|
HS Code |
597527 |
| Chemical_Name | 1,3,4,5,6,7,8,8-Octachloro-1,3,3A,4,7,7A-Hexahydro-4,7-Methanoisobenzofuran |
| CAS_Number | 76-44-8 |
| Molecular_Formula | C10H4Cl8O |
| Molecular_Weight | 406.8 g/mol |
| Appearance | White to off-white crystalline solid |
| Melting_Point | 164-165°C |
| Boiling_Point | 200°C (decomposes) |
| Density | 1.7 g/cm³ (at 20°C) |
| Solubility_in_Water | Insoluble |
| Solubility_in_Organic_Solvents | Soluble in organic solvents (e.g., acetone, benzene) |
| Purity_Content | >1% |
| Odor | Slight chemical odor |
| Flash_Point | Non-flammable |
| Stability | Stable under recommended storage conditions |
| Storage_Conditions | Store in a tightly closed container in a cool, dry, well-ventilated area |
As an accredited 1,3,4,5,6,7,8,8-Octachloro-1,3,3A,4,7,7A-Hexahydro-4,7-Methanoisobenzofuran [Content>1%] factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The chemical is packaged in a 500g amber glass bottle, sealed with a screw cap, and labeled with hazard and handling information. |
| Shipping | The chemical 1,3,4,5,6,7,8,8-Octachloro-1,3,3A,4,7,7A-Hexahydro-4,7-Methanoisobenzofuran [Content >1%] must be shipped as a hazardous material in compliance with relevant regulations. Use appropriate UN-approved containers, with clear hazard labeling, and follow all local, national, and international transport and documentation requirements for dangerous goods. |
| Storage | Store 1,3,4,5,6,7,8,8-Octachloro-1,3,3A,4,7,7A-Hexahydro-4,7-Methanoisobenzofuran ([Content >1%]) in a cool, dry, well-ventilated area away from direct sunlight, heat sources, and incompatible substances such as strong oxidizers. Keep container tightly closed and properly labeled. Use only approved chemical storage containers and avoid contact with moisture. Implement spill containment and dedicate the area for hazardous materials. |
Applications of 1,3,4,5,6,7,8,8-Octachloro-1,3,3A,4,7,7A-Hexahydro-4,7-Methanoisobenzofuran [Content>1%] in Industrial ManufacturingAs a specialized manufacturer of this high-purity chlorinated compound, we focus on authentic downstream sectors with established technical and regulatory adoption. Below we present the main industrial application segments supported by verified process data and compliance requirements, to guide formulation specialists and procurement managers in relevant industries. 1. Flame Retardant Additives for Polyolefin CompositesMajor polymer processors use this material as a halogenated flame retardant in the manufacture of injection-molded, extruded, or film-grade polyolefin compounds, primarily for electrical, automotive, and construction use. It provides thermal stability during compounding and maintains end-product mechanical properties at relatively low dosage. The formulation team usually integrates it together with synergistic agents such as antimony trioxide. Strict monitoring of dispersion and homogeneity parameters ensures the additive’s compliance and efficiency in each batch. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Intermediate in Insecticide Formulation for Agricultural ProtectionSeveral agrochemical formulators incorporate this chlorinated substance as a critical active ingredient precursor in the synthesis of broad-spectrum organochlorine insecticides. The process demands controlled reaction conditions to ensure a high yield of the intended bioactive compounds. Downstream blenders adjust dosage based on target pest pressure and environmental residue criteria, working closely with regulatory bodies to validate field product safety. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Additive in Rubber Production for Cable and Hose ApplicationsManufacturers specializing in chlorinated synthetic rubbers incorporate this additive to achieve enhanced resistance against ignition, mechanical abrasion, and ozone degradation. The formulation typically occurs during the initial mastication phase, with compatibility checks run for specific grades of chloroprene or EPDM elastomers. Curing and processing profiles are calibrated to balance physical properties and regulatory limits on residue levels within finished rubber goods. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Specialty Coatings Additive for Industrial Metal ProtectionDownstream coatings manufacturers introduce this raw material as a halogen donor in anti-corrosive primer and topcoat systems for metal substrates that demand long-term outdoor durability. Its role is to improve flame resistance and chemical inertness against aggressive industrial atmospheres. The dosage and resin compatibility are optimized to ensure performance according to application-specific requirements such as industrial tank or bridge coatings. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
5. Performance Modifier in Thermosetting Resin LaminatesLaminated board and prepreg producers leverage this specialty chlorinated compound as a performance modifier in thermosetting resin systems used for electrical insulation or flame-barrier applications. Its high chlorine content ensures strict adherence to flame retardancy standards without negative impacts on lamination processability or electrical insulation properties. Adjustments to the additive rate are made based on board thickness and resistance target. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive 1,3,4,5,6,7,8,8-Octachloro-1,3,3A,4,7,7A-Hexahydro-4,7-Methanoisobenzofuran [Content>1%] 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.
We will respond to you as soon as possible.
Tel: +8615371019725
Email: admin@sinochem-nanjing.com
Flexible payment, competitive price, premium service - Inquire now!
Standing on the production line each day, tracking yield and purity batch after batch, it’s clear that 1,3,4,5,6,7,8,8-Octachloro-1,3,3A,4,7,7A-Hexahydro-4,7-Methanoisobenzofuran demands a level of focus and consistency that only comes with genuine chemical manufacturing experience. We have seen trends ebb and flow—applications shift and end-use industries embrace this compound in cycles as technical demands and environmental policies evolve. Chemists and process engineers in our factory have come to know that the quality and reliability of our output mean everything to customers who depend on us to deliver a material that works every time.
Years spent in synthesis and purification have shown us the intricacy of producing this highly chlorinated bicyclic furan. The molecule’s structure gives it notable stability: that ring system, heavily chlorinated, provides chemical characteristics that won’t be found in lighter, less substituted furans. These features unlock possibilities in organic synthesis—particularly as an intermediate for specialty chemical products.
Some competitors offer variants with lower purity and less stringent quality control, but we hold our specification above 1% content as a baseline, pushing far beyond that in most lots. Maintaining this threshold involves careful attention to solvents, degree of chlorination, and constant monitoring to avoid byproducts that can cause trouble in downstream processes. Those who have handled such syntheses know that only a slight fluctuation in temperature or reactant concentration might skew an entire batch’s performance. In our shop, the difference is that every drum labeled for shipment carries the assurance of exhaustive QA testing, not just paper promises.
Watching raw starting materials transform under the controlled chaos of chlorination isn’t glamorous, but there’s satisfaction in seeing these grains and liquids possess new values. Our plant relies on robust, closed-loop systems that limit worker exposure while containing waste and emissions. It takes operational discipline to run these systems efficiently, as each kilo of waste we divert or recycle represents practical experience at work: not only an environmental target, but a reduction in cost for the final customer as well.
End users and R&D teams reach for this compound in their toolkits when working on agricultural products, specialty polymers, and advanced ingredients for formulations that face conditions where stability cannot be compromised. The chemical backbone stands up to harsh synthetic steps—it survives where simple chlorinated benzenes or straightforward furans wouldn’t, which translates to fewer failures during scale-up.
Transporting and storing this substance calls for strict attention to temperature control, reliable containment, and real-time inventory records. As the producer, we see firsthand how bottlenecks arise: a slight misreading of tank levels or a temperature that creeps a few degrees the wrong way can risk product decomposition or off-spec results. Our storage tanks are purpose-built; lined and vented to handle this kind of material, they avoid corrosion that can afflict generic warehousing. We keep moisture and airborne contaminants at bay with dedicated systems—practices that distributors or resellers seldom understand in such depth.
We do not just ship what comes off the line; we monitor material in storage, validate that product in transit doesn’t deviate from standards, and watch outbound logistics so customers see the full value of direct-from-manufacturer supply. This is why our clients’ technical teams nearly always comment on the usability and consistent performance across different orders.
Anyone who has worked up close with polyhalogenated furans understands the production hazards and complexity. Getting from starting aromatic hydrocarbons to a defined, high-purity octachloro compound takes patience and a willingness to scrap batches that do not meet strict targets. Chlorination reactions favor a narrow window of conditions—pressure, temperature, reactant feed, mechanical mixing—each minute variable tracked in real time by our process engineers.
Compared to laboratories or toll houses, our facilities invest in continuous process verification, not just batch endpoint sampling. This scrupulous approach turns up less visible differences in impurity profiles—a factor end users miss until faced with downstream filtration or unplanned plant shutdowns. Many companies underestimate how easily unwanted oligomers or partially chlorinated species slip through when vigilance falters.
The value in our product comes from these daily controls: online GC-MS monitoring, in-process titration, detailed phase separation, and post-synthesis thermal conditioning. These steps may add labor and expense, but they all show in the stability, non-volatility, and predictable behavior of our product on the customer’s line.
Specifications alone on a page or certificate don’t paint the full picture. Working as the manufacturer, we have seen technical documents attempt to simplify complexity that real-world lab or plant work never does. Product labeled above 1% sets a publicly visible threshold, but reality on the production floor means average lots frequently meet purities many times higher on a dry weight basis.
Traditional methods for quality assessment—NMR, elemental analysis, high-resolution mass spec—run as a daily rhythm in our QC lab. Customers know to expect analytical support, spectral reference data, and hands-on advice rather than just a PDF datasheet. This distinction, tied to direct manufacturing, helps project managers and chemists tackle troubleshooting without resorting to uncertain third-party advice.
Other producers sometimes offer a broader range of lot-to-lot variation—something we have consciously chosen to avoid. Our approach does cost a bit more in terms of ongoing investments in monitoring and human expertise, but it also means customers spend less time on rework, requalification, or finding workarounds for inconsistent materials.
Much of the commercial octachlorinated furan found on the open market comes through indirect channels—material passed through traders or blended by regional packagers. That material might work for low-value applications, but time and again we see that direct-from-manufacturer shipments outlast competitors in storage, display lower levels of trace contaminants, and respond more predictably in advanced applications.
We control our process start to finish. We do not blend off-spec with in-spec, nor do we dilute or cut for appearance; each tank is traceable back through its batch ticket, production shift, and QC record. This model of traceability gives customers confidence that their results today have a clear path to duplication tomorrow. No ambiguity, no mystery intermediates.
Feedback from downstream users highlights a practical difference: greater batch reproducibility, easier process development, and fewer headaches with supply chain surprises. The reliability shows up every time a process engineer calls looking for support, only to learn that our latest lot shows the same profile as their last three, year after year. This consistency isn’t luck—it’s deliberate, thanks to staff who live and breathe the process every shift.
Our experience working directly with formulation chemists and development teams shapes our perspective on real-world fielding of this material. Specialty agricultural applications often demand ingredients that resist environmental breakdown; this compound fills that need with a backbone that holds up during exposure to sunlight, heat, soil bacteria, and tough formulation steps.
Technical managers in plastics and resins have adopted our product in projects that require clarity on halogen balance and robust thermal properties. The chlorinated structure anchors polymer chains in specialty resins, supporting demanding UV resistance or flame retardancy targets in final products. We have seen R&D struggles disappear once plant personnel switch from a spot market supply to our reliably sourced chemical—cuts in off-grade rates, better extrusion, and improved certification test performance follow.
Occasionally requests arrive from teams chasing next-gen high-performance additives. Our technical division has worked shoulder-to-shoulder with these teams, supporting method development, providing timely analytical direction, and helping adapt manufacturing parameters so the unique characteristics of this furan can shine in their end-product recipes.
Regulation of halogenated intermediates isn’t theoretical, as any legitimate producer discovers within a week of operations. Our plants draw on strict air and water emission controls and offer full waste stream treatment before discharge. Factory teams conduct real-time monitoring for leaks or process upsets. This discipline exceeds the typical distributor or trade house approach; we have learned efficiency arises from design, not afterthought. Keeping people and the local area safe is non-negotiable—our older staff, some with decades in the industry, wouldn’t let it go any other way.
Every operator in our plant receives continual training and detailed hazard reviews. These are not just checkboxes for compliance—they serve to reduce downtime, prevent incidents, and ensure that every individual feels ownership of safe, conscientious output. Our standard operating procedures now reflect years of these lessons, reducing risk for every handler and downstream user.
The materials we supply today undergo review for persistent organic pollutants and environmental fate studies—a nod to new regulatory drivers and the ethical obligations that come with manufacturing chemistry at this level. Our decades on the production floor show up in clear communication to customers about how and where to use, store, and discard, backed not by guesswork but by empirical experience.
We push ourselves to refine yield, lower byproduct profiles, and reduce downtime in the plant every year. This habit is built on constant feedback from our own process chemists and the practical advice that comes back from customers who trust us with their high-grade requirements. The production line never fully reaches perfection, but regular re-examination of critical steps—distillation, solvent choice, chilling sequence—keeps us ahead of many competitors and translates directly into higher-value product and service for our clients.
As plant managers and engineers, we resist the temptation to rely on “good enough.” When customers encounter hurdles in their own operations, our technical team joins those calls—sharing chromatography tips, alerting to subtle stability effects, or adjusting parameters on our end to suit novel applications. This hands-on knowledge transfer wouldn’t be possible without being rooted in actual manufacturing, rather than brokerage.
Chemistry changes on the margins, and those margins matter most for companies competing in tough technical fields. As makers, our best assets are the lessons carved out one batch at a time—learning how minor shifts in procedure alter downstream outcomes, listening to customer results, and providing answers to issues that generic suppliers gloss over.
Our supply philosophy values openness and practical partnership. Customers have learned to rely on not just our product consistency but our willingness to identify issues in processes, propose tweaks, and document how tweaks on our end might unlock a headache-free project on theirs. This approach has forged many long-term relationships and sustained trust across changing regulatory and economic environments.
Chemical manufacturing remains both art and science; nothing teaches faster than day-to-day direct handling. We have spent years collecting hard-won insights so that this product arrives ready to perform—without need for downstream workarounds or repeated troubleshooting. The shift toward more sustainable, efficient, and safe chemical production is an ongoing journey, and each improvement we introduce builds value for every stakeholder, from our own team to the end customer.
Our track record reflects not just a name or a label, but the practical experience and steady commitment of those who produce the chemical, batch after batch. This is how real performance, reliability, and problem-solving value are baked into every shipment marked 1,3,4,5,6,7,8,8-Octachloro-1,3,3A,4,7,7A-Hexahydro-4,7-Methanoisobenzofuran.