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HS Code |
540162 |
| Chemical Name | 1H-Perfluoroheptane |
| Molecular Formula | C7F16 |
| Molar Mass | 350.054 g/mol |
| Appearance | Colorless liquid |
| Boiling Point | 82°C |
| Melting Point | -57°C |
| Density | 1.7 g/cm³ at 25°C |
| Solubility In Water | Insoluble |
| Vapor Pressure | 154 mmHg at 25°C |
| Cas Number | 335-76-2 |
| Refractive Index | 1.252 at 20°C |
| Flash Point | Non-flammable |
| Odor | Odorless |
| Stability | Chemically and thermally stable |
As an accredited 1H-Perfluoroheptane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 1H-Perfluoroheptane is packaged in a 100 mL amber glass bottle with a secure screw cap and safety labeling. |
| Shipping | 1H-Perfluoroheptane should be shipped in compliance with hazardous material regulations. It must be securely contained in sealed, chemical-resistant packaging and properly labeled. Ship via certified carriers specializing in chemicals, ensuring temperature and handling conditions are maintained. Accompany with a safety data sheet (SDS), and follow all relevant DOT, IATA, or IMDG transport guidelines. |
| Storage | 1H-Perfluoroheptane should be stored in a tightly sealed container in a cool, dry, and well-ventilated area, away from sources of ignition, heat, and incompatible substances. Protect from moisture and direct sunlight. Store in a dedicated chemical storage cabinet, specifically for flammable or volatile chemicals if applicable. Ensure proper labeling and restrict access to trained personnel only. |
Applications of 1H-Perfluoroheptane in Industrial ManufacturingWe supply 1H-Perfluoroheptane directly from our manufacturing facility for established, regulation-driven industrial applications. Drawing on our experience in chemical synthesis and formulation, we ensure material consistency, full traceability, and up-to-date regulatory support. Below, we outline key segments where our fluorinated solvent supports advanced production requirements with focus on actual market usage, compliance, and integration. 1. Electronic Component Cleaning and DryingOur customers in electronics utilize this fluorinated solvent during precision cleaning and drying of sensitive circuit boards, semiconductors, and microelectronic assemblies. Its extremely low surface tension allows thorough removal of particulate residues and ionic contaminants following soldering, etching, or molding operations, with no conductive residue remaining. Most users deploy closed-loop vapor phase cleaning equipment, where the solvent supports both rinsing and spot-free drying in a regulated, low-contamination environment. Industry compliance standards
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2. Medical Device Surface PreparationManufacturers in the medical sector use our high-purity fluorinated solvent during surface preparation of surgical instruments, catheters, and implantable devices. Its chemical inertness and complete volatility meet sterilizable cleaning requirements before further aseptic processing. Typical integration includes removal of silicone oils, lubricants, and particulates prior to laser marking, bonding, or packaging in GMP-regulated lines. Industry compliance standards
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3. Optical Lens Manufacturing and CoatingIn optical facilities, our solvent facilitates surface preparation during precision lens, prism, and fiber optic manufacturing. Its low refractive index and non-hygroscopic nature allow it to remove silicone roll-off agents, polishing compounds, and photoresists without streaking or fogging. Operators use it both for pre-coating cleansing and for cleaning delicate surfaces between vapor deposition steps or UV-curing of coatings, ensuring that finished lenses meet strict optical clarity standards. Industry compliance standards
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4. Aerospace Hydraulic and Fuel System FlushingAerospace maintenance and component suppliers specify our fluorinated solvent for flushing and cleaning hydraulic and fuel systems during overhaul and pre-assembly. Its chemical inertness prevents incompatibility with specialty elastomers and metal alloys used in aerospace, and its volatility ensures no residues compromise system cleanliness levels validated by aircraft OEMs. Users rely on our material to meet strict foreign-object and particulate contamination thresholds prior to sealing and system integration. Industry compliance standards
Typical usage ratio
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Our team has worked with a spectrum of perfluorinated compounds in the search for high-performance, stable solvents and specialty fluids. Among them, 1H-Perfluoroheptane (CAS: 335-78-8) stands out. Manufactured through carefully regulated fluorination processes, this compound demonstrates a unique balance between physical stability and chemical inertness. Over years in production, we've refined methods that yield material with high purity, typically exceeding 99%. We have learned that purity drives reliability in downstream applications, often separating dependable results from unpredictable side reactions.
Every batch of 1H-Perfluoroheptane undergoes close monitoring throughout its synthesis and purification. Our process begins with raw material screening, ensuring feedstock consistency. The most significant challenges tend to arise from moisture control and avoidance of trace organic residues. Through proprietary distillation and specialized fluorination controls, we are able to address these concerns. Teams in our analytical labs routinely use advanced gas chromatography and NMR analysis to detect even trace impurities, supporting confidence for users who demand strict reproducibility in their critical processes.
What sets 1H-Perfluoroheptane apart from its hydrocarbon relatives—and even from other fluorinated compounds—is its exceptional thermal and oxidative stability. Experienced technicians in our facilities know the value of a solvent that resists breakdown under heat or aggressive chemical conditions. This material offers a boiling point that approaches 82°C, and we typically see excellent behavior under both elevated and sub-ambient temperatures. Because 1H-Perfluoroheptane is virtually non-polar and hydrophobic, it neither absorbs water nor supports biological growth during storage or use. Shelf life remains unaffected by routine atmospheric exposure, giving storage managers peace of mind even for inventory intended for extended hold.
Our team often compares production runs of perfluoroheptane to similar chain-length perfluorocarbons. Minor differences in hydrogen substitution can cause significant changes in surface tension, miscibility, and vapor pressure. The specific inclusion of a single hydrogen atom in the molecule delivers subtly different physical characteristics, including a slightly increased reactivity compared to perfluoroalkanes. This means it sometimes serves in situations where a full perfluorinated chain would be too inert for the application—an important distinction for chemists designing formulations sensitive to subtle reactivity.
The importance of batch-to-batch consistency in the specialty chemicals sector cannot be overstated. Our own experience in custom synthesis and scale-up has shown that only robust process control leads to reproducible end-use results. 1H-Perfluoroheptane requires high attention to process cleanliness and trace materials. We invest in isolated production lines, minimizing risk of cross-contamination with other fluorinated materials or byproducts. Employees undergo regular training focused on procedural discipline. Each release from our production line ties back to detailed traceability records, letting users document exact feedstock and processing conditions. This level of care pays off for high-specification users in electronics, analytical chemistry, and specialty coatings.
Our extensive use of closed systems helps reduce operator exposure and environmental emissions, a growing concern within the fluoropolymer and fluorochemical fields. The rise of regulatory scrutiny, especially for persistent organic pollutants, challenges us to maintain containment and recovery efforts. We have found that investment in solvent recovery units and emissions controls not only meets compliance but also generates operational savings over time through recovered product and reduced waste disposal obligations.
Technical teams in our pilot plants often receive project briefs that demand both chemical resistance and highly predictable elution properties. 1H-Perfluoroheptane delivers on both counts. With its low surface energy, it provides an excellent medium for high-precision cleaning of sensitive optical, semiconductor, and aerospace components. Customers in electronics assembly have used it to displace moisture and fine particulates from intricate circuit architectures where residue retention can cause device failure. Our process engineers have worked side by side with these clients to optimize ultrasonic and vapor degreasing approaches, validating real-world results through repeated use cycles.
Beyond cleaning, researchers in our network have explored perfluoroheptane's compatibility with emerging chemical and materials processes. Not every solvent can maintain solubility with aggressive fluorinated polymers or withstand contact with highly reactive intermediates. Our own R&D staff frequently rely on 1H-Perfluoroheptane for extractions, azeotropic drying, and unique crystallization media. Its negligible reactivity with silicon, metals, and thermoplastics, combined with the ability to carry minimal ionic contaminants, makes it a staple choice in exploratory syntheses. We continually review lab feedback to identify trends in new applications and adjust process parameters to deliver the most suitable product.
There is growing public scrutiny of fluorinated materials for their environmental persistence. Our company has responded—both in internal training and customer support—by prioritizing not just compliance, but active engagement in minimizing emissions and waste. Rigorous process audits track every kilogram from receipt to shipping, ensuring accurate reporting and fast anomaly detection. Our storage tanks employ full secondary containment and custom moisture controls, learned through practical experience after years of dealing with the challenges of perfluorinated liquid management.
While 1H-Perfluoroheptane exhibits low acute toxicity and non-flammability, older design philosophies that assumed inertness sometimes proved inadequate for emerging understanding of chronic environmental concerns. In recent years, we have developed in-house programs for container recycling and solvent recovery, reducing our environmental impact and helping customers close the loop in their own operations. We supply detailed usage support and disposal guidance, based not just on regulations, but also on lessons learned from real-world incidents and feedback from downstream users. Our safety data sheets reflect a collaborative, ongoing effort to update handling and exposure information as industrial and regulatory knowledge expands.
Chemists who have worked with both straight-chain perfluoroalkanes and 1H-Perfluoroheptane often mention critical differences that become relevant on the laboratory bench or in production. Full perfluorination creates compounds with almost unmatched inertness, but at the expense of any opportunity for chemical interaction. The presence of one hydrogen in 1H-Perfluoroheptane leads to a modest increase in potential for targeted chemical modification, solubilizing select intermediates or supporting certain catalyzed reactions that more inert perfluorocarbons cannot. Our clients in the pharmaceutical and specialty intermediate development sectors value this balance; it creates options for synthetic design not offered by fully fluorinated alternatives.
The use of 1H-Perfluoroheptane as a calibration standard in spectroscopic analysis showcases its clean spectral features and resistance to background signal—a property that users of other perfluorinated fluids sometimes find lacking due to trace contamination or broader retention properties. The difference in boiling point, density, and viscosity compared to similar chain-length perfluorocarbons also impacts distillation outcome and azeotrope formation. This subtle but essential difference defines whether a process succeeds or needs retooling.
Our experience has taught us that ensuring consistent supply of 1H-Perfluoroheptane is as much about logistics and planning as it is about pure chemistry. Global demand for high-purity fluorinated chemicals has risen in step with semiconductor and electronics industry growth. Volatility in raw material sourcing or disruptions due to regulatory changes can affect timelines. We solve this through securing multiple raw material sources and holding sufficient inventory, supported by long-term contracts that stabilize costs for both us and our customers. Continuous communication with suppliers and robust forecasting lets our planning team smooth out supply fluctuations that have caused delays in other specialty chemical markets.
We have also invested in modular, scalable production capacity. This means we can increase output rapidly if a large-volume customer ramps up, or pivot to specialty lots in response to novel research requirements. Batch records, automated process systems, and real-time monitoring let us adjust settings with precision, producing either drum lots or small, tailored packages with the same guarantee of quality. Over time, we have seen how well this model supports both fast-moving application fields, such as medical device manufacturing, and established sectors like industrial cleaning or optics fabrication.
Chemical manufacturing requires more than just production—it’s about being a resource to those who use the results of our work. We treat every technical inquiry seriously, supporting our customers with engineering knowledge gained over years in the field. Teams from R&D, quality, and production take part in developing application guides, troubleshooting issues that arise in customer operations, and supporting integration of our material into new processes. Our technical bulletins focus on lessons learned in applications such as vapor phase cleaning, solvent exchange, and azeotropic drying. Field engineers regularly visit customer sites to understand process bottlenecks and translate observations into product or process improvements.
Our own laboratories have tested 1H-Perfluoroheptane in a variety of reactors, solvent washing set-ups, and even environmental simulation experiments. We continually share this data not just for compliance, but to provide transparency and a reliable knowledge base to our partners. Insight into material compatibility, effects of trace impurities, and long-term stability under different handling conditions benefits our manufacturing partners as much as our internal teams. In a sector where small differences can determine commercial success, these collaborative relationships play a critical role.
Sustainability has become a significant driver of how we operate at every level. The legacy of perfluorinated chemistry now comes with responsibility to the environment and the people who work with these materials—something we focus on every day. We adopt closed-loop recycling strategies, capturing vapors and consolidating residues for reprocessing. Our process innovation team looks for ways to reduce byproduct formation, using selectivity-enhancing catalysts and improved reactor technology. Product stewardship includes clear labeling, ongoing training, and open reporting of environmental metrics.
We view compliance as a baseline and aim to go beyond by iteratively improving process safety and resource efficiency. Worker safety is addressed through extensive PPE protocols, automated monitoring for vapor leaks, and regular health checks. Each process revision targets reduction in incident risk, both for our teams and for partners further down the value chain. Lessons learned from decades of fluorinated solvent production shape every step, from raw material arrival to shipment of finished 1H-Perfluoroheptane. Over time, our commitment to sustainable practice leads to improved community trust and regulatory standing, opening new doors for technology development.
Our research group continues to explore how emerging demands drive new directions for 1H-Perfluoroheptane. Novel separation technologies, microfluidics, and specialized chromatography increasingly rely on fluids with stringent purity and stability criteria. The unique profile of 1H-Perfluoroheptane—bridging the gap between complete inertness and deliberate reactivity—offers opportunity for ongoing formulation development. We collaborate with university researchers and industry innovators to apply this molecule in applications never envisioned in our earliest production runs. Feedback loops between early adopters, industrial process teams, and our R&D groups stimulate advances in both quality and performance.
In parallel, tightening international regulations on fluorochemical handling and disposal continue to reshape the landscape. We see these as challenges to adapt and improve, investing in greener production routes, enhanced recovery systems, and alternative materials where appropriate. The chemical industry faces scrutiny that demands both transparency and technical creativity. Our experience has made clear that open lines of communication, clear documentation, and readiness to innovate form the core of resilience in this evolving environment.
With a foundation built on integrity, process knowledge, and careful resource management, we believe 1H-Perfluoroheptane will remain a relevant, reliable solution for critical applications. The lessons we learn daily from real-world manufacturing—supported by decades of chemical expertise—position us to meet new challenges while delivering material that helps our partners succeed.