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HS Code |
945336 |
| Common Name | Gamma-(1,2,4,5/3,6)-Hexachlorocyclohexane |
| Cas Number | 58-89-9 |
| Molecular Formula | C6H6Cl6 |
| Molecular Weight | 290.83 g/mol |
| Synonyms | Lindane, Gamma-HCH |
| Appearance | White crystalline solid |
| Melting Point | 112-113°C |
| Boiling Point | 323°C (decomposes) |
| Solubility In Water | 7 mg/L at 20°C |
| Density | 1.89 g/cm³ (at 20°C) |
| Odor | Slight musty odor |
| Vapor Pressure | 0.00047 mmHg at 20°C |
As an accredited Γ-(1,2,4,5/3,6)-Hexachlorocyclohexane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Sealed 25 kg fiber drum with inner polyethylene liner, clearly labeled “Γ-(1,2,4,5/3,6)-Hexachlorocyclohexane,” hazard and handling instructions. |
| Shipping | Γ-(1,2,4,5/3,6)-Hexachlorocyclohexane must be shipped in accordance with hazardous materials regulations. It should be packed in tightly sealed, chemically resistant containers, clearly labeled, and cushioned to prevent breakage. Transport requires appropriate UN numbers, safety data sheets, and proper documentation. Avoid exposure to heat, moisture, or incompatible substances during shipping. |
| Storage | Γ-(1,2,4,5/3,6)-Hexachlorocyclohexane should be stored in a tightly sealed container in a cool, dry, and well-ventilated area away from sunlight, heat sources, and incompatible substances such as strong oxidizers. The storage area must be clearly labeled, secure, and access limited to authorized personnel. Avoid contact with moisture and keep the chemical away from food and drink. |
Applications of Γ-(1,2,4,5/3,6)-Hexachlorocyclohexane in Industrial ManufacturingAs the original manufacturer, we supply Γ-(1,2,4,5/3,6)-Hexachlorocyclohexane to qualified B2B partners in sectors where its unique chemical properties deliver reliable performance in regulated process streams. The following application scenarios reflect the material’s established industrial roles, each covering critical aspects of quality control, feed ratios, production integration, and output types aligned to international standards and downstream customer requirements. 1. Agricultural Insecticide FormulationProducers utilize this ingredient as a legacy active agent in insecticide blending lines targeting crop protection, particularly where specific resistance management protocols permit. Its inclusion in select dust and liquid formulations addresses pest spectra resistant to alternative chemistries, following close review against regional regulatory approvals. Automated batch reactors introduce the material at controlled temperatures, with inline sampling confirming residual active content post-compounding. Industry compliance standards
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2. Wood Preservation TreatmentWood-processing operations in select jurisdictions employ this compound as an organochlorine preservative for specific anti-termite and anti-fungal timber treatments where alternatives may not suffice. The chemical joins treatment solvents during industrial impregnation cycles, ensuring deep matrix penetration for structural and outdoor wood protection. Compliance with output residue limits remains essential for legal sale and export. Industry compliance standards
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3. Public Health Vector ControlCertain licensed operators apply this ingredient in targeted vector control campaigns, predominantly in enclosed or peri-domestic environments where other insecticides may not provide sustained effects. It features in the production of residual sprays and vector control powders, integrated under strict monitoring within batch mixing and packaging lines, ensuring accurate dose consistency for field deployment by municipal authorities. Industry compliance standards
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4. Soil Treatment for Agriculture and ForestrySoil-treatment specialists employ this compound to manage persistent soil-borne insect and nematode pests in cash crop and plantation scenarios where low-dose, long-acting control aligns with integrated pest management schedules. Input at early-stage field preparation allows uniform distribution before planting, with GPS-guided machinery dispersing precise quantities to ensure compliance with environmental load and crop safety guidelines. Industry compliance standards
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Every production batch of Γ-(1,2,4,5/3,6)-hexachlorocyclohexane, often referenced in scientific literature for its unique structural pattern, draws upon decades of hands-on chemical synthesis work in this facility. Our plant has evolved with ongoing technology upgrades, allowing us not only to reach higher purities but to efficiently monitor isomer distribution in the final product. Years of experience in handling the six chlorine substituent arrangements on the cyclohexane ring taught our team the subtle chemical behaviors that small configuration changes induce—especially between the gamma form we focus on here and other common HCH variants.
What truly sets this isomer apart comes down to both its molecular geometry and the way it interacts under standard application conditions. Labs and industrial end users have long noticed how this configuration—created by chlorine occupying the 1,2,4,5 or 3,6 positions—shapes both reactivity and stability. Our reactors are specifically tuned to promote the correct placement, using careful temperature and catalyst controls during the chlorination of benzene or cyclohexane. By consistently optimizing our growth medium and separation steps, we achieve reliable outcomes, which clients trust for critical research and process applications.
Chemical synthesis does not forgive shortcuts, so our focus remains squarely on purity and reproducibility. Each lot comes with laboratory-verified assay results, demonstrating the percentage of the target isomer and any residuals. Our particular process reduces related isomers to trace amounts, though full exclusion proves challenging in any industrial setting. Routinely, our analysis confirms gamma content meeting or exceeding industry thresholds for scientific experimentation and industrial pilot-testing alike.
Moisture and acidity, two factors known to influence storage as well as reactivity, stay tightly managed. Our packaging lines utilize inert gas purges wherever feasible, especially for orders requiring longer transit or shelf life. Over the years, lessons from earlier, less controlled eras led us to place a premium on safe, airtight drums and lined vessels which maintain the chemical integrity of each shipment up to the point of use.
Many clients approach us with the requirement for an isomer-pure supply of hexachlorocyclohexane targets, primarily for analytical chemistry, advanced material research, or as an intermediate in complex synthesis routes. The specific gamma form discussed here has shown distinct performance in controlled chemical reactions. Its substitution pattern brings not only higher crystallinity but also a more predictable melting profile, which proves valuable when solid-state purity influences downstream process outcomes.
In process engineering, particularly in studies involving organochlorine compounds, the gamma pattern can impact kinetics, solubility in standard non-polar solvents, and long-term stability under various ambient conditions. Our technical expertise enables clients to plan scaling strategies, as the isomer’s reactivity profile supports both laboratory-scale trials and pilot-scale implementation. We often field questions around compatibility, as operators seek to understand how the isomer’s unique features translate to real-world outcomes in their industrial settings.
Hexachlorocyclohexane exists in several stereoisomeric forms, with the alpha, beta, delta, epsilon, and gamma configurations each exhibiting distinct chemical behaviors. Drawing from years inside the reactor, the refinement of our gamma-flavored product hinges on process precision. Each isomer responds differently to temperature, solvent, and pressure; the gamma form’s symmetry and spatial arrangement give it a distinct interaction profile with both organic matrices and catalytic systems.
From a manufacturing standpoint, managing the balance of isomers requires robust reaction monitoring and deep knowledge of the chlorination mechanism. The gamma isomer, favored for its persistence and stability, supports end uses not well served by other HCH forms. For instance, beta is more commonly associated with environmental persistence and complex decomposition paths. The gamma pattern, fostered in a controlled system, enables our company to meet specification targets faster and more dependably, a consistency routine blenders and formulation scientists value for risk mitigation and process planning.
The periodic challenges—oscillations in yield, reaction mixture complexity, or changing regulatory guidelines—have all informed the way we approach our batch documentation, operator training, and maintenance scheduling. In the early days, achieving precise gamma isomer selectivity remained an elusive goal, leading to rounds of product that failed end-use testing for analytical purity. Feedback from our clients, especially those in research and pilot plant management, guided improvements to our solvent recycling, temperature gradient programming, and inline analytical checks.
Sustained investment in pilot unit upgrades and online infrared spectroscopy monitoring allowed tighter process windows. The move toward digital process logs over pen-and-paper batch books improved traceability, allowing researchers to easily correlate observed product properties with process tweaks. Our technical group continues to interact directly with purchasers, fielding specialized requests that shape further production improvements.
Long experience in manufacturing organochlorine compounds demands awareness not only of reaction hazards, but also the environmental impact. Our company worked proactively with local and national regulatory bodies to develop safe waste handling streams. After years of solvent emissions monitoring, our engineers implemented energy-efficient scrubber units on stack exhausts, capturing any trace isomer emissions. Legacy lessons about the persistence of chlorinated organics in soil and water guide our containment and remediation investments.
As operators, chemists, and engineers, we enforce strict entry policies to production areas, including personal monitoring devices and routine medical checkups. Our emergency response framework, established after a historical process upset, informs constant safety drills and chemical storage discipline. Even after the process steps out of our doors, we work with clients on proper disposal, transportation, and labeling, aiming for stewardship practices that keep communities and ecosystems safe.
Chemical industry regulation has evolved, particularly around hexachlorocyclohexane derivatives. Rules governing labeling, storage, and use differ across regions, with some requiring enhanced documentation, purity proofs, and tracking of end use. We adapted by upgrading record-keeping and providing detailed Certificates of Analysis with every outbound shipment. In some jurisdictions, additional reporting steps and notification protocols have been mandated—requiring digital trace files back to the raw ingredients, which our system supports as a matter of standard practice.
Understanding the compliance landscape comes from years on the ground, attending working groups, and proactively updating plant procedures—not as a burden, but as a way to stay trusted by both public authorities and industry peers. For partners requiring documented compliance to international treaties, we integrate supplementary inspection steps and audited test methods, established through collaboration with accredited third-party labs.
Scientific discovery never rests. While the fundamental structure of Γ-(1,2,4,5/3,6)-hexachlorocyclohexane persists, research pushes for higher-purity materials, greater yields, and reduced energy input. Our R&D division seeks not only to maintain present batch consistency but to incrementally lower process carbon footprint and input chemical toxicity. A portion of each year’s budget goes toward collaborative research with external institutes, verifying subtle shifts in reactivity when adjusting process variables or precursor sources.
As laboratory demands become more stringent, we experiment with advanced distillation setups, improved real-time analytics, and alternative solvent options that minimize downstream waste. Field feedback, especially from advanced molecular research applications, guides this cycle of innovation. Our willingness to open our process up to scrutiny means new analytical tools and predictive modeling algorithms can be rapidly pressed into service, replacing legacy practices that worked on a smaller, less-regulated scale.
When production chemists or purchasing leads reach out to us, they benefit from a direct line to the people running reactors, not a nebulous sales channel. Our team has fielded questions from academic groups about batch-to-batch reproducibility and from process engineers concerned over residual solvent profiles. These two-way conversations have sharpened both our technical documentation and process methodology. Even seemingly small details—ambient light precautions during storage, or how to properly re-seal drums after sampling—get handed down from senior operators to our technical service contacts, ensuring knowledge is shared between plant and lab.
Formal complaints or product queries receive fast, detailed answers, often running to multiple pages complete with chromatographs, process logs, and adjustment recommendations. Over time, we have kept up technical bulletins on emerging application notes, sending these to clients once new findings or upgraded process metrics become available.
The chemical landscape remains in flux, with market demand swinging between laboratory-grade, research-purity supplies and broader industrial quantities. We learned that being able to adapt packing sizes, documentation, and delivery timetables means more than any set-and-forget logistic platform. The facility was built to flex between kilogram-scale and multiton output, making sure we can suit everything from university research projects to corporate pilot plant runs.
Production planning now revolves around collaborative forecasting, with team leads listening to clients’ future plans, then adjusting our own raw material contracts and shift rotations to match. COVID-19 disruptions and raw material bottlenecks drove home the value of stable local sourcing, secondary suppliers, and robust contingency inventories. Our plant’s foundation continues to support growing needs, both in physical infrastructure and in the knowledge our personnel bring to bear on new challenges.
Stewardship runs deeper than just process management. Our company’s longevity in the HCH sector comes from a culture of openness about both strengths and areas for improvement. At industry roundtables and after-site audits, we openly share data on process emissions, chemical losses, or batch yield variances. This transparency not only builds customer trust but sharpens our internal drive to do better. End users know, when buying directly from us, that process risks, improvement steps, and limitations will be spelled out openly, not glossed over or withheld for marketing reasons.
Our senior technical advisors have run every piece of equipment we own, from glass-tubing pilot rigs to today’s fully contained, computer-controlled chlorination vessels. This direct experience shapes every technical data sheet, shipment, and post-sale inquiry response. It isn’t about hiding behind abstract process assurances—it’s about relying on what our own people have proved works, week after week, in a real industrial environment.
Producing organochlorine compounds like Γ-(1,2,4,5/3,6)-hexachlorocyclohexane brings with it obligations, especially as the world moves toward greater environmental scrutiny. Addressing patchy wastewater handling, minimizing solvent loss, and exploring new green chemistry alternatives have grown in priority each year. We dedicate staff time to reviewing advances in catalyst recycling and non-toxic solvent replacements, aiming to maintain product quality above regulatory requirements while shrinking our environmental impact.
This ongoing push extends beyond plant gates. We sponsor workshops on chemical stewardship, participate in industry clean-up drives, and contribute technical knowledge to academic studies tracing the environmental fate of chlorinated cyclohexanes. Investments in real-time release monitoring and advanced secondary containment mean the future of this facility aligns with both community and client expectations around safety and sustainability.
True strength comes from the relationships built between manufacturer and end user. Our company’s long-standing place in the supply chain for this specific hexachlorocyclohexane isomer stands as a testament to decades of successful, trust-based collaboration. Custom requests, repeat business, and referral-driven partnerships shaped the product as much as any internal R&D advance. We actively seek out feedback, passing valuable information back to plant operations, allowing each innovation cycle to rest upon both scientific rigor and real-world application insight.
The chemical industry future will be shaped by those willing to embrace both transparency and technical challenge. We measure our success not by shipment tonnage alone, but by the trust our clients place in our team, the environmental safeguards we maintain, and the scientific breakthroughs our products enable. Our doors remain open to partnership, ongoing technical conversation, and continual improvement. This is our commitment as direct manufacturers of Γ-(1,2,4,5/3,6)-hexachlorocyclohexane.