting fluorobenzyl precursor, we know this isothiocyanate asks for precision. Unlike broad commodity chemicals, it demands clean handling and immediate transfer to storage under nitrogen to preserve its structure.
In manufacturing 2-Fluorobenzyl Isothiocyanate, we stay strict with certain benchmarks because real-world results depend on them. Our in-house GC set-up confirms the purity batch-wise, with 98% acting as our floor, not the ceiling. Water content often interests our technical partners—carrying out Karl Fischer titration regularly, we keep moisture far below hazardous levels, knowing this minimizes side reactions for formulators downstream. Specific gravity and boiling point can vary slightly with lot and environment, so we record and report these figures from our own calibrated apparatus for every dispatch.
Some chemicals drift during storage or transport, but our closed-loop filling methods and immediate container sealing slow those unwanted changes. We work with glass or HDPE bottles, depending on shipment distance and order size, to keep the content as stable as possible.
As a manufacturer, we see where our 2-Fluorobenzyl Isothiocyanate fits into real R&D and production. Medicinal chemistry often relies on isothiocyanates for building blocks, and the fluorinated benzyl backbone brings added value to researchers screening novel pharmaceuticals, especially where metabolic stability or bioavailability shows improvement from a fluorine atom’s influence.
Some of our regular customers use this compound for agrochemical lead discovery, drawn by the peculiar electronic effects the fluorine imparts, sometimes shifting bioactivity profiles sharply compared to the non-fluorinated counterparts. Laboratory syntheses for specialty polymers and dyes have also pulled our product into pilot production runs, especially when institutions target systems where usual isothiocyanates fall short due to solubility or electronic mismatch. When sharing insight with customers, we highlight where this difference can produce cleaner intermediates or sharper results in analytical screens.
Manufacturers often forget to talk about what matters on the bench—odor, volatility, and ease of measurement. Our 2-Fluorobenzyl Isothiocyanate does carry a distinct aroma that signals purity; we stress the importance of local ventilation and suitable gloves. The liquid flows well at room temperature, which helps during scale-up for batch processes. Unlike some stickier or more resinous isothiocyanates, clean transfer from container to reaction flask saves time, reduces loss, and keeps dosing more exact—translating into real cost savings over hundreds of syntheses.
By delivering in practical unit sizes—20 g, 100 g, even multi-kilogram options for larger pilot work—we let users minimize scrap and review shelf-life from open bottles. Some labs prefer amber bottles to guard against light, an approach we support for repeat orders. Storage at 2-8°C works best, and we recommend returning to ambient before opening large volumes to avoid condensation that can spoil a portion of the material.
Chemistry teams often ask us how 2-Fluorobenzyl Isothiocyanate stacks up against older, more widely available isothiocyanates. Standard benzyl isothiocyanate, for example, doesn’t provide the same push-pull electronic effects as a para- or ortho-fluorinated version. Researchers notice this directly in reaction rates or in the selectivity of downstream coupling reactions. Where others see only a single atom change, we’ve watched the entire product profile shift in customer applications—yields can rise, less byproduct develops, or purification loads decrease.
Taking thiophosgene-based isothiocyanates as a point of comparison, our 2-Fluorobenzyl derivative exhibits a sweet spot in volatility, making it more user-friendly on open benches or with automated reagent dispensers. Substituted aryl isothiocyanates bearing bulkier or more electron-withdrawing groups can sometimes over-react or give less predictable finishes in target molecules. This fluoro-substituent helps bring both moderation and a unique fingerprint in NMR or mass spec that research chemists enjoy tracking.
Discussions with synthetic teams steer our process improvements. Over the years, we’ve been told that subtle color changes can indicate minor impurity build-up; we took that feedback into our quality process and now hold each lot to tighter color benchmarks where clarity equals predictability. Some research departments let us know that shelf life matters more than documentation once they face a clogged pipette or unpredictable reaction. That’s prompted us to provide smaller aliquots and lot-level certificates generated right before dispatch.
Cost efficiency sits at the forefront today, but not at the expense of reliability. Our team has resisted switching to lower-grade solvents or shortcuts in distillation that could shave pennies. Each transition between filling lines and every glovebox session goes under double checks, because nobody wants to troubleshoot a failed assay caused by micro-level contamination.
Lab-scale synthesis often doesn’t prepare one for the bumps that appear at 5, 10, or 20 kg scales. We’ve redesigned our reactors to capture and recycle more of the starting fluorobenzyl derivatives, minimizing waste streams. Quality checks go up, not down, with volume. Our operators receive training on each step, and batch records include every observed deviation or operator remark. This way, each drum of 2-Fluorobenzyl Isothiocyanate stays accountable—if there’s a variance, we can track it to the source within minutes.
Some customers move quickly to trials at several kilos, especially those working in process development for actives. We scale up our cleaning steps for bulk supply, controlling cross-contamination from other aromatic isothiocyanates rigorously. Fittings, tubing, and gaskets that contact the bulk product receive swaps between runs. Our shift technicians often collaborate with process chemists from client firms, sharing control samples and even providing small-run customizations on solvent systems or storage containers as new needs develop.
Direct experience has taught us about practical hazards, far more than any document could. Spills of 2-Fluorobenzyl Isothiocyanate demand swift attention—ventilation control, neutralizing agents, and protective gear stay ready on every line. Once, a pressure valve malfunctioned mid-run, prompting a review and upgrade across the entire plant. We share lessons learned internally so that everyone, from trainee to senior operator, recognizes symptoms of exposure and follows response drills without hesitation.
Because fluorinated aromatics often behave differently from non-fluorinated compounds, we keep emergency guidelines clear and revisit them after every incident, no matter how trivial. Real stakeholders in product safety include formulation houses, freight partners, and end users, so we don’t treat technical inquiries or new compatibility tests as a nuisance. Instead, they sharpen our game and keep the dialogue open between those who make and those who use.
From day one, our philosophy has favored full traceability. Requests for chain-of-custody documentation pick up whenever supply concerns rise in any industry. We photograph and barcode every drum, track storage timing, provide open access logs of re-test intervals, and never blend lots unless clients approve.
As anti-counterfeiting measures become prominent across Europe and East Asia, our batch coding and labeling answer new regulatory needs. We welcome site visits from clients, especially those who want to establish confidence before transferring a process from pilot to plant. Our records remain open for audit; they reflect the reality of day-to-day manufacture, and they drive our accountability when answering questions about each bottle of 2-Fluorobenzyl Isothiocyanate leaving our facility.
Regulatory scrutiny of isothiocyanates never stops increasing. Our documentation, from stability testing to hazard communication, flows out of real process sheets and final QC signoffs. We do not delay upgrades on labeling or package materials once partners or authorities share feedback that improves workplace or consignment safety.
There’s no shortcut around compliance, especially with fluorinated organics. Rejection of a drum due to inadequate breathing vents or mislabeled risk phrases not only halts a delivery but eats up precious hours in multi-team projects. This motivates us to get labels accurate and safety data bulletproof, so supply to research parks, manufacturing plants, or contract organizations remains smooth and predictable.
Manufacturing 2-Fluorobenzyl Isothiocyanate creates its own environmental footprint at every step. We have shifted waste handling to favor distillation and solvent recycling, capturing yield from off-spec batches wherever it makes chemical and economic sense. Residual isothiocyanate gases get scrubbed before venting. Every drum leaving our site comes with data about generated waste streams, recycled solvents, and actions taken to reduce process emissions in line with evolving rules.
Process water from our cleaning cycles goes through carbon filtration, and treatability studies run quarterly to ensure emerging regulations receive an informed response. Industrial users ask tough questions about disposal, and we provide honest data about what happens inside our plant and its downstream partners.
Our relationship with R&D departments lets us stay agile as new application spaces emerge. Some groups investigate 2-Fluorobenzyl Isothiocyanate for tagged biochemical probes, and recent collaborations with university spin-outs have yielded bioorthogonal building blocks for cutting-edge imaging. We share the same enthusiasm as those teams; sample support and priority testing time on new lots back up those development sprints.
Each novel application challenges our process engineers to rethink parameters, as chemical reactivity tests and impurity profiling shift with every new field of use. Our collection of reference spectra and analytical history grows with every partnership. This knowledge pool lets us anticipate what data can fast-track a method or clarify batch-to-batch differences, even before the next set of requests lands in our inbox.
Customers no longer settle for two-week waits or inflexible minimums. Our finished goods inventory keeps common volumes ready at point-of-need. Packaging adapts to freight constraints, whether for air, road, or sea. Large cans receive extra sealing; small bottles go out with appropriate cushioning, documentation, and hazard tags. We work alongside reliable specialty shippers—knowing exactly what happens at depots and ports helps us avoid unnecessary delays and keeps urgent projects running.
Payment schedules and tax structures differ by region, and our commercial team helps buyers navigate country-specific documentation or pre-import review. Tracking numbers and updates flow automatically to keep both our shop floor and client researchers aware of every shipment’s status.
Every improvement or change undergoes internal trial before rolling out company-wide. We let operators test new filling techniques and collect feedback, documenting every point that impacts yield or user experience. This practice rewards the extra effort by catching potential problems before products ever go outbound. Analytical chemists with years at the bench oversee unusual test results and keep training fresh for the entire team.
Quality does not stop with formal checks. Operators take pride in finding the unexpected problem—a mislabeled carton, a scratch on bottle glass, a unique odor appearing in the scale-up bay. Those small interventions are the mark of a manufacturer invested in the actual well-being of our downstream users, not just meeting written requirements.
Building direct partnerships with research and production teams has shown us the merit in constant communication. Regular technical exchanges, whether for routine orders or specialized project batches, encourage feedback that leads to smarter processes on both sides. Long-term users bring invaluable insight on dicey application challenges, letting our chemists and engineers respond proactively rather than reactively.
Some users trial several analogues side by side and come back with comparative data, which shapes future production. Broadening our knowledge base with this real-world, bench-tested input has kept our process grounded and responsive. These relationships encourage new customers to ask the questions they really care about—be it alternative packing or deeper impurity profiling—without feeling locked behind bureaucracy or a sales filter.
Making 2-Fluorobenzyl Isothiocyanate better relies on having our eyes open to supply disruptions, regulatory trends, and the creative applications users dream up. Our staff attends technical workshops, reads every spec feedback, and reacts to changes in chemical markets or freight networks. Continuous improvement rests not only on equipment upgrades but on the collective know-how that comes from the daily grind in the plant and from direct collaboration with end users.
Those who have worked in scale-up or method development recognize that even small consistency boosts or impurity reductions make the difference between a test that passes and one that needs rework. We measure our future on the reliability of our word, the predictability of each shipment, and real performance in the hands of the scientists and engineers down the line. Our commitment to quality, safety, and support stays rooted in the lessons each batch teaches, reinforced by every dialogue we hold with our client partners.
The value of 2-Fluorobenzyl Isothiocyanate runs deeper than its chemical properties; it reflects our experience, dedication, and willingness to listen to those who count on authentic, consistent quality.