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2,2-Dimethyl-3-(2-Methylpropyl)Cyclopropanecarboxylic Acid P-(Methoxymethyl)Benzyl Ester

    • Product Name 2,2-Dimethyl-3-(2-Methylpropyl)Cyclopropanecarboxylic Acid P-(Methoxymethyl)Benzyl Ester
    • Alias Permethrin
    • Einecs 262-179-4
    • 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
    VTB
    Specifications

    HS Code

    854853

    Chemical Name 2,2-Dimethyl-3-(2-Methylpropyl)Cyclopropanecarboxylic Acid P-(Methoxymethyl)Benzyl Ester
    Molecular Formula C20H28O3
    Molecular Weight 316.44 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point Estimated ~160-170°C at reduced pressure
    Solubility Insoluble in water, soluble in organic solvents (e.g., ethanol, acetone)
    Density Approximately 1.01 g/cm³ (estimated)
    Cas Number 261939-66-2
    Purity Typically ≥98% (varies by supplier)
    Storage Conditions Store in a cool, dry place, tightly closed container
    Flash Point >100°C (estimated)

    As an accredited 2,2-Dimethyl-3-(2-Methylpropyl)Cyclopropanecarboxylic Acid P-(Methoxymethyl)Benzyl Ester factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The chemical is packaged in a sealed 100g amber glass bottle with safety labeling, tamper-evident cap, and hazard warnings clearly displayed.
    Shipping This chemical is shipped in tightly sealed containers, protected from light and moisture, and packaged according to regulatory guidelines for hazardous materials. Temperature control is maintained if required. Proper labeling with handling and hazard information ensures safe transport. Shipping complies with relevant national and international regulations such as IATA, IMDG, and DOT.
    Storage Store 2,2-Dimethyl-3-(2-Methylpropyl)cyclopropanecarboxylic acid p-(methoxymethyl)benzyl ester in a tightly sealed container, away from direct sunlight, moisture, and sources of ignition. Keep in a cool, dry, and well-ventilated area, preferably under an inert atmosphere. Avoid contact with acids, bases, and oxidizing agents. Ensure proper labeling and restrict access to trained personnel only.
    Application of 2,2-Dimethyl-3-(2-Methylpropyl)Cyclopropanecarboxylic Acid P-(Methoxymethyl)Benzyl Ester

    Applications of 2,2-Dimethyl-3-(2-Methylpropyl)Cyclopropanecarboxylic Acid P-(Methoxymethyl)Benzyl Ester in Industrial Manufacturing

    This specialized ester serves as a core intermediate for several high-value industrial sectors. Manufactured at our facility under strict quality systems, it ensures reliable performance in sensitive downstream processes. Below we outline major application segments where our product supports consistency and compliance in demanding production environments.

    1. Pyrethroid Agrochemical Synthesis

    This compound functions as an essential building block in the production of advanced synthetic pyrethroid insecticides. We supply formulators and technical manufacturers who require tight control over diastereomer distribution and impurity profiles. Its use helps optimize esterification stages during the synthesis of type II pyrethroids, where consistent input purity directly impacts final technical material yield and regulatory conformance. Our process management guarantees traceability from batch release to integration in the agrochemical synthesis chain.

    Industry compliance standards

    • FAO/WHO Technical Grade Specifications for Pesticide Ingredients
    • REACH registration of intermediates (EU Regulation 1907/2006)
    • China GB/T 20786-2006 for pesticide technical materials
    • ISO 9001:2015 Quality Management System Certification

    Typical usage ratio

    • Employed at 10-18% w/w relative to active pyrethroid technical base. Exact dosage determined by intended insecticide molecular design and impurity allocation by QC/QA teams.

    Downstream process integration

    • Charged as a coupling partner during the late-stage esterification step after cyclopropanecarboxylic acid activation
    • Integration point for downstream chlorination/fluorination when targeting specific pyrethroid subtypes

    Final product types

    • Technical grade bifenthrin, cyhalothrin, lambda-cyhalothrin
    • Emulsifiable concentrates, suspension concentrates for crop protection
    • Public health and vector control insecticide formulations

    2. Fine Chemicals for Veterinary Ectoparasiticide Formulation

    Our material plays a central role in the synthesis of active ingredients for animal ectoparasiticide products, particularly those aimed at companion animal and livestock segments. Regulatory oversight in this application requires close monitoring of trace contaminants and process residuals. Our in-house analytical protocols and validated purification routes ensure suitability for veterinary technical batch production, aiding pharmaceutical companies in meeting pharmacopeial and veterinary health authority demands.

    Industry compliance standards

    • Ph. Eur. (European Pharmacopoeia) for veterinary actives
    • VICH guidelines for veterinary pharmaceutical manufacturing
    • GMP (Good Manufacturing Practice) for active substance production (EU, US FDA 21 CFR Part 211)
    • China Ministry of Agriculture veterinary drug registration

    Typical usage ratio

    • Used at 7-12% w/w in multi-step synthesis toward ectoparasiticide actives, with the ratio optimized based on impurity rejection and yield requirement during scale-up.

    Downstream process integration

    • Introduced post-initial cyclopropanecarboxylate core formation, prior to halogenation and formulation into technical concentrate
    • Participates as an ester donor under controlled temperature, pressure, and catalyst supervision by veterinary chemists

    Final product types

    • Spot-on and pour-on veterinary formulations for cattle, sheep, and domestic pets
    • Active ingredient bases for tablets, injectables, and external sprays targeting lice, mites, ticks, and fleas

    3. Industrial Synthesis of Household Insecticide Actives

    This ester is a reliable intermediate for the manufacturing of high-efficacy insecticidal actives incorporated in domestic use products, such as aerosol sprays and electrical liquid vaporisers. Our industrial customers depend on its controlled reactivity to maximize process yield and maintain batch reproducibility under HACCP-guided consumer product chemical frameworks. Validated analytical support ensures supply chain transparency for downstream producers seeking to meet consumer safety regulations.

    Industry compliance standards

    • U.S. EPA 40 CFR part 158 pesticide requirements
    • ISO 22716 (Cosmetic GMP) for household-use actives
    • Japan Food Chemical Research Foundation (FCRF) standards for home insect control substances
    • Korea KFDA guidelines for in-home biocidal chemicals

    Typical usage ratio

    • Adopted in the range of 8-14% w/w relative to final insecticidal ester intermediate. Dosage control refined according to specific vapor pressure and volatility KPIs set by customer product development teams.

    Downstream process integration

    • Entry during technical concentrate synthesis, blending with auxiliary solvents and stabilizers prior to final actives formulation
    • Incorporation into microencapsulated or slow-release matrixes depending on intended consumer end use

    Final product types

    • Aerosol insect sprays
    • Liquid vaporiser actives for electrical plug-in applications
    • Impregnated mosquito coils and strips

    4. Specialty Intermediates for Textile Finishing Chemicals

    Downstream textile technology companies utilize our raw material in the development of insect-repellent finishing agents for technical fabrics and apparel. Rigorous purity benchmarks ensure compatibility with water- and solvent-based application systems, while full traceability supports fabric mills seeking supply chain transparency for global apparel export certification. Our engineering collaboration supports precise integration into emulsion systems for both continuous and batch padding processes.

    Industry compliance standards

    • OEKO-TEX® Standard 100 (Product Class I-IV) textile chemical requirements
    • Registration, Evaluation, Authorisation and Restriction of Chemicals (REACH, EU)
    • ZDHC MRSL (Zero Discharge of Hazardous Chemicals - Manufacturing Restricted Substances List)
    • ISO 14001 environmental management system for textile auxiliaries

    Typical usage ratio

    • Utilized at loadings between 0.3-1.5% w/w of total finishing bath. Adjustments based on substrate fabric composition and target repellency ISO 1839 test results.

    Downstream process integration

    • Added post-emulsification in the synthesis of water-dispersible repellency agents
    • Surface-fixation onto fibers post-drying or curing stages using controlled padding, spraying, or exhaustion techniques

    Final product types

    • Outdoor apparel and technical uniform fabrics with integrated insect repellent function
    • Military textiles requiring certified anti-insect performance
    • Home furnishing textiles for export markets
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    Certification & Compliance
    More Introduction

    Understanding 2,2-Dimethyl-3-(2-Methylpropyl)Cyclopropanecarboxylic Acid P-(Methoxymethyl)Benzyl Ester: More than a Name

    Years on the production line have given us a solid appreciation for chemicals that carry both complexity and reliability. Ask anyone who has spent long hours at the reactors and distillation columns, and they will remember each product not by its intimidating chemical name, but by what it makes possible. In our catalog, 2,2-Dimethyl-3-(2-Methylpropyl)Cyclopropanecarboxylic Acid P-(Methoxymethyl)Benzyl Ester stands out as a marker of our commitment to precision, consistency, and honest workmanship. Colleagues in the industry know this molecule often as a specialty pyrethroid intermediate, demanded for its role in bringing modern crop protection chemistry to life.

    Years of Development, Justified by Reliable Performance

    Getting our process right did not happen overnight. It took years of refinement—years marked by equipment upgrades, raw material scrutiny, batch failures, and strict monitoring before we could claim mastery over this molecule’s synthesis. The result is a product that reflects genuine understanding, not just formulaic repetition. Our team worked through hundreds of reaction runs, refining parameters like temperature control, solvent quality, and real-time monitoring to ensure consistent stereochemistry and impurity profiles.

    Industry experience tells us that slight variations in the production route, even as subtle as solvent grade or agitation rate, can lead to decreased purity or unwanted byproducts. Teams who have tried shortcuts learned this the hard way—yields suffered, and downstream users returned with structure-activity problems. Our approach focuses on high-purity output, backed up not just by COA paperwork but by transparent batch tracking and routine in-lab verification.

    Specifications that Go Beyond Paper

    Dealers may present lists of purity percentages and assay values, but for a manufacturer, each number ties back to a real process check. Our typical batches deliver a minimum purity over 98%, matching or exceeding the standards necessary for downstream chemical synthesis. We run GC and HPLC with internal controls, tracking even trace impurities that tend to ride along with pyrethroid intermediates. This matters because uncontrolled byproducts—sometimes as minor as 0.1%—can carry through into final formulations, reducing their overall performance or creating longer-term regulatory headaches.

    By keeping water content, acid value, and residual solvents far below market-acceptable levels, we reduce risks for our customer’s reactors. Experience on the plant floor has shown even minor moisture pickup during storage—often from poorly sealed drums—can set off hydrolysis and cause downstream issues. This is why our team emphasizes moisture control, right down to regular checks of our drum liners and valve seals.

    Usage Rooted in Modern Agricultural Chemistry

    At its core, 2,2-Dimethyl-3-(2-Methylpropyl)Cyclopropanecarboxylic Acid P-(Methoxymethyl)Benzyl Ester fills a critical gap in the synthetic route for advanced pyrethroid crop protection agents. Years on the production floor have shown us how this molecule supports the global food supply chain. Downstream, formulators count on this ester to introduce the cyclopropane core into insecticidal actives. Every batch we deliver eventually translates to more reliable crop yields, improved pest resistance, and easier compliance with export standards across continents.

    Decades of synthetic chemistry advances inform our workflow. Each process step—from careful handling of the cyclopropane ring intermediates, to coupling and esterification—demands chemical intuition and quick troubleshooting. Every person on our team knows that a bottleneck in production doesn’t just slow us down; it raises costs for agricultural producers and carries consequences for the entire downstream value chain.

    We work directly with global crop protection companies, supplying this ester for integration in flagship insecticide lines. The performance of the finished product often depends on our accuracy. Formulators, facing unpredictable regulatory demands and market shifts, expect a product that delivers consistent physical and chemical properties. If we let particle sizing or melting point drift by even a few percentage points, that could spell trouble for an entire production run thousands of kilometers away.

    What Really Sets This Product Apart

    A simple purity figure or batch certificate can’t tell the full story—the real difference comes from details only those who manufacture at scale learn to respect. Most suppliers on the open market either purchase intermediates or run short-batch syntheses without investing in long-term process reliability. We control every step, from raw material quality checks to final packaging, inside a single facility. Our chemists run pilot quantities alongside commercial runs, keeping close tabs on each change in process conditions.

    Over years, this has equipped us to respond rapidly to specification changes or sudden shifts in feedstock quality, without offloading risk onto downstream customers. In one instance, a widely used solvent supplier altered their manufacturing procedure, unnoticed by some competitors—resulting in a spate of rejected batches across the region. We spotted the impurity on our incoming raw material QC panel, traced the source rapidly, and re-qualified our stock. By not leaving quality to chance, our partners stayed insulated from costly downstream remediation.

    We also draw from continuous feedback loops—customers often send back detailed field reports on efficacy, handling, or shelf life of their own finished goods. This two-way dialogue closes the loop between lab scale excellence and industrial performance, so that each batch heading out bears the weight of practical, real-world knowledge.

    Real Production, Not Hype

    Chemicals of this complexity aren’t mere SKU numbers—they’re the result of hands-on learning, investment in reactor technology, and a refusal to take shortcuts. Each batch passes through multiple QC gates, with batch samples archived for multi-year traceability.

    For us, documentation is more than box-ticking. Those who have witnessed a downstream process deviation, traced back to an outlier raw material, learn quickly that producing genuine value means being able to provide full transparency, on demand. When regulators or auditors inquire about a specific impurity profile, we don’t offer vague assurances—we show instrument scans and logbooks, right from the original batch run to finished packaging.

    We’ve invested in worker safety, process automation, and clean technology, not only for regulatory compliance, but because years of experience have shown that robust processes protect both the workforce and the end-consumer. Explosions or contamination events have no place in modern chemical manufacturing. Every improvement in leak detection, temperature monitoring, or waste minimization draws from actual incident data and ongoing audit findings.

    Long-Term Reliability for the Changing Market

    Markets never sit still. Every year brings new restrictions, new analytical expectations, and sudden swings in demand cycles, whether from weather-altered harvest expectations or new regulatory registrations in developed nations. Our internal systems track not only changing legislation, but trends in required traceability and impurity screening.

    This allows us to adapt production scheduling and output grades without leaving customers in the dark. We routinely update specifications to stay ahead of requirements, instead of being caught out of compliance. In practice, this translates to real supply stability. During a recent region-wide supply chain squeeze, we held buffer stocks in humidity-controlled storage, fulfilling contracts on time while secondary providers ran out—and our customers didn’t face lost production days or unplanned reformulations.

    We don’t believe in "one size fits all" assurances. International clients, facing distinct regulatory hurdles in Europe, the US, South America, and Asia, appreciate a partner who can map product details to specific analytical and reporting expectations. This means adjusting impurity thresholds, particle sizing, or even packaging types—based on direct experience and feedback from real field conditions.

    Differences, Not Just in Chemistry

    Anyone reviewing pyrethroid intermediates quickly notices similarities in their core cyclopropane structures. The difference lies in side chain design and trace impurity management. We know from process data that the p-(Methoxymethyl)benzyl ester group adds both physical and chemical resilience to finished molecules—boosting resistance to base hydrolysis and contributing to field persistence after formulation. Customers using less selective ester analogs have reported shorter product lifespans and incompatibility in certain solvent systems.

    Our process emphasizes stereochemical consistency, so that downstream manufacturers get reliable, repeatable performance in each batch. This is where years of operator training and batch-to-batch experience play a greater role than any line item on a specification sheet.

    From our vantage point, the difference between our product and generic equivalents comes directly from the effort spent on process analytics, purity tracking, and field feedback. We don't sell “commodity” versions or cut corners to chase quick orders. Our facility is set up to produce commercial scale batches only after pilot plant validation establishes reproducibility—not after a few beaker-scale demonstrations. This may mean longer lead times or more stringent incoming raw material requirements, but this focus protects both our process and our customer’s finished goods.

    Supporting Sustainability and Responsible Chemistry

    Experience has also taught us that modern chemical manufacturing must look beyond immediate product specifications. We track our raw material sourcing, energy use, and waste handling down to regular internal and third-party audits. This isn’t only to check regulatory boxes—chemical production sits at the intersection of environmental stewardship and economic necessity. Pyrethroid intermediates have come under increased scrutiny for impact on non-target organisms and environmental fate. Our team works closely with upstream and downstream partners to refine synthetic routes that minimize byproducts and reduce solvent usage.

    The journey from basic hydrocarbon feedstocks to advanced esters leaves room for small improvements that compound over time. Installing real-time emission controls, recycling solvents, and using process water treatment systems minimizes our environmental footprint while keeping costs predictable over long production cycles.

    Chemistry isn’t just reactions—it’s accountability. Our track record stands based on years of delivering not just consistent molecules, but real commitment to responsible growth.

    Problems We Have Solved—And Those That Remain

    A manufacturer’s reputation is only as strong as its ability to fix mistakes and anticipate problems before they impact customers. We have faced logistic disruptions, equipment faults, and raw material shortages. No process runs flawlessly forever. What counts is transparency with those who rely on our product. In one instance, a rare but troublesome side reaction cropped up when storage conditions at a partner’s warehouse deviated from documented norms during a heatwave. We worked alongside their technical team to adjust packaging, improve insulation, and recalibrate their onsite QC to catch potential degradation before it entered downstream synthesis.

    Regulations on maximum residue limits (MRLs) for finished products continue to tighten worldwide. This pushes us to go beyond what was once considered “market purity.” We conduct routine batch re-analysis with updated state-of-the-art analytical standards, long after product leaves our gates, so customers aren’t blindsided by imported analytical surprises. This dedication means extra time, extra testing, and honest reporting—building confidence borne of repeated reliability.

    We remain vigilant for persistent challenges, from potential disruptions in feedstock supply chains to the ever-changing landscape of global regulatory compliance. While we can’t foresee every market fluctuation, decades of experience help us maintain open lines of communication and real contingency planning—so customers can plan without guesswork.

    Why We Focus on Real Quality, Not Sales Pitches

    Years ago, we saw too many traders and distributors enter the market with generic promises. They offered faster lead times, lower prices, and “global reach,” but were quick to disappear when process deviations or product recalls arose. That kind of manufacturing leaves downstream users exposed, without support or traceability.

    Manufacturing specialty esters like 2,2-Dimethyl-3-(2-Methylpropyl)Cyclopropanecarboxylic Acid P-(Methoxymethyl)Benzyl Ester calls for a different philosophy. Every reactor operator, process chemist, and QC analyst recognizes that our product is more than a line on a spreadsheet—it’s a measured result of experience, investment, and respect for the end-use. Each shipment is shaped by lessons learned from the ground up, not just from technical literature or customer handbooks.

    We don’t chase every price-based inquiry or attempt to win business through superficial numbers on paper. Instead, we build partnerships with companies that value reliability, long-term supply stability, and a willingness to invest in mutual improvement. This isn’t nostalgia—it’s the business sense borne from years of hard-earned trust.

    Our Promise, Based on Generations of Chemical Work

    The legacy we aim to build rests on quality, transparency, and a willingness to adapt to a changing world—qualities every strong manufacturer grows to cherish. We keep our doors open for audits, field customer inquiries with real technical staff, and share our process improvements, not because we are required to, but because every lesson learned strengthens both our product and our partnerships.

    Customers who have outgrown generic suppliers look for something deeper than a product code or a purity certificate—they look for assurance that the chemistry they receive is the start of a performance chain, not the weak link. Our investment in process analytics, people, and sustainability reflects these priorities, turning a difficult chemical name into a foundation for lasting value.

    Those who seek understanding, consistency, and support beyond the standard contract will find us ready for the long haul—still learning, still improving, and always putting real chemistry first.