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HS Code |
658485 |
| Name | 1-Fluoropentane |
| Molecularformula | C5H11F |
| Molarmass | 92.14 g/mol |
| Casnumber | 422-13-9 |
| Appearance | Colorless liquid |
| Boilingpoint | 54-56°C |
| Meltingpoint | -131°C |
| Density | 0.774 g/cm3 |
| Refractiveindex | 1.376 |
| Flashpoint | -10°C |
| Solubilityinwater | Insoluble |
| Chemicalclass | Alkyl fluoride |
As an accredited 1-Fluoropentane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250 mL amber glass bottle with secure screw cap, labeled “1-Fluoropentane, 99%.” Includes hazard pictograms and safety information. |
| Shipping | 1-Fluoropentane is shipped in tightly sealed containers, typically glass or compatible plastic bottles, to prevent leakage and degradation. It must be labeled according to hazardous materials regulations, handled in well-ventilated conditions, and protected from heat, ignition sources, and direct sunlight during transit. Shipping complies with local and international chemical safety guidelines. |
| Storage | 1-Fluoropentane should be stored in a tightly closed container in a cool, dry, and well-ventilated area away from sources of ignition and incompatible substances such as strong oxidizers and acids. Keep it away from heat, sparks, and open flames. Store at room temperature and ensure proper labeling. Always follow appropriate safety protocols and regulatory guidelines for flammable liquids. |
Applications of 1-Fluoropentane in Industrial ManufacturingAs an established manufacturer, we offer high-purity 1-Fluoropentane for specialty applications across select industrial segments. This material supports key functions in chemical processing, electronics fabrication, pharmaceutical synthesis, and solvent systems for precision cleaning. On this page, we detail specific real-world use cases—including compliance, formulation, production stage, and end product groups—to aid OEMs and downstream partners in evaluating performance, quality, and regulatory alignment. 1. Microelectronics Precision Cleaning Agents1-Fluoropentane serves as an effective low-residue solvent in wafer-level cleaning and defluxing lines within advanced microelectronics facilities. Its selective volatility and fluorinated structure enable controlled removal of organic contaminants after etching or packaging, without damaging sensitive device layers. Downstream adopters rely on proprietary microemulsion or azeotropic blends where solvent composition must balance dielectric compatibility and fast evaporation profiles demanded by high-mix and critical process steps. Industry compliance standards
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2. Pharmaceutical Synthesis – API Intermediate Solvent1-Fluoropentane is directly specified as a reaction medium or extraction solvent during multi-step synthesis routes in the pharmaceutical industry, especially in fluorine-containing API manufacturing. Its physicochemical profile allows precise control over reaction temperature and selectivity, particularly where alternative hydrocarbons introduce impurity risks. Downstream pharma producers frequently leverage this material within isolated stages that demand non-polar, low-boiling-point solvents for high-yield intermediate isolation. Industry compliance standards
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3. Precision Blowing Agent in Polymeric Foam ManufacturingThe controlled vapor pressure and non-ozone-depleting profile of 1-Fluoropentane make it an attractive blowing agent for close-celled polyurethane and polyisocyanurate foams, especially in thermal insulation for construction and refrigeration. Downstream processors select this raw material to achieve fine cell structure, critical to composite strength and lambda values, in rigid and sandwich-panel foam lines where environmental restrictions limit traditional halogenated alternatives. Industry compliance standards
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4. Specialty Solvent for Chemical SynthesisSynthesizers in the agrochemical and specialty chemical sectors utilize 1-Fluoropentane as a clean, low-residue solvent in halogenation, coupling, and organometallic reactions, especially when other aliphatic solvents contribute to undesired side products. The raw material’s volatility, inertness, and ease of post-reaction removal facilitate high-purity target compound generation at the kilo- and ton-scale. Producers in this sector prioritize batch-to-batch consistency and trace impurity control due to downstream product registration demands. Industry compliance standards
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5. Heat Transfer and Dielectric Fluid Manufacturing for ElectronicsEngineered fluids manufacturers select 1-Fluoropentane as a component in dielectric or thermal transfer liquids, particularly for closed-loop cooling systems in high-density power electronics and server hardware. Its low environmental persistence, dielectric strength, and evaporation threshold support bespoke blends used in immersion-cooling or direct-contact heat dissipation solutions for reliable electronics operation. Industry compliance standards
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We've spent years refining alkyl fluorides, and 1-Fluoropentane is a clear example of what dedicated production can offer. As a linear, saturated fluorinated hydrocarbon, its molecular formula (C5H11F) might seem simple on paper, but behind those five carbon atoms and one fluorine atom is careful, repeatable chemistry. Our manufacturing approach emphasizes high purity and batch-to-batch consistency so you can depend on predictable results. The product’s clarity and mild, ether-like odor reflect the rigorous distillation and handling processes we've established from raw material selection onward.
Through customer feedback and our own testing, we've adjusted process parameters to target high assay requirements that often surpass 99%. In analytical testing, we see very tight specifications for base material, halide content, and moisture — nobody wants trace water altering reactivity or compatibility. Each lot undergoes in-house GC and NMR analysis before shipment. Our standard grade is well-suited for advanced synthesis, but larger customers sometimes request variations, such as increased purity or impurity profiling for regulatory submissions. We prepare tailored documentation for customers who require full transparency.
Unlike suppliers who might blend or split material from third parties, our batches come off a dedicated fluorination and distillation line. This minimizes cross-product contamination and ensures repeat performance. Customers routinely ask about by-products like 1-chloropentane or higher-boiling analogs. Our processing steps limit their formation to under typical testing thresholds. Employees in our QC department take pride in identifying and reporting even the faintest traces of related compounds so you can form your own risk assessments.
Colleagues here recall how demand for simple alkyl fluorides exploded as pharmaceutical and agrochemical sectors moved deeper into fluorination chemistry. Medicinal chemists appreciate the unique electron-withdrawing effect of a single fluorine atom on pentane chains, which can change a molecule’s metabolic profile. Some of our customers introduce this product directly as a building block for further functionalization on the terminal carbon or use it to prepare specialty fluorinated intermediates for downstream synthesis.
Solvent makers also turn to 1-Fluoropentane because of its relatively low boiling point and moderate polarity. As a neat solvent or in blends, it works where polar aprotics like DMSO would not, and it leaves fewer traces during certain extractions. We’ve observed it work well when paired with sensitive catalysts that can’t tolerate trace water. Several advanced materials projects rely on this product when incorporating selective wetting properties for new coatings and lubricants.
Our own research team has handled 1-Fluoropentane in synthesis of fluorinated surfactant precursors. With its volatility and manageable toxicity, technicians in the plant know exactly how fast it evaporates and the kinds of setups that minimize operator exposure. The material remains unwieldy for large-scale use in open systems, and we frequently counsel partners about the importance of suitable ventilation and storage conditions. Real experience with logistics, handling, and downstream reactivity helps demystify this compound’s niche role.
If you compare 1-Fluoropentane to straight-chain alkyl chlorides or bromides, one clear difference is reactivity. The carbon-fluorine bond resists nucleophilic substitutions and hydrolysis, making it more durable under a wider range of process conditions. During lab-scale trials, researchers often swap in the fluorinated variant to prevent unwanted side reactions. This property benefits pharmaceutical scale-up chemists who want intermediates to survive harsh steps but break down under targeted, late-stage transformations. Our internal workbench data show that even under elevated temperatures, 1-Fluoropentane resists elimination pathways that plague lighter alkyl halides.
Compared to difluorinated or polyfluorinated pentanes, mono-fluorination preserves a balance between volatility and chemical inertia. Fully fluorinated solvents rarely find use outside Teflon manufacture or specialty extraction. Our product, by contrast, keeps a moderate boiling range and avoids surfactant-like behavior, which disrupts some liquid-liquid extractions. This allows for more predictable separations, whether running a pilot plant batch or scaling up to commercial production.
Customers sometimes ask about using other short-chain alkyl fluorides. With three- or four-carbon analogs, flashpoints and vapor pressures become safety concerns, leading to practical limits in shipping and end-use. Extending the chain, as in 1-Fluorohexane, leaves the molecule too bulky for certain synthesis strategies, while our five-carbon product threads the needle, balancing volatility with safe handling. In our warehouse, we store it under controlled temperature away from oxidants, and every drum is double-sealed. Experience shows that little adjustments to storage, like keeping container headspace as small as possible, reduce loss and ensure material keeps its assay throughout distribution.
Each operator handling the product trains on both safety and best-use standards. We developed these protocols in response to the product’s modest volatility and mild, but unmistakable, odor. Tanks are vented into activated carbon beds to prevent off-gassing, and the transfer lines are all fluoropolymer or high-grade stainless steel. Old stories still circulate among the crew about what happens when older gasket materials are exposed to alkyl fluorides. From first-hand experience, switching to fluoropolymer gaskets paid off in downtime saved and loss prevention.
In the lab, technicians keep materials in tightly sealed vials. Our own stability data confirm that product left at room temperature, away from sunlight, remains in top condition for extended periods. Employees on our shipping floor check each batch by weight and by content before it leaves. By using high-precision meters and double-sealing drums, we reduce risk of evaporation and off-specification complaints later. Keeping a clear record of outbound lots and confirmation of shipment integrity has saved our team from many potential client disputes.
Learning from feedback, we see that even subtle impurities affect outcomes in high-value synthesis. One pharma customer reported unusual chromatogram spikes until our upgraded purging process caught residual pentanols. Our batch records show that attention to minor side-product formation — especially secondary alcohols, pentene isomers, or halide residues — keeps the customer complaints almost nil.
We trace every canister from raw material reserves to finished fill, documenting each step. Feedback from regulated sectors led us to validate cleaning standards between campaigns, so all downstream syntheses run without problematic contaminants. Several advanced labs working on high-throughput screenings specifically cite the value in reduced blank correction, crediting our high-purity lots. Every significant user benefits from lot-specific certificates of analysis compiled after both GC and NMR review.
Our safety culture shapes every batch we produce. Past incidents — from simple spills to a memorable over-pressurization during hot summer loading — inform new internal guidelines every year. 1-Fluoropentane comes with a degree of flammability and narcotic effects at high vapor concentrations, so all mixing and filling runs in ventilation bays with dedicated transfer pumps. Operators rotate work to control exposure, and we install multi-point sensors to catch leaks before they reach thresholds.
In waste handling, our experience shows that fluorinated compounds challenge standard incineration methods. We ship process wash solutions and off-spec material to licensed disposal firms using consignment manifests. Internally, we recycle usable fractions by fractional distillation under reduced pressure, extracting more value from every shipment without cutting corners on safety. Decades in chemical manufacturing have taught us that proper containment and clear operating logs do more to control risks than process automation alone.
Recent events have tested every part of our procurement and logistics cycle. Our aim is to remain both transparent and reliable for all end users. We know the fluorine feedstock market experiences wild swings. Over the last few years, tight supply for certain halides and shifting prices on fluorspar forced us to renegotiate contracts and develop additional supply partners. Running a dedicated process, rather than batch-producing many compounds in one plant, gives us the agility to respond to these external shocks.
Some periods saw container shortages slow outbound shipments, so we invested in regional warehousing. Maintaining strategic reserves of both raw pentane and fluorinating reagents shortens downtime and protects customer commitments. Our facility’s proximity to major industrial logistics hubs means less time waiting for permissions or customs clearance. We’ve worked with carriers to use custom packaging that prevents contamination and tampering, which builds trust across client profiles, from global conglomerates to specialized research firms.
The pandemic-era disruptions highlighted just how much end-users value frank communication. We update each partner on pipeline status and estimated lead times, sharing documentation at every step. Many long-term contracts grew out of our habit of direct conversation, not automated form letters. Our personal relationships with buyers and their own chemists allow them to plan more confidently for scale-up or multi-center evaluation work.
Manufacturing fluorinated solvents and intermediates forced us to innovate beyond book knowledge. We constantly review our procedures by looking at real customer projects. Detailed feedback describes how a subtle shift in moisture content influenced a downstream reaction, or how the absence of trace benzene or chlorinated by-products smoothed regulatory filings. We respond by making real-world adjustments — adding new quality checks, tuning reactivity profiles, or setting aside production runs that deviate from our specs.
By tracking field performance, we catch product drift before it leaves the plant. Our engineers collaborate with customers on process adaptation, working through issues one phone call at a time. If an additive or stabilizer raises compatibility questions, we’ll test it right beside the customer’s own chemists. This hands-on approach defines our relationship with users, who know that every spec sheet, every certificate, and every delivery carries the weight of practical expertise.
Investing in both people and automated analytics, we watched throughput and yield improve each year. Our records show that downtime drops when operators cross-train, and quality jumps when every step includes a secondary review. These lived results feed back into our internal training modules, keeping process knowledge sharp and shared across all teams.
Looking at our order history, 1-Fluoropentane began as a niche specialty chemical, but wider adoption in pharmaceutical, agrochemical, and advanced material projects shaped its growing importance. Medicinal chemists using this molecule in candidate libraries pointed out how reproducibility and purity influenced both screening outcomes and patent defensibility. At the same time, startups in materials science reported success integrating it into low-surface-tension coatings, leveraging its unique physical properties discovered in the lab.
Scale-up presented new challenges. Engineers refining process parameters for multi-liter syntheses found that our product’s limited reactivity allowed for aggressive downstream steps, minimizing poor conversions and costly workups. Startups harnessing the compound for rapid-prototyping needed flexible delivery schedules and consistent supply. We learned that maintaining ongoing dialog with end-users made the difference, enabling faster turnaround and problem-solving.
The chemists we serve rarely work in isolation. Whether planning a single reaction or designing months of iterative screening, their input directs our daily decisions. We’ve fielded detailed technical queries about the effects of single impurities on enantioselective catalysis, or best practices for incorporating the product into automated, miniaturized synthesis stations. Their standards push our own expectations upward. A few years ago, process chemists at a major pharmaceutical firm noticed a subtle difference in retention time on the analytical column. Working in tandem, we traced the source to minimal shifts in distillation conditions, adapting the process for tighter control.
Academic users share pre-publication data back with us, showing new substitution pathways and revealing unanticipated application routes. Their discoveries help round out our knowledge, creating an informal network for technical know-how. In time, these collaborations help us refine both our internal standards and the broader body of reference materials available to all.
We track shifts in regulations around alkyl fluorides, responding to calls for greater environmental responsibility and product stewardship. Regulatory landscapes in North America, Europe, and East Asia differ, and we maintain compliance documentation to support customers with cross-border research. Our lab runs regular tests for persistent organic pollutant residues and works to provide transparent safety data. We back up every claim with historical test results so users see full traceability.
Anticipating stricter controls on emissions, we invested in better capture and scrubbing systems for vent gases, reducing unintended releases by over half in recent reporting periods. Experience shapes our belief that responsible production holds equal weight with high yield and low impurity content. As the push for green chemistry gathers momentum, we’re examining alternative synthesis routes and greener fluorination agents, and we study the life-cycle impact of both starting materials and process waste.
Collaborations with leading academic groups let us test new catalytic pathways and more sustainable continuous-flow techniques. While some green methods show promise in bench trials, our scale-up team gathers real operational data on cost, throughput, and impurity risk, balancing innovation with concrete performance. Listening to the evolving needs of early-stage biotech and high-volume industrial users means we are rarely caught flat-footed by new compliance or technical demands.
We rely on hard-won, operational insight to distinguish sound practice from marketing promise. Our decision to invest in dedicated distillation and QC capacity, for example, came directly from real-world customer feedback, not from trend-watching. Competitors who blend materials or rely on third-party supply often miss the nuances that separate a good batch from a rejected one. This is why experienced buyers consistently return. Every specification, every technical engagement, and every delivery reflects layers of practical lessons learned on the factory floor.
For us, the story of 1-Fluoropentane is one of continual, deliberate progress — refining process steps, responding to market changes, and always learning from those who apply our material in demanding contexts. Over time, this approach has earned us a seat at the table with some of the industry’s most innovative scientists and engineers, giving us a first-hand perspective on the real-world impact and future promise of this unique chemical.