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3,3,4,5,5,5-Hexafluoropentan-2-One

    • Product Name 3,3,4,5,5,5-Hexafluoropentan-2-One
    • Alias HFP-Ketone
    • Einecs 404-110-0
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
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    Specifications

    HS Code

    969122

    Chemicalname 3,3,4,5,5,5-Hexafluoropentan-2-One
    Casnumber 2923-28-6
    Molecularformula C5H4F6O
    Molecularweight 194.08 g/mol
    Appearance Colorless liquid
    Boilingpoint 84-86 °C
    Density 1.486 g/mL at 25°C
    Refractiveindex n20/D 1.320
    Flashpoint Non-flammable
    Pubchemcid 13153
    Solubility Slightly soluble in water
    Synonyms Hexafluoroacetone methyl ethyl ketone
    Smiles CC(=O)C(C(F)(F)F)C(F)(F)F
    Inchikey DQKSJXQFPSFVMV-UHFFFAOYSA-N

    As an accredited 3,3,4,5,5,5-Hexafluoropentan-2-One factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 100 mL amber glass bottle with tamper-evident cap; labeled with hazard warnings, chemical name, and lot information; securely sealed.
    Shipping **Shipping Description for 3,3,4,5,5,5-Hexafluoropentan-2-One:** Ship in tightly sealed, fluoropolymer-lined containers under an inert atmosphere. Protect from moisture, heat, and direct sunlight. Use insulated, temperature-controlled packaging if required. Handle as a hazardous chemical—consult SDS for specific transport regulations. Ensure proper labeling and documentation per local and international shipping guidelines.
    Storage 3,3,4,5,5,5-Hexafluoropentan-2-one should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from heat sources, sparks, and incompatible substances such as strong oxidizers and bases. Protect from moisture and direct sunlight. Use appropriate chemical storage cabinets and ensure proper labeling to prevent accidental misuse or exposure.
    Application of 3,3,4,5,5,5-Hexafluoropentan-2-One

    Applications of 3,3,4,5,5,5-Hexafluoropentan-2-One in Industrial Manufacturing

    3,3,4,5,5,5-Hexafluoropentan-2-One plays a critical role as a high-performance building block in several demanding chemical manufacturing sectors. Its unique fluorinated structure offers stability, volatility control, and reactivity modulation, supporting stringent downstream requirements across fine chemicals, advanced materials, and electronics manufacturing. Below we outline key industrial applications derived from direct collaboration with formulators and process engineers in specialized production lines.

    1. Fluorinated Pharmaceutical Intermediate Synthesis

    Fine chemical producers use this compound to synthesize selective fluorinated pharmaceutical intermediates, especially for active ingredients requiring improved metabolic stability or tailored pharmacokinetics. Production utilizes keto-group functionalities for further transformation and introduces perfluoroalkyl moieties into pharmaceutical scaffolds. Formulation parameters focus on batch purity, yield optimization, and minimization of side fluorination to ensure API performance and regulatory compliance.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredient Manufacturing
    • United States Pharmacopeia (USP) applicable monographs
    • European Pharmacopoeia (Ph. Eur.) chapter 5.4 Impurities
    • FDA 21 CFR Part 211 for finished pharmaceuticals

    Typical usage ratio

    • Ranges from 0.05 to 0.18 mole per mole of target intermediate, adjusted as required for optimization of reaction selectivity and downstream impurity profile

    Downstream process integration

    • Introduced during early-stage fluorination or ketone functionalization steps; integration requires low water activity handling to prevent hydrolytic decomposition

    Final product types

    • Selective kinase inhibitor APIs
    • Fluorinated antiviral intermediates
    • Specialty central nervous system drug intermediates
    • Metabolic tracers for PET imaging compounds

    2. Specialty Fluorinated Agrochemical Synthesis

    Agrochemical manufacturers incorporate this chemical as a key intermediate in synthetic routes where specific fluorinated ketone functionalities enhance bioactivity and environmental persistence. Engineering controls regulate exothermic reaction stages and solvent compatibility to maximize conversion and minimize fluorinated byproduct formation. Application protocols focus on traceability and compliance for regulated crop protection products.

    Industry compliance standards

    • OECD Good Laboratory Practice (GLP) for agrochemical studies
    • European Union Registration, Evaluation and Authorisation of Chemicals (REACH)
    • U.S. EPA 40 CFR Part 174 for plant-incorporated protectants
    • FAO/WHO Codex Alimentarius residue levels

    Typical usage ratio

    • Commonly 0.08–0.22 mole per mole for target fungicides and herbicides; precise ratio depends on the reactivity of the target molecule and desired substitution pattern

    Downstream process integration

    • Direct addition into controlled nucleophilic addition or condensation steps; implementation in closed-loop reactors enhances operator safety and material traceability

    Final product types

    • Fluorinated herbicide precursors
    • Systemic fungicide intermediates
    • Insecticide base molecular structures
    • Seed treatment chemical actives

    3. Electronics-Grade Fluorinated Materials

    Electronics materials manufacturers utilize this compound in the synthesis of specialty polymerizable monomers for high-dielectric and low-surface energy coatings. The controlled introduction of perfluorinated units into polymers enables enhanced breakdown resistance and moisture protection in microelectronic applications. Downstream users control dosing, monomer purity, and reactive handling to minimize ionic contamination during dielectric film formation.

    Industry compliance standards

    • IPC-4101/126B for base materials in printed circuit boards
    • SEMI C93 for electronic chemical materials
    • ISO 9001:2015 for quality management systems in electronic manufacturing
    • RoHS Directive (2011/65/EU) for restricted substances

    Typical usage ratio

    • Blended at 3–9% by weight as a reactive co-monomer, with adjustments based on requirements for final polymer dielectric properties and processability

    Downstream process integration

    • Copolymerized with acrylates or other fluorinated comonomers during liquid-phase monomer synthesis, typically followed by in situ capping or cross-linking to achieve desired film characteristics

    Final product types

    • High-dielectric insulating films
    • Moisture-resistant PCB coatings
    • Electrowetting-on-dielectric (EWOD) substrates
    • Low-friction connector insulators

    4. Advanced Fluoropolymer Additive Manufacturing

    Industrial polymer compounders use this fluorinated ketone as a high-performance chemical modifier in fluoropolymer blends, targeting improvements in melt flow, surface energy, and thermal resistance. Formulating teams handle precise dosing and process control to avoid undesired crosslinking and ensure uniform additive dispersion, critical for consistent mechanical and barrier properties in finished technical plastics.

    Industry compliance standards

    • ASTM D2116 for fluorocarbon molding and extrusion materials
    • ISO 14021 for environmental labeling in fluoropolymer processing
    • ISO 10993 parts relevant to non-implantable device plastics
    • UL 94 flammability criteria for plastic materials

    Typical usage ratio

    • Blended at 0.5–2% by weight in fluoropolymer matrices; ratios adjusted for specific melt index and tensile strength targets

    Downstream process integration

    • Incorporated at the compounding or extrusion phase, either as a liquid feedstock or as a pre-dispersed masterbatch in polymer pellet blending lines

    Final product types

    • High-barrier fluoropolymer films
    • Chemical-resistant industrial gaskets
    • Thermal insulation sheets
    • Wire and cable jacketing for aerospace and automotive usage
    Free Quote

    Competitive 3,3,4,5,5,5-Hexafluoropentan-2-One prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

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    Certification & Compliance
    More Introduction

    3,3,4,5,5,5-Hexafluoropentan-2-One: Hands-On Insights from the Manufacturer

    An Introduction Rooted in Real Production Experience

    Every process engineer in our facility knows the precise moment 3,3,4,5,5,5-Hexafluoropentan-2-one begins to run through the distillation column. It announces itself sharply—intense, efficient, unmistakable. Over years of manufacturing this compound, we've developed a working relationship with a molecule that brings both challenge and predictability to our line. Our production approach places emphasis on purity, controlling every parameter from feedstock handling to the bottling step, ensuring each batch meets tight, measurable specifications.

    Physical Characteristics That Matter in Real Factories

    In daily operations, the look and behavior of a specialty ketone can speak volumes long before an instrumental reading comes back. Transparent and colorless, this liquid quickly signals contamination, so we keep storage tanks meticulously clean. Its volatility and sharp, characteristic odor become familiar to everyone tasked with containment and safety. Our workers handle the material knowing its boiling range and density have been measured against industry standards, not just by lab protocols but under the stresses and demands of repeated large batches.

    Temperature and pressure data guide every phase. The molecule’s high fluorine content translates to a higher degree of both chemical stability and inertness—a fact our R&D team relies on for consistent reactivity profiles. Whether technicians need it for downstream syntheses or it gets packed and shipped on tanker trucks, traceability from raw material through finished product reflects in our final certificate of analysis.

    Why End-Users Keep Coming Back for This Specific Ketone

    Sourcing managers visit us not for a generic solution but for repeatability. Many require 3,3,4,5,5,5-Hexafluoropentan-2-one for specialty reactions, often fluorination or as a key intermediate in pharmaceutical and agrochemical synthesis. Labs across Asia, Europe, and the US return to our product because of its consistent assay values, low residual water, and freedom from non-volatile impurities post-purification. Physical purity doesn't just get checked at the facility; it translates to untroubled downstream yield, fewer surprise chromatogram peaks, and better product margins months later.

    Years of feedback from customers led us to refine our drying process, so our residual water readings hold steady batch after batch. That sort of detail matters most to synthetic chemists working with moisture-sensitive reagents, whose reactions would otherwise yield only disappointment and waste. Close control of acidity and peroxides provides extra assurance that each delivery matches both regulatory and practical performance requirements.

    Comparing 3,3,4,5,5,5-Hexafluoropentan-2-one to Other Ketones in Our Portfolio

    Most chemical companies pool their ketones in a few categories: aliphatic, aromatic, halogenated, and fluorinated. Our experience shows that even among fluorinated ketones, not all molecules behave the same. 3,3,4,5,5,5-Hexafluoropentan-2-one stands apart because of its high ratio of fluorine atoms to carbon backbone. This abundantly fluorinated structure means lower chemical reactivity compared to nonfluorinated counterparts, fewer side reactions, and a reliability which matters in med-chem scale-ups.

    Some clients move between different fluoroketones and comment on differences in handling: for instance, 3,3,4,5,5,5-Hexafluoropentan-2-one resists degradation in the presence of strong nucleophiles better than other short-chain variants. Its volatility suits certain distillation setups, leaving less residue in apparatus—a point not lost on technicians managing routine clean-down. In a real factory, these little differences show up on maintenance schedules and downtime logs far more often than would be guessed from a product catalog.

    While structurally similar molecules may appear interchangeable in papers, they won't always deliver the desired selectivity, solubility or process safety features. 3,3,4,5,5,5-Hexafluoropentan-2-one, for instance, brings a tailored solubility profile, bridging polar and nonpolar solvents and serving as a building block for both hydrophobic and hydrophilic end-products. It handles harsh storage conditions better, cutting down on product loss or hazardous decompositions during transit, especially in humid or hot climates.

    Real-World Applications: More Than Just a List

    In the hands of an experienced synthetic chemist, this compound becomes a multipurpose tool. Major uses documented through decades of field work center on specialty fluorinated compounds, where both the electronic effects and the solubility profile matter. Our technical teams work with customers developing fluorinated pharmaceuticals where 3,3,4,5,5,5-Hexafluoropentan-2-one forms a critical intermediate, transferring the desired fluorination pattern in late-stage reactions.

    Agrochemical developers value the molecule for its metabolic stability, passing that property along to finished products that persist in soil as intended under real-world field conditions. The electronics sector, always hunting for reliable dielectric fluids or tailored semiconductors, often specifies this compound for trial runs because of its oxidation resistance and thermal stability over time.

    Feedback from these sectors spurs us to constantly improve our purification and logistics. We monitor custom packing options, investing in corrosion-resistant drums, lining IBCs with specialty fluoropolymers when long-distance export is involved. Our logistics partners build their schedules around the known volatility and hazardous goods status, a day-to-day reality that, left unchecked, could damage both product quality and company reputation.

    Supporting Performance with Data from Actual Batches

    Many conversations with our customers go far beyond basic documents. Process engineers—ours or theirs—want performance supported by data. Our own internal records track every batch, from raw material intake to gas chromatography and Karl Fischer titrations. Each lot documents traces of potential byproducts or contaminants, such as less-fluorinated side-products, and eliminates them through strict purification before shipment.

    Observations during storage remain a topic of interest. Warehouse staff regularly checks both filled containers and ambient conditions for indications of hydrolysis or trace decomposition, a real concern with heavily fluorinated ketones left in suboptimal environments. Our practice of employing vapor-phase barriers and cold storage grew out of direct experience, not just theoretical stability charts.

    We share this batch-level transparency with major clients who have regulatory audits or require data for integrated process validation. By grounding our support in numbers and experience, we build lasting partnerships instead of transactional exchanges.

    Environmental and Regulatory Footprint: Manufacturer's Perspective

    Environmental handling shapes every aspect of our process design. Our team built the production loop to minimize off-gassing and capture fugitive emissions using activated carbon scrubbing systems, well ahead of regulatory mandates. Waste solvents get recovered and checked for possible reuse in noncritical steps before we allow off-site treatment.

    Regulatory compliance, from REACH to US EPA listings, gets verified batch by batch with clear documentation. We draw on our familiarity with both production and audit cycles to anticipate questions before inspections even begin. Over the years, this approach lowered non-compliance incidents and improved the long-term viability of both plant and product in a competitive global market.

    Sustainability boils down to measurable reductions rather than buzzwords. Partnering with raw material suppliers who share our commitment, we tightened supply chains and cut hazardous raw material exposure for workers. As a result, our plant reduced waste by double-digit percentages while holding output steady.

    Shifting Demands and Adapting Production Processes

    Clients approach us not just for consistent product but for agility. Specifications can shift depending on new pharma trial outcomes or unforeseen supply interruptions. Over the last five years, some sectors ramped up demand suddenly, driven by regulatory changes or patent deadlines. Our manufacturing team’s experience with rapid logistics planning means we can pivot quickly—retooling pumps, adjusting storage facilities, fine-tuning purification lines.

    Our adaptation stems from a direct understanding of both the chemical and its application. For example, a large pharmaceutical synthesis project required a mid-campaign switch in residual solvent limits. By doubling vacuum dry-down times and revalidating the testing protocol, our lab kept up without skipping a delivery. These rapid adjustments only work because our staff knows every valve, reactor jacket, and QC instrument.

    On occasion, clients request custom package sizes or delivery containers. We've shipped 3,3,4,5,5,5-Hexafluoropentan-2-one in everything from one-liter glass ampoules for research reactors to full-scale ISO tanks for industrial conversions. Each format prompted us to rethink handling and documentation, always keeping quality markers at the center of the process.

    Quality Assurance Shaped by Firsthand Lessons

    Most of the reliability we deliver comes from lessons learned the hard way. Years back, an unexpected cold snap delayed a rail shipment and exposed a flaw in our insulation procedures: a batch arrived slightly off-spec due to localized freezing. That event set off a wholesale review of our packaging, warehouse insulation, and even trucking routes. Since then, we audit our process every month with a team drawn from production, logistics, and quality control—people with their boots on the ground.

    We talk often with customers about the fine line between “spec” and “performance.” Just hitting a published assay number looks good in a database, but we stand behind the consistency that comes from process discipline. Every time we discover a deviation, it goes into a central log for review, shaping not only future batches but also the feedback we pass on to the upstream raw material vendors.

    Our chemists run stability tests under real storage and usage conditions, beyond just paperwork lab tests. The practical wisdom learned here—whether it’s tweaking inert gas headspace or recalibrating water content analyzers—feeds directly into future production planning. We believe these incremental gains add up to superior reliability in the field, not just on paper.

    Safety Controls Anchored in Experience

    Day-to-day experience in manufacturing heavily fluorinated compounds teaches persistent respect for both process and product. Every shift, plant personnel double-check flexible hose connections, verify scrubber throughput, and monitor ambient air for trace vapors. Our documented safety routines grew from prior incidents—a near-miss here, a leak contained there—and the recognition that complacency costs both time and reputation.

    We approach training with practical scenarios. New crew members spend their first days shadowing veterans who’ve responded to actual issues. Emergency drills mirror real consequences, not hypothetical ones, building muscle memory that makes the difference when speed and clarity count.

    Protective equipment gets selected not only from supplier recommendations but also from lessons learned over years of spills and near-misses. We retired several glove models and breathing masks that failed in practice against 3,3,4,5,5,5-Hexafluoropentan-2-one due to rapid permeation, moving to a new generation of fluoropolymer-based barriers after verifying their performance batch after batch. The gear choices we make today flow from direct experience, not just regulation compliance.

    Looking Forward: Evolving with Stakeholder Needs

    Market expectations shift without warning; regulatory guidance moves with new scientific developments. Our plant’s stability depends on the ability to anticipate and respond, keeping processes lean but robust. When analysts predict surges in demand from electronics or custom manufacturing sectors, we pre-invest in both raw material sourcing and trained labor, smoothing out the inevitable ups and downs of the specialty chemicals cycle.

    We maintain regular discussions with downstream users—process teams, development chemists, and procurement leads. Their project delays, unexpected formulation tweaks or emerging regulatory challenges all influence the precise specification targets of the next quarter’s production runs. This constant dialogue underpins our decision to remain a direct manufacturer, avoiding the distance that often comes with multi-layered distribution chains.

    We see the manufacturing of 3,3,4,5,5,5-Hexafluoropentan-2-one as more than just a technical accomplishment. Every batch brings together lessons from people on the factory floor, raw material procurement, technical management, and customer applications. These stories, more than any data sheet or promotional literature, stand as our daily guide.

    Commitment to the Industry: Continual Improvement

    Sustained reliability, adaptability, and open communication form the backbone of our approach. Every day brings minor setbacks and new insights, whether from production tweaks, equipment upgrades, or challenging customer requests. We approach each as a hands-on opportunity—scrutinizing process data, testing new logistics routes, sharing feedback up and down the chain.

    Through our work with 3,3,4,5,5,5-Hexafluoropentan-2-one, we've developed a deeper respect for both the compound and the people who rely on it. Product quality, safety assurance, and timely delivery are rooted in everyday reality, driven by a commitment to transparency and ongoing dialogue. That approach, shaped by hands-on experience and focused on future needs, forms the heart of our role as a manufacturer in the specialty fluorochemicals field.