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HS Code |
527089 |
| Chemical Name | 3-(Heptafluoro-1-Propyl)-5-Phenylpyrazole |
| Molecular Formula | C12H7F7N2 |
| Cas Number | 41430-45-5 |
| Appearance | White to off-white solid |
| Melting Point | 60-64°C |
| Solubility | Soluble in organic solvents such as dichloromethane |
| Purity | Typically >98% |
| Synonyms | Heptafluoropropyl phenylpyrazole |
| Storage Conditions | Store in a cool, dry place |
| Inchi Key | YNZCWWAJXUIWNS-UHFFFAOYSA-N |
| Smiles | C1=CC=C(C=C1)C2=CC(=NN2)C(C(C(F)(F)F)(F)F)(F)F |
As an accredited 3-(Heptafluoro-1-Propyl)-5-Phenylpyrazole factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle, 25 grams, tightly sealed with a PTFE-lined cap, labeled with chemical name, hazard icons, and lot number. |
| Shipping | **Shipping Description:** 3-(Heptafluoro-1-propyl)-5-phenylpyrazole should be shipped in tightly sealed containers, protected from light and moisture. Transport in compliance with applicable chemical regulations, using appropriate hazard labeling. Recommended shipping method is by ground or air freight with temperature control if required, and accompanied by relevant safety and handling documentation. |
| Storage | 3-(Heptafluoro-1-propyl)-5-phenylpyrazole should be stored in a tightly sealed container, away from moisture and direct sunlight, in a cool, dry, and well-ventilated area. Avoid exposure to incompatible substances such as strong oxidizers. Clearly label the storage container, and store it at room temperature unless specified otherwise by the manufacturer’s guidelines or material safety data sheet (MSDS). |
Applications of 3-(Heptafluoro-1-Propyl)-5-Phenylpyrazole in Industrial ManufacturingWe supply 3-(Heptafluoro-1-Propyl)-5-Phenylpyrazole directly for specialized industrial use, ensuring replicable integration for demanding chemical process manufacturers worldwide. The following application scenarios outline established industry pathways where this advanced compound consistently achieves its intended technical outcomes, paired with sector-specific compliance guidelines, proven incorporation techniques, and finished product grades. 1. Active Ingredient for Pyrazole-Based InsecticidesProducers of high-performance crop protection formulations use this compound as the structural core in next-generation pyrazole insecticides, targeting pests resistant to conventional chemistries. Integration occurs during the active ingredient synthesis phase, with further downstream formulating into final emulsifiable concentrate, wettable powder, or suspension concentrate dosage forms. Manufacturers optimize incorporation based on aromatic ring substitution impacts, regulatory residue limits, and the specific pest spectrum. Industry compliance standards
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2. Intermediate for Pharmaceutical Pyrazole DerivativesPharmaceutical and fine chemical manufacturers employ the material as a pyrazole ring-building block in multiple small-molecule drug synthesis pathways, especially for molecules requiring pronounced electron-withdrawing group effects. The compound enters as a core intermediate during multi-step organic syntheses, especially for potential anti-inflammatory, antiviral, or CNS-active investigational APIs. Purification and analytical controls tightly monitor batch quality and regulatory compliance at each stage. Industry compliance standards
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3. Building Block in the Synthesis of Specialty Fluorinated MaterialsChemical companies focused on tunable fluorinated materials leverage this compound’s heptafluoropropyl moiety as a core scaffold for the design of advanced specialty products. Synthetic chemists introduce it in the earliest monomer/oligomer construction stage, taking advantage of its strong C–F bonds to create end-use products with high chemical and thermal resistance, crucial for demanding material science sectors such as engineered coatings and advanced electronics encapsulants. Industry compliance standards
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4. Component for Analytical Standard PreparationAccredited laboratory reference material providers require reliable, high-purity batches of this compound to prepare analytical standards for method validation, residue testing, and calibration in environmental, agrochemical, and pharmaceutical analysis. The compound features during the gravimetric or volumetric preparation phases for reference solution development, with downstream packaging and certification as per accreditation body requirements, ensuring traceability and reproducibility in international inter-lab studies. Industry compliance standards
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Producing 3-(Heptafluoro-1-Propyl)-5-Phenylpyrazole, also known in our line as Model HFPP-083, highlights the evolution of modern organic synthesis. Our team has spent years developing and scaling the synthesis of this pyrazole derivative, answering the sharp demand for precision in both research and larger-scale programs. Each batch reflects strict quality discipline honed over decades handling pyrazole chemistry. The underlying synthetic route relies on our lab expertise managing perfluoroalkyl reagents, ensuring the final product contains pure heptafluoropropyl and phenyl substitutions with minimal by-products or isomeric impurities. It takes skill, experience, regular process refinement, and vigilance on each production run—especially when purity and consistency govern downstream results.
In real-world development, especially inside pharmaceutical and specialty crop research, this compound steps in where classical pyrazoles and less fluorinated derivatives fall short. Fluorinated organic molecules are known for their stability, unique polarity, and their influence on biological activity. By introducing the fully fluorinated heptafluoropropyl side chain, the molecule not only resists metabolic breakdown but also shows favorable properties in hydrophobic interactions with enzyme sites or receptors, as documented in the literature around similar scaffolds. Many teams in the industry have found that the presence of this chain influences binding affinity or changes physicochemical parameters—outcomes chemists appreciate when wrestling with solubility, selectivity, or in vivo behavior.
Over years of custom synthesis contracts, we watched demand for this structure grow, not through marketing push but from bench scientists who noticed how standard phenylpyrazoles plateaued in bioactivity or needed reformulation. The heptafluoropropyl group delivers a noticeable leap in both target affinity and stability, particularly in harsh chemical or biological environments. Sodium channel blocking, kinase inhibition, and crop protection research show measurable benefits using this derivative. While every project brings different goals, repeat customers often bring feedback, data sheets, chromatograms, and patents that quietly build the case for the molecule's distinct place in the pyrazole family.
Over many production runs, we honed the specifications for Model HFPP-083 to the values that most directly impact downstream chemistry. Assay values by HPLC consistently measure above 99% pure. Residual solvent levels stay well within international guidelines, as checked by regular GC-MS and NMR spot audits. We pay attention to trace impurities that could interfere with hydrogen bonding or disrupt crystallization in a medicinal chemistry context. Moisture control matters, both for shelf life and reproducibility, so batches ship sealed and desiccated. Overlooking these elements costs time, and customers that depend on high standards usually come back to the same few producers who hit these benchmarks reliably.
In the competitive world of pyrazole derivatives, subtle changes in substitution mean unpredictable shifts in performance and handling. Adding a perfluoroalkyl group—especially as large as heptafluoropropyl—significantly influences molecular behavior. Where methyl or trifluoromethyl derivatives lose ground (in terms of both oxidative stability and interaction with hydrophobic targets), the larger group in 3-(Heptafluoro-1-Propyl)-5-Phenylpyrazole opens a wider property window. In practical terms, researchers have found that this compound stands up to both acidic and basic processing steps that degrade simple pyrazoles. Shelf stability improves, with less risk of peroxide formation or slow decomposition under light or heat. These qualities bear out in analytical data and repeated recovery yields, not only theoretical models.
Some molecules promise a lot on paper but disappoint in scale-up or formulation; this product’s consistency and clean profile mean fewer headaches crossing early-stage screening through scale-up. In our own pilot batches, the compound’s high melting point and low volatility made recovery straightforward and reduced loss during transfer or purification. Reproducibility holds its value when every milligram matters—feedback from formulation labs often credits our strict controls for minimizing batch-to-batch drift.
One cannot ignore the broader trend in medicinal and crop chemistry of leveraging fluorine’s unique properties. The element's strong carbon-fluorine bond resists cleavage, which means greater resistance to metabolic or photo-induced breakdown. In pharmaceutical settings, this leads to extended half-life, altered pharmacokinetics, and often greater oral bioavailability, as journal after journal confirms. On the agricultural front, effectiveness over longer field intervals means less frequent application and better results in crop resilience, aligning with regulatory and environmental pressures to use less chemical for the same effect.
The distinct electronegativity and size of the heptafluoropropyl group, compared to simpler fluoro-alkyls, tunes molecular polarity and partitioning in biological systems. Time and again, researchers seeking novel enzyme modulators or systemically active crop agents request this particular structure for its record of reliable performance, whether in controlling bioactive levels or preventing premature degradation.
Sharpening the process for 3-(Heptafluoro-1-Propyl)-5-Phenylpyrazole called for years of small adjustments. Early on, we dealt with unexpected formation of polyfluorinated by-products during alkylation steps. Tweaking reagent ratios, temperature profiles, and reaction time slowly raised yields while trimming down side impurities. It also proved vital to select just the right solvents and workup process to prevent partial hydrolysis or loss of the heptafluoropropyl group. This is not an off-the-shelf synthesis; it draws on real-world troubleshooting and scale-up discipline grounded in experience.
By keeping every manufacturing step in-house, we control both the fine details of impurity management and the macro variables like supply resilience. Clients in Europe and North America regularly request traceability for their audit records—experience tells us to document each lot from raw material origin to finished product, with full analytic data made available to partners. This gives peace of mind on quality and compliance for applications under pressure from regulatory scrutiny.
Our customers use 3-(Heptafluoro-1-Propyl)-5-Phenylpyrazole in several cutting-edge applications. Medicinal chemists favor it for synthesizing new drug candidates that target resistant strains or elusive pathways, such as neuroreceptor modulators or next-generation kinase inhibitors. This structure lends itself well to fragment-based drug discovery and structure-activity optimization, supporting the leap from fragment screening to lead identification.
On the agricultural side, crop protection researchers test it as a scaffold for systemic agents that move predictably through plant tissues, resist breakdown by sunlight or microbes, and offer season-lasting control. Having that perfluoroalkyl chain makes a tangible difference in persistence and in vivo distribution. These applications push us to provide a reproducibly pure product that withstands physical handling, storage, and environmental extremes—feedback from partner labs routinely emphasizes the added value of clean, stable lots.
As the market for fluorinated organics evolves, scrutiny grows over environmental persistence and potential accumulation in ecosystems. We recognize the responsibility this brings. Our process design minimizes solvent waste and recyclables, with in-plant recycling streams for fluorinated by-products wherever practical. Years of handling persistent chemicals taught our team to design robust containment, ensure efficient waste capture, and upgrade equipment seals and monitoring rather than cut corners for lower costs.
Staying ahead of the curve, we partner with downstream users to track environmental fate and devise responsible lifecycle management plans. Some clients require full disclosure on synthetic reagents and process auxiliaries. Real collaboration with these teams pushes us to meet or exceed best practices. This isn’t rushed compliance—genuine care for how products move through their entire lifecycle shapes ongoing process improvement. We remain open to feedback and adjust formulations or packaging to make transportation and final disposal safer and more predictable.
Customers do not want vague assurances about quality. We share full batch analysis: NMR, HPLC, GC-MS—generated in our own labs, not from generic certificates. This documentation, coupled with a clear synthesis record, supports patent filings, regulatory submissions, and internal audits by research partners. Our lab team opens its books to scrutiny and takes pride in traceable, repeatable runs. Documentation has real meaning in our operations—each year, users who switched from off-brand sources cite clear records as a deciding factor.
Traceability also means backward tracking of raw materials—our procurement team only engages with vetted suppliers and tests inputs well ahead of use in critical steps. Tougher regulation in global supply chains means more attention to every precursor’s composition and source. Our partners can ask for supporting documentation any time, and our lab and procurement teams take justifiable pride in meeting these demands with hard data.
Work with perfluorinated intermediates carries non-trivial hazards. From reaction exotherms to specialized ventilation and containment, real chemical manufacturing demands discipline beyond casual lab work. Our team trains year-round for response to leaks and accidental releases. Every reactor and blending vessel handling fluorinated organics includes built-in monitoring, inert gas sweep technology, and fail-safes. Over time, our record for incident-free operation has become a cornerstone of our relationships with both clients and auditors.
We also collaborate in safety training and provide technical support when research facilities transition to using new fluorinated pyrazole derivatives. Practical advice on storage, transfer, and disposal stems from years at the bench—sharing this insight reduces mishaps and reassures R&D partners launching innovative programs. Professional pride hinges on more than product specs; it stands on honest, hands-on support through each step of the process.
Producing a compound with both chemical complexity and regulatory baggage rarely proceeds without headaches. Sourcing reliable, high-purity fluorinated precursors at competitive cost remains a recurring challenge. Price pressure affects more than raw cost; it introduces the temptation to cut corners that undermine traceability and safety. We resist this by absorbing increased input costs but offsetting them through yield improvements and internal process optimization. Real manufacturing means investing in equipment upgrades, not hoping for quick fixes.
Shipping regulations surrounding fluorinated organics shift year by year. We stay current through regular legal review and direct dialogue with regulatory bodies. Advance notification, correct labeling, and appropriate container use prevent unnecessary delays at borders and ports. Our export team carries practical experience, not just certificates—they anticipate problems before they escalate, enabling reliable delivery regardless of shifting rules.
Collaboration with researchers and other manufacturers brings a valuable flow of new ideas and better practices. Sharing process data, discussing outcomes from varied applications, and working through joint troubleshooting builds community knowledge. We learn a lot from customers who push the boundary of what fluorinated pyrazoles can achieve—fresh data from trials, analytical challenges, purification hurdles, and even market feedback about end-product performance. In return, we offer technical debriefs, sample support, and co-development opportunities.
We also keep close contact with academic teams working on novel uses for the compound. Sometimes an offhand comment or an unexpected chromatogram in a published paper points to a better way of purifying, or identifies a previously unrecognized side reaction. This dynamic cycle—where real-world results inform the next process change—powers long-term growth across all our product lines, not only the flagship pyrazole derivatives.
Our development chemists stay busy with new routes, greener solvent systems, and lower-temperature synthesis protocols. As pressure mounts to deliver both quality and sustainable methods, broadening the process toolkit becomes necessary. R&D teams draw insights from incremental improvements—switching to different base or protecting group choices often unlocks cleaner conversions or easier workup. In one of our recent projects, switching from a conventional to a semi-continuous reactor setup chopped cycle time by over 25%, reduced waste, and enhanced selectivity for the target product.
This push for efficiency aims not only at cost control but at making the product accessible to a broader community of researchers. Lower process risk, less energy use, and reduced ancillary chemical consumption matter both inside the factory and in larger industry discussions on responsible manufacturing.
Regular buyers share that sourcing chemically complex products like 3-(Heptafluoro-1-Propyl)-5-Phenylpyrazole always comes down to trust in the producer’s integrity and expertise. Over-promised deliveries and vague certificates chase away conscientious chemists. Reliable partners value transparency from end to end: from batch reproducibility to honest lead-time quotes and solutions-focused shipment planning.
By standing behind every gram that leaves our facility, our team maintains long-term client partnerships. Batch failure, supply interruption, or regulatory delays are not occasional glitches—they represent direct learning opportunities and reminders to keep improving. Experience in the industry never stands still, and neither do our production methods or client relationships.
Our commitment to producing 3-(Heptafluoro-1-Propyl)-5-Phenylpyrazole reflects lessons learned through years in real manufacturing. Meeting tough analytical targets, ensuring impurity control, and navigating the rough waters of regulation and supply chain fluctuation—all require a flexible, problem-solving mindset born from hands-on work with challenging molecules. The landscape for advanced organic chemicals grows more demanding, but also more rewarding, as each improved batch supports projects at the forefront of medicine and agriculture.
Every day on the floor brings new questions. Every challenge solved, whether technical, regulatory, or logistical, adds value—not only to our process, but to each customer who depends on quality, honesty, and depth of expertise. Through diligence and open exchange with partners, we aim to keep making real progress for a field that only moves forward on the backs of precise, reliable products.