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1H,2H-Octafluorocyclopentane

    • Product Name 1H,2H-Octafluorocyclopentane
    • Alias perfluorocyclopentane
    • Einecs 206-341-5
    • 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

    911379

    Iupac Name 1H,2H-Octafluorocyclopentane
    Molecular Formula C5H2F8
    Molar Mass 230.06 g/mol
    Cas Number 847-70-7
    Appearance Colorless liquid
    Boiling Point 49-51 °C
    Melting Point -34 °C
    Density 1.67 g/cm³
    Refractive Index 1.294
    Vapor Pressure 332 mmHg (20 °C)
    Flash Point Non-flammable
    Solubility In Water Insoluble
    Smiles C1(C(C(C(C1F)F)F)F)(F)F
    Inchi InChI=1S/C5H2F8/c6-1-2(7)4(9,10)5(11,12)3(1)8/h1-2H
    Odor Slight, sweet

    As an accredited 1H,2H-Octafluorocyclopentane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 1H,2H-Octafluorocyclopentane is supplied in a 500 mL amber glass bottle with a secure, chemical-resistant screw cap and safety labeling.
    Shipping 1H,2H-Octafluorocyclopentane is shipped as a chemical substance requiring careful handling. It is typically transported in secure, clearly labeled containers compliant with international and local regulations. Ensure the container is tightly closed, protected from physical damage, and kept in a cool, well-ventilated area, away from incompatible materials or sources of ignition.
    Storage **1H,2H-Octafluorocyclopentane** should be stored in a tightly sealed container, away from heat, sparks, and open flames. Store in a cool, dry, well-ventilated area, protected from moisture and incompatible substances such as strong oxidizers. Avoid direct sunlight and sources of ignition. Ensure appropriate chemical labeling and access to safety equipment. Store at temperatures recommended by the manufacturer or supplier.
    Application of 1H,2H-Octafluorocyclopentane

    Applications of 1H,2H-Octafluorocyclopentane in Industrial Manufacturing

    1H,2H-Octafluorocyclopentane is a specialized fluorinated compound valued for its high chemical stability, low toxicity, and unique physical properties across several industrial segments. As a direct manufacturer, we support a range of large-scale applications based on customer formulations and comply strictly with relevant industry quality systems.

    1. Precision Cleaning Solvent in Electronics Manufacturing

    Leading electronics assemblers use 1H,2H-Octafluorocyclopentane as a non-flammable, low-residue cleaning agent during the final wash of critical components and printed circuit boards. Its low boiling point enables effective removal of ionic and particulate contamination without corroding sensitive microelectronics. Manufacturers rely on its selective solvency to meet high-purity production standards, minimizing residues that may cause field failures or reduce the yield of complex multi-layer electronic assemblies.

    Industry compliance standards

    • IPC-CH-65B Guidelines for Cleaning of Printed Boards
    • J-STD-001 Requirements for Soldered Electrical and Electronic Assemblies
    • RoHS Directive 2011/65/EU requirements for hazardous substances
    • REACH Regulation EC 1907/2006 Registration, Evaluation, Authorisation and Restriction of Chemicals

    Typical usage ratio

    • Applied as 100% neat solvent for vapor phase and immersion cleaning systems
    • Can be blended with co-solvents at 70–90% concentration to adjust for specific contamination profiles
    • Adjustments based on flux residue level or cleaning cycle time

    Downstream process integration

    • Integrated in final cleaning tanks after soldering operations
    • Used in both batch and conveyor-based inline vapor degreasing systems
    • Followed by drying tunnels or vacuum drying to ensure moisture removal

    Final product types

    • Completed printed circuit boards for consumer electronics
    • Telecom equipment subassemblies
    • Medical diagnostic device modules
    • Precision sensor arrays

    2. Heat Transfer Fluid in Semiconductor Production

    Semiconductor fabrication plants utilize this raw material as a dielectric heat transfer medium in temperature control systems for plasma etchers, ion implanters, and CVD reactors. Its high thermal stability and low viscosity across a broad temperature range ensure efficient thermal cycling and high reliability in 24/7 process environments. The fluid remains inert in contact with silicon wafers and process gases, supporting the stringent cleanliness demands of leading‐edge chip manufacturing lines.

    Industry compliance standards

    • SEMI S2 and S8 Environmental, Health, and Safety Guideline for Semiconductor Manufacturing Equipment
    • SEMI F47 Voltage Sag Immunity Standard (equipment reliability)
    • ISO 14001 Environmental Management System for chemical use in cleanrooms
    • QS-9000 Quality System Requirements (where applicable)

    Typical usage ratio

    • Used as 100% heat transfer medium without dilution
    • Flow rates and fill volumes determined by reactor or tool OEM specifications
    • Replenishment every 12-18 months based on monitoring of fluid degradation

    Downstream process integration

    • Pumped through closed-loop chillers and recirculation systems directly adjacent to process chambers
    • In-line filtration may be used to ensure particle cleanliness
    • Heat exchangers must be compatible with fluorinated fluids

    Final product types

    • Advanced semiconductor wafers (logic and memory)
    • MEMS device substrates
    • LED epitaxy wafers
    • Power electronics dies

    3. Refrigerant Component in Specialty Cooling Systems

    Manufacturers assembling low-temperature refrigeration equipment integrate 1H,2H-Octafluorocyclopentane as a component in next-generation refrigerant blends. It exhibits zero ozone depletion potential and a reduced global warming potential, supporting customer compliance with climate-friendly standards. Its vapor pressure and glide properties make it suitable for blend formulations targeting hybrid cascade systems and laboratory ultra-low freezers, where conventional HFCs fail to comply with updated environmental specifications.

    Industry compliance standards

    • ASHRAE Standard 34 Safety Classification of Refrigerants
    • EU F-gas Regulation (517/2014) for low-GWP refrigerants
    • EN 378:2016 Safety and Environmental Requirements for Refrigerating Systems
    • UL 60335-2-40 Standard for Safety of Household and Similar Electrical Appliances

    Typical usage ratio

    • Used at 10–40% by weight as part of refrigerant blends (e.g., with HFOs or HFCs)
    • Precise formulation depends on design goals: freezing point, operating pressure, regulatory limits
    • Batch metering performed via mass flow controls during filling

    Downstream process integration

    • Filled into primary and secondary refrigerant circuits during system assembly or servicing
    • Vacuum-evacuated loops prior to injection prevent moisture ingress
    • Post-fill leak testing and charging conducted to meet performance and safety criteria

    Final product types

    • Laboratory ultra-low temperature freezer cabinets
    • Cascade refrigeration units for medical storage
    • Environmental simulation chambers
    • Process chillers for pharmaceutical production

    4. Blowing Agent in High-Performance Insulation Foams

    Polyurethane and polyisocyanurate foam producers adopt this chemical as an advanced physical blowing agent, valued for its thermal insulation performance and minimized environmental impact. Its low thermal conductivity supports production of panels and spray foam used in energy-efficient construction. By replacing legacy CFC and HCFC agents, it helps manufacturers deliver building envelope materials that pass the strictest energy codes and green building certification.

    Industry compliance standards

    • ASTM C1029 Standard for Polyurethane Foam Insulation
    • LEED v4 Low-Emitting Materials Criteria for building products
    • EN 13165:2012+A2:2016 for thermal insulation products
    • EU Regulation (EC) No 1005/2009 on substances that deplete the ozone layer

    Typical usage ratio

    • Used at 4–7 parts per 100 polyol by mass in foam formulations
    • Formula adjustment based on foam density and k-factor (insulation performance)
    • Precise metering via in-line blending units

    Downstream process integration

    • Injected at the mixing head immediately before foam expansion and curing
    • Applied in both continuous panel lines and batch spray systems
    • Handling systems require compatibility with fluorinated compounds

    Final product types

    • Thermal insulation panels for commercial construction
    • Spray-applied thermal barriers (building retrofit)
    • Industrial cold chain storage insulation
    • Insulated transportation containers
    Free Quote

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    Certification & Compliance
    More Introduction

    Introducing 1H,2H-Octafluorocyclopentane: Practical Value and Insights from Our Plant

    Understanding 1H,2H-Octafluorocyclopentane From a Manufacturer’s View

    Every batch of 1H,2H-Octafluorocyclopentane we ship from our plant tells the story of decades of fluorine chemistry, careful process design, and feedback from real-world users. This compound, structurally identified as C5H2F8, embodies the push for cleaner, efficient, and safer fluorocarbon materials. Our history with cyclic perfluorinated and partially fluorinated products goes back to the industry’s first leap beyond simple perfluorocarbons, extending our experience from solvent recycling lines to the latest precision cleaning processes.

    We developed our 1H,2H-Octafluorocyclopentane (also known as OFCP) model to meet the growing need for reliable, stable, and selective-performing compounds in specialty electronics, aerospace, and pharma segments. We do not just blend or repackage chemicals; every drop of OFCP leaving our reactor has passed through layers of distillation, testing, and control, designed and improved in our own laboratories.

    The Key Features Shaped by Production Realities

    Purity stands out as the single biggest influencer of product behavior in this class of fluorocarbons. In our experience, trace metal, water, or hydrocarbon impurities above 100 ppm translate to unpredictable losses, residue issues, and lower reproducibility for downstream users. That’s why OFCP in our line consistently meets or exceeds 99.5% purity. We run every fractionated lot through gas chromatography and NMR. We have seen, more than once, how even a 0.1% contaminant band can shift critical performance metrics in solvent flushes or working fluids. High purity not only improves outcomes but also cuts troubleshooting time for technical teams on both sides.

    Physical stability emerges as one of the most requested features for customers who work with vapor-phase or liquid-phase operations. Our 1H,2H-Octafluorocyclopentane holds its boiling point at approximately 49°C, which brings a distinct advantage where narrow temperature control is necessary. Handling consistency over multiple climate cycles, storage periods, and pressure changes has always been a benchmark we set for outgoing material. In the plant, we see fewer losses to vaporization and tank-side upsets thanks to this tight boiling profile.

    Another aspect is low reactivity, which has opened doors for engineers designing integrated device washing processes or looking for alternatives to legacy CFCs and HCFCs. Where older solvents have left pitting, oxidation, or breakdown byproducts, OFCP shows high shielding, reducing unwanted reactions in critical workflows. Surface tension and dielectric constants characterize other specialties of this molecule, particularly for engineers who calibrate their processes by drop weight and electric insulation.

    Performance in Real-World Applications

    Over years of fieldwork, our team has observed that customers gravitate to OFCP when process reliability comes to the forefront. Semiconductor factories deploy it for quick-drying rinses and vapor degreasing, counting on its volatility, chemical inertness, and minimal residue. In these cleanrooms, the stakes are measured not just in operational hours but in final product yield. Cycle after cycle, OFCP allows microfabrication lines to maintain contaminant levels below the specs set for advanced node production. Feedback from device engineers consistently mentions less haze, fewer spots, and a faster dry-down compared to older, legacy fluorocarbons.

    In aerospace maintenance, 1H,2H-Octafluorocyclopentane supports oxygen-system cleaning and valve maintenance operations. Our engineers have long worked with maintenance crews who share a simple measure—how many successful flush cycles before component reinstallation. Cleaning results have shown improvement, with easier validation and far lower risk of residual hydrocarbons or oxidizable materials. The low toxicity profile also means handling procedures stay manageable—our hazard assessments and worker exposure readings show that risk abatement takes less time than with traditional halocarbons.

    Pharma and analytics users, on the other hand, take advantage of OFCP’s volatility and non-polarity for sample extraction, instrument flushing, and challenging separations. In these environments, secondary reactions or material carry-over can spell months of delays or regulatory trouble—issues our formulation and packaging have helped customers reduce. Our on-site technical consultations have often revealed that switching to OFCP cuts both solvent consumption and downtime linked to post-process cleaning.

    Crucial Differences: 1H,2H-Octafluorocyclopentane Versus Other Fluorocarbons

    From a synthesis and cost standpoint, OFCP occupies a unique middle ground. The compound differs from fully perfluorinated cyclopentane forms, which, while more inert, demand higher input costs and come with broader limitations in process compatibility. OFCP retains much of the chemical stability and non-flammability but is practical where slight hydrogenation improves solvency or wetting without introducing unwanted reactivity.

    Comparing OFCP to linear perfluorinated or partially fluorinated alkanes highlights a jump in volatility and spreadability. Our tests demonstrate that cyclic structures, such as in OFCP, yield predictable boiling curves and increased wetting on structured surfaces. This trait matters especially in microelectronic and precision engineering settings, where droplets must evaporate uniformly and not hang on sub-micron trenches or contact pads.

    The dielectric strength of OFCP also marks a useful distinction. Based on our lab and in-process QA samples, OFCP withstands higher voltages in insulating applications than comparable straight-chain or even branched hydrocarbons. In practice, this means less arcing and breakdown during high-voltage stress tests on sensitive assemblies. This property feeds into its use as a heat transfer or cooling fluid in niche computing and high-power laser systems.

    Transport and storage costs factor into process selection. OFCP’s slightly higher molecular weight compared to lighter cyclics offers better containment—leak rates through gaskets and seals drop, extending tank change intervals and minimizing vent losses. A direct benefit noticed by many customers is lower volatility under room storage, which translates to better yield management and less product lost to the air or scrubbers during transfer.

    Production Insights and Continuous Development

    We design and run our own reaction lines, distillation towers, and QA labs. This control brings the freedom to tighten every step, from raw material feedstocks through to outgoing drums. Our plant’s synthesis process for OFCP starts with careful selection of hydrofluorination catalysts and cyclization conditions—parameters refined over pilot and commercial scaleups. Each time we run a new lot, our operators track reactor temperature, pressure, and conversion rates in real time. Irregularities get flagged, and we can halt or adjust runs within minutes—all based on direct plant-floor data.

    On-site, our engineers and analysts pursue continuous improvement through both customer feedback and ongoing R&D. If an application study suggests a minor contaminant interferes with an advanced analytical instrument, we re-examine our purification and packing streams. Last year, a packaging switch reduced trace moisture pick-up during transit to below 20 ppm, after tracking a few high-moisture readings from shipments to humid zones. These are not arbitrary targets—every tweak responds to a problem someone has lived through or a challenge we have solved as users ourselves.

    Alignment with Evolving Industry Demands

    Regulatory frameworks and safety standards never stand still, so neither can our methods. The environmental and workplace safety story for OFCP diverges sharply from older CFC-based products, which brought rising restrictions and phase-outs worldwide. This substance, while still a specialty fluorinated compound, registers as non-ozone depleting and maintains a favorable safety profile under current global chemical control programs. We process all waste and off-gas streams from our lines within closed systems; halocarbon capture and recycling reduce both emissions and disposal costs. Regular engagement with regulatory and environmental compliance auditors ensures we keep pace with new best practices as regions update their reporting or labeling demands.

    Worker protection, both in our own plants and at customer sites, drives design decisions at several stages. We engineer our packaging with reinforced seals and pressure-tested drums, not only to meet transport codes but to protect colleagues who handle acids, bases, or reactive intermediates daily. Fit-for-purpose filling and transfer systems prove their worth by the near absence of leak reports or injury logs from customer feedback. Each improvement comes from lived experience, not just a table of requirements.

    Supply Reliability: What Scale Manufacturing Brings

    A chemical’s reputation rises and falls with its availability and consistency. We built our OFCP program with redundancy in mind—multiple reactors, expansions on purification, and tested supply chains for every input. Our logistics model includes on-site tank storage, real-time shipping tracking, and responsive customer support. We know that for many of our biggest clients, a stalled shipment or a miss in quality control can throw off not just costs, but entire production runs. We invest in preventative maintenance, keep buffer stock, and prioritize honest communication about any unexpected delays or issues. Over the years, these approaches have reduced backorders, urgent substitutions, and product recalls to a fraction of what’s visible in broader industry data.

    We take pride in delivering every drum of OFCP with clear batch records and third-party-verified test results. Customers have asked for—and our process delivers—COAs backed up by independent lab data, not just internal checks. Tracking and transparency have built trust through years of collaboration, long after the first test sample.

    Technical Support and Community Engagement

    One of our manufacturing team’s defining traits lies in our approachability. Technical support is not just an afterthought but part of our day-to-day operation. We keep chemists and engineers on-call for troubleshooting and process adaptation. Regular site visits and process walk-throughs help capture use case specifics and feed improvements back to our production line.

    Our collaboration with user groups—semiconductor process engineers, aerospace QCs, chemical formulators—drives much of our application testing. This tight feedback loop brings us firsthand reports of what works, what fails, and what needs a rethink. If a customer in advanced lithography flags a drying artifact tied to lot variability, we investigate right down to storage atmosphere and tanker cleaning protocols. Our commitment extends beyond just shipping barrels; it includes follow-through until the compound solves each problem for which it’s chosen.

    Moving Forward: Responding to Shifting Demands

    Global markets never remain static, and neither do the specs demanded of specialty chemicals. Over the years we have adjusted the OFCP product line in both purity options and pack sizes, reflecting shifts from large-volume bulk users to nimble, high-mix electronics firms. One-size-fits-all works for commodities but rarely for specialty fluorocarbons. Our willingness to batch manufacture smaller volumes or pre-filter product to suit sensitive applications comes directly from learned lessons—not simply to chase every niche, but to address the true pain points shared by customers across the globe.

    Experience tells us that responsiveness trumps sales slogans. When supply chain shocks hit the industry—pandemics, logistics disruptions, or raw material shortages—it’s the relationships, technical insight, and rooted production knowledge that keep essential projects on track. We keep decision-making close to production, so that new problems or risks become adjustments, not bottlenecks. This agility has let us fill crucial gaps for long-time customers in ways traders or off-site marketers simply can’t.

    Differentiating Real Quality and Sustained Value

    With so many chemicals now traded across borderless digital marketplaces, distinguishing true producer quality from a repackaged commodity takes more than a price check. We base our value on consistent feedback, repeat audits, and side-by-side process tests run in the very environments where OFCP works hardest. We stress-test every batch not just against internal standards but in customer applications. Long-run feedback shows that trace impurity control, moisture barrier improvements, and real-world QA outperform specs alone.

    For our team, every customer challenge translates into a chance to solve and to improve the manufacturing process. Whether refining catalyst beds or adapting fill lines for specialty needs, we treat every solution as a marker of experience. In an industry where regulatory, safety, and technical requirements evolve so rapidly, no product can remain static and expect to meet true user needs.

    Lessons From Decades at the Reactor and Loading Dock

    1H,2H-Octafluorocyclopentane occupies a demanding space in the specialty chemicals world. Delivering consistent, high-purity, and high-performance material comes not from marketing but from hands-on control over synthesis, packaging, and delivery. We stand behind this compound and the real-world results it makes possible. Years of field support, troubleshooting, and continuous learning have shown us that reliability—both in the product and in the supplier—make all the difference.

    The lesson: stay as close as possible to your own process, learn from every batch you ship, and never treat a specification as the ceiling. In this industry, partnership trumps perfection, and each improvement, no matter how small, ripples through every operation that trusts your product. We bring that approach to every drum of OFCP we make, aiming to add steady value for every industry and every engineer who relies on clean, dependable, and performance-driven fluorocarbons.