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2-Ethyl-6-Methylphenyl Isothiocyanate

    • Product Name 2-Ethyl-6-Methylphenyl Isothiocyanate
    • Alias EMPI
    • Einecs 246-409-3
    • 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

    246786

    Chemicalname 2-Ethyl-6-Methylphenyl Isothiocyanate
    Casnumber 2117-75-5
    Molecularformula C10H11NS
    Molecularweight 177.27 g/mol
    Appearance Yellow to brown liquid
    Boilingpoint 120-124°C at 1 mmHg
    Density 1.078 g/cm³
    Solubility Insoluble in water, soluble in organic solvents
    Refractiveindex 1.617 (at 20°C)
    Flashpoint 124°C
    Purity Typically ≥97%
    Synonyms 2-Ethyl-6-Methylphenylisothiocyanate
    Storagetemperature Store at 2-8°C

    As an accredited 2-Ethyl-6-Methylphenyl Isothiocyanate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Brown glass bottle labeled "2-Ethyl-6-Methylphenyl Isothiocyanate, 25 g," tightly sealed with a screw cap, hazard symbols visible.
    Shipping 2-Ethyl-6-Methylphenyl Isothiocyanate is shipped in tightly sealed containers, protected from light and moisture. It should be handled with care, using appropriate PPE, and transported according to relevant chemical and hazardous material regulations. Ensure proper labeling and documentation. Store in a cool, well-ventilated area, away from incompatible substances.
    Storage 2-Ethyl-6-Methylphenyl Isothiocyanate should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from sources of ignition and incompatible materials such as strong oxidizers and acids. Protect from light and moisture. Ensure proper labeling and restrict access to trained personnel. Follow all relevant local, state, and federal regulations for chemical storage and handling.
    Application of 2-Ethyl-6-Methylphenyl Isothiocyanate

    Applications of 2-Ethyl-6-Methylphenyl Isothiocyanate in Industrial Manufacturing

    2-Ethyl-6-Methylphenyl Isothiocyanate is a specialized intermediate that supports advanced synthesis in multiple downstream industrial segments, including agrochemicals, pharmaceutical APIs, specialty dyes, and aroma chemicals. As the original manufacturer, we supply this raw material to global formulators requiring strict consistency, regulatory compliance, and documented supply chain traceability. Our technical team works directly with customers to support qualification criteria, process audits, and long-term sourcing stability for integration in regulated manufacturing environments.

    1. Agrochemical Active Ingredient Synthesis

    Leading agrochemical producers use this compound as a building block in the synthesis of selective herbicide and fungicide molecules. The aromatic isothiocyanate group introduces stability and specificity for target applications within field crop protection, where stringent residue and toxicology testing apply. Process engineers optimize batch input based on desired molecular design and activity spectrum. Our material supports rapid scale-up and high lot-to-lot reproducibility required for validated registration dossiers and downstream formulation.

    Industry compliance standards

    • OECD Test Guidelines for Pesticide Active Ingredients
    • FAO/WHO Codex Alimentarius Residue Standards
    • ISO 9001:2015 for Quality Management Systems
    • REACH Registration (EC No. 1907/2006) for supply in the EU market

    Typical usage ratio

    • 3–10% by weight in synthesis reaction mass; process engineers refine input depending on final molecule yield and structural conversion efficiencies.

    Downstream process integration

    • Introduced during key cyclization or thiourea coupling steps under controlled temperature and agitation, following initial halogenation or amination steps.

    Final product types

    • Selective post-emergence herbicides
    • Fungicidal crop protection agents
    • Seed treatment actives
    • Custom compound screening libraries for activity evaluation

    2. Pharmaceutical Intermediates Manufacturing

    Pharmaceutical manufacturers integrate this raw material in multi-step synthetic processes for key isothiocyanate-containing intermediates leading to non-steroidal anti-inflammatory drugs (NSAIDs) and certain chemotherapeutic APIs. Production requires full batch tracking, analytical release per compendial and ICH standards, and validated cleaning protocols to prevent cross-contamination. Raw input ratios and reaction monitoring rely on customer-specific route design and impurity profile targets driven by regulatory filings.

    Industry compliance standards

    • EU GMP Part II for Active Pharmaceutical Ingredient Production
    • ICH Q7 Good Manufacturing Practice Guide
    • 21 CFR Part 211 cGMP Regulations (FDA)
    • Ph. Eur., USP, or JP monographs for related substances analysis

    Typical usage ratio

    • 1–6% by molar ratio in condensation or thiolation steps, adjusted for scalability and downstream purification yield.

    Downstream process integration

    • Added to reactor following acid chloride or amine precursor loading, under inert atmosphere and controlled exotherm mitigation protocols.

    Final product types

    • Active pharmaceutical intermediates for anti-inflammatory oral drugs
    • Precursors for cytostatic agent synthesis
    • Reference standards for process analytical validation
    • Custom building blocks distributed to R&D API sites

    3. Specialty Dye and Pigment Synthesis

    Industrial colorant formulators employ 2-Ethyl-6-Methylphenyl Isothiocyanate to introduce thio-functionalized aromatic units during pigment and dye molecule assembly. The unique electronic effects achieved enable stable chromophores for textile dyes and high-temperature resistant pigments. Full supplier data package ensures compatibility with REACH requirements and end-use product safety analytics.

    Industry compliance standards

    • EN 71-3 Toy Safety Standard for Colorants
    • REACH Annex XVII for Use in Colorants
    • ISO 14001 for Environmental Management in Dye Manufacturing
    • ZDHC MRSL for textile chemicals compliance

    Typical usage ratio

    • 0.5–4% by weight in pigment synthesis, with exact proportioning guided by desired tinctorial strength and stability during downstream polymer integration.

    Downstream process integration

    • Utilized during aromatic coupling phase with diazo or aniline derivatives under controlled pH levels, immediately preceding pigment isolation and drying.

    Final product types

    • Disperse and reactive textile dyes
    • High-temperature plastics colorants
    • Inorganic-organic hybrid pigment blends
    • Specialty inks for industrial printing systems

    4. Aroma Chemical Synthesis for Flavor and Fragrance

    Aroma chemical producers use our isothiocyanate intermediate for molecular modification in the production of sulfur-containing notes and complex aromatic bases. Focused mainly in fragrance applications, strict olfactory purity and regulatory documentation define the input parameters. Our production facilities support full material disclosure, batch purity certification, and trace contaminant analytics to meet EU and US requirements for use in consumer fragrance compounds.

    Industry compliance standards

    • IFRA (International Fragrance Association) Standards
    • EU Regulation (EC) No 1223/2009 on Cosmetic Products
    • US FDA 21 CFR 182 Substances Generally Recognized as Safe (GRAS)
    • Good Manufacturing Practices per ISO 22716

    Typical usage ratio

    • 0.1–2% by weight in targeted synthetic reactions; dosage varies with desired sulfur aromatic concentration in final fragrance base.

    Downstream process integration

    • Combined during thiolation or subsequent oxidation stages, post initial aldehyde or ketone precursor modification, followed by distillation and composition blending for formulation.

    Final product types

    • Sulfurous and green-note perfume base stocks
    • Artificial flavoring agents for industrial food aroma applications
    • Fine fragrance ingredients for luxury personal care
    • Complex aromatic blends for air care and home products
    Free Quote

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    Certification & Compliance
    More Introduction

    Understanding 2-Ethyl-6-Methylphenyl Isothiocyanate: Direct from the Manufacturer’s Floor

    The Substance and Its Unique Makeup

    As a chemical manufacturer with years spent in the trenches of compound synthesis and process design, I’ve seen the qualities that set 2-Ethyl-6-Methylphenyl Isothiocyanate apart. Our product, produced under strict process control and with a focus on purity, offers a dependable option for those in need of a strong isothiocyanate with precise molecular behavior. We developed the process to yield consistent batches, each reflecting our experience in selecting starting materials and following reaction pathways that maximize quality while reducing the formation of contaminants.

    2-Ethyl-6-Methylphenyl Isothiocyanate stands out for its molecular structure, which combines the reactive isothiocyanate group with a substituted aromatic ring. The ethyl and methyl groups at the 2 and 6 positions bring changes to steric and electronic properties, affecting both reactivity and solubility. This particular arrangement makes the compound suitable for transformations that require selectivity. During production, we control both reaction temperature and timing closely, so we don’t wind up with undesired byproducts or unnecessary waste.

    What Sets It Apart from Other Isothiocyanates

    It’s easy to lump all isothiocyanates together, but details matter in practice. Years ago, we focused on phenyl isothiocyanate, a simple precursor with reliable performance in basic applications. Customers seeking finer control and more predictable results in synthesis asked for alternatives, pushing us to develop substituted versions such as 2-Ethyl-6-Methylphenyl Isothiocyanate. We learned, sometimes the hard way, that even minor molecular tweaks change the material’s melting point, odor, volatility, and the way it interacts with bases or nucleophiles.

    Other compounds in this family can behave in unpredictable ways when exposed to moisture or during long-term storage. Our process addresses these pain points through vacuum distillation, careful reagent selection, and small-batch processing. The result: a substance with reduced volatility compared to the unsubstituted kind, making it easier to handle and less prone to unwanted loss or decomposition.

    Application and User Experience

    Most of our clients come to us working in synthetic chemistry, pharmaceuticals, or specialty materials. They rely on 2-Ethyl-6-Methylphenyl Isothiocyanate to act as an intermediate or as a building block for more complex molecules. Researchers use it for introducing the isothiocyanate group into various substrates, taking advantage of its ability to form thioureas, dithiocarbamates, and other sulfur- or nitrogen-containing compounds under controlled conditions. The slightly larger and more hindered aromatic ring offers greater selectivity compared to more basic isothiocyanate reagents.

    Over years of collaboration, we've helped partners optimize routes by switching from simple phenyl analogs to this product, observing yields improve and byproduct profiles simplify. One group using it for small-molecule drug library generation found the compound's reactivity consistent enough to support scale-up from milligram to several-kilogram quantities, something that's trickier with more volatile or reactive analogs. We worked side-by-side with their teams, studying and resolving issues related to solubility and reactivity, and ultimately shortened total synthesis times thanks to the unique balance of reactivity and stability our material provides.

    Molecular Features and Handling Insights

    At a glance, 2-Ethyl-6-Methylphenyl Isothiocyanate seems straightforward, but handling and formulation practices tell a richer story. The bulk material presents as a clear to pale liquid at room temperature, which matters to those blending it into reactions or adding it to multi-step syntheses. Unlike some isothiocyanates that create strong, lingering odors or hazardous fumes, this one emits a more contained, manageable scent if handled properly. We built systems to minimize exposure—closed transfers, well-maintained fume hoods, and proper PPE are standard, but the product’s lower volatility cuts down the discomfort and risk.

    Users working with automated synthesis equipment have provided feedback: the compound’s physical properties make it less likely to clog dispensing heads or react prematurely with residual water in delivery lines. It takes fewer workarounds or troubleshooting steps, so project timelines stay intact. That comes from years spent tuning the distillation step, storing the material under nitrogen, and maintaining dryness at every point in the process. With these protocols embedded in manufacturing, users can set up reactions and walk away with greater confidence.

    Quality and Purity: The Manufacturer’s Commitment

    As a manufacturer rather than a reseller, we control every phase—from starting raw material qualification through reaction, purification, and final analysis. Every batch receives not only purity checks by HPLC and NMR, but also close scrutiny for trace-level side products that might escape typical quality screens. I’ve stood over the analytics bench myself, comparing spectra batch-to-batch to assure that what ships matches the highest standards we can meet.

    Over time, these routines have shaped a product that outperforms many generic alternatives in both shelf-life and day-to-day reproducibility. Research partners share stories of inconsistent lots purchased from bulk intermediaries, finding differences in melting behavior, color, and reactivity. We traced many such quality problems back to uncontrolled reaction conditions or improper storage—the sorts of headaches we engineered away by investing in purpose-built reactors and low-oxygen storage environments.

    We don't claim perfection—no real manufacturing process avoids variation entirely. But direct accountability helps: if an issue arises, clients reach chemists and engineers who made the compound, not a distant sales desk. We track raw material lots, operating parameters, and all major equipment maintenance on each batch, an approach that fosters trust and repeat business from customers in pharmaceuticals, materials science, and academic research.

    Regulatory and Safety Considerations

    Producing and providing specialty isothiocyanates requires diligence far beyond routine chemical manufacturing. Our familiarity with local and international regulations streamlines customer procurement and process planning. This compound falls under various handling and shipping classifications, often as a hazardous chemical—practical knowledge gained through years of frequent shipments to both regional and global partners. We advise our clients early on storage, transport, and handling based on regulations in their country and the known risks associated with isothiocyanate exposure.

    We've implemented in-house safety measures to protect workers and the compound itself. All materials pass through controlled storage, with environmental sensors and sealed containers to block moisture uptake or oxidation. Similarly, waste streams and process vents run through treatment trains designed for both worker safety and environmental compliance, reviewed regularly as standards evolve. Through open communication with procurement teams and lab managers, misunderstandings and delays drop, and researchers get what they need faster and with fewer regulatory hurdles.

    Connecting to Real-World Research and Development

    Few intermediates shape outcomes in research as decisively as isothiocyanates do. In the hands of organic chemists and process scientists, their behavior underpins drug candidate generation, production of agrochemicals, and discovery in polymer chemistry. By offering 2-Ethyl-6-Methylphenyl Isothiocyanate straight from the source, we support innovation directly—speeding cycles of design, test, and adjustment.

    Our own technical team maintains a feedback loop with customers, tuning our approach based on specific synthetic needs. One example involved the use of our product for ligand design in catalysis research. The research group struggled with inconsistent results using competitors’ batches. After discussing their protocols and reviewing the literature together, we homed in on storage and purity as the main culprits. Adjustments in batch size, bottling, and pre-delivery checks got their program moving and let them reproduce their data, a critical factor for publication and subsequent funding.

    In another instance, a pilot-scale production group needed kilogram quantities of isothiocyanate with minimal residual solvent. Our team scaled up production without a hitch, focusing on in-line solvent stripping techniques to keep levels far below published safety guidelines. Close process monitoring plus real-time analytics helped prevent costly rework and lot failures, showing our long-term commitment to both quality and customer timelines.

    Environmental Responsibility in Modern Synthesis

    Any chemical manufacturing process brings a responsibility to future generations and the land where we operate. We’ve seen how poorly managed waste, vented residues, or uncontrolled spillage can bring down projects and damage reputations. For every batch of 2-Ethyl-6-Methylphenyl Isothiocyanate, we monitor emissions and minimize use of harmful solvents by choosing reaction partners and work-up methods with reduced environmental burden. Solvent recovery, closed-loop recirculation, and careful energy management form the backbone of our daily operations.

    We approached the challenge of residual waste head-on by designing a multi-stage scrubber and active carbon capture setup for our vent lines. Over several iterations, we were able to reduce toxic byproducts both at our facility and downstream in our customer’s operations. Because we produce at sensible scales and never prioritize volume over safety, our process generates fewer emissions and easier-to-treat waste than older, bulk-focused methods still common in the trade.

    End-of-life stewardship matters as well. We provide technical guidance for recovery and reuse of spent material, sharing best practices learned from our own closed-loop pilot systems. We believe responsible stewardship brings both regulatory peace of mind and practical benefits for anyone working with sensitive, sulfur-containing isothiocyanates.

    Packaging, Transport, and Longevity

    We understand that packaging and transport decisions often shape the user’s experience as much as the chemistry itself. 2-Ethyl-6-Methylphenyl Isothiocyanate requires careful packaging solutions—chemical compatibility, secure seals, and options for both small-lot and bulk shipments. Our packaging selections draw on real-world shipping experience to prevent loss, contamination, and hazardous exposure.

    We use inert-gas purged glass bottles for laboratory-scale customers needing milligram to multigram quantities, ensuring stability during storage even over extended periods. For larger orders bound for process or scale-up use, we’ve built UN-rated drums and lined containers that block air, moisture, and physical shock. In the past, before implementing these packaging innovations, customers sometimes reported yellowing or loss of product strength after transit—a problem we’ve eliminated by continually redesigning seals and external barriers.

    Proper storage at the end destination also preserves potency. We include usage notes and recommended storage practices with every order. Those investing in our compound expect—and receive—material that maintains its profile over weeks and months of active research. Our relationships with global logistics partners help ensure quick customs clearance and responsible temperature monitoring, preventing temperature excursions that could harm the product’s stability.

    How We Approach Continuous Improvement

    Continuous improvement is more than a slogan here; it’s the baseline expectation for anyone who processes, tests, or ships 2-Ethyl-6-Methylphenyl Isothiocyanate in our facility. We bring in external auditors to challenge our processes, and we encourage open reporting of any observed deviations or difficulties. A few years ago, repeated requests came in for higher-purity variants suitable for trace-impurity-sensitive projects. Rather than outsource this problem or gloss over it, we doubled the number of purification steps and reviewed every input for possible contamination.

    Incremental feedback from clients drives our innovation. Our lab team, comprised of chemists with decades of combined experience, spends time in both research and operations settings. When clients need unique sample formats or specialized purity profiles, we can talk specifics and deliver tailored batches. Experience has taught us that listening before acting delivers superior results. Not every request is feasible, but most issues can be addressed just by openly discussing past problems and devising actionable plans.

    Tackling Supply Chain and Industry Challenges

    During recent supply chain disruptions, keeping steady access to critical intermediates grew more difficult across the industry. Thanks to established vendor partnerships and a resilient logistics plan, we've shielded clients from many of these shocks. Our raw materials come through verified suppliers, and backup inventories keep us operating smoothly even in times of market volatility. Long-term contracts and local sourcing play roles in protecting delivery schedules and price stability.

    We’ve also faced increased scrutiny from regulators and customer safety audits. Rather than treating these requirements as hurdles, we use them as catalysts for deeper review of our own practices. From the beginning, we chose to qualify every process at production scale before offering commercial product—minimizing the learning curve for customers who adopt our isothiocyanate in their work. This foresight ensures smoother onboarding and reduced risk throughout the customer’s own validation activities.

    By manufacturing directly and standing behind each lot, we sidestep the all-too-common scenario where details are lost between supplier, trader, and end user. In our world, facts drive every decision, and every conversation with a customer is an opportunity to fine-tune and adapt what we produce.

    Long-Term Value and Relationship Building

    The value of 2-Ethyl-6-Methylphenyl Isothiocyanate grows through consistent results and reliable support. We invest time in learning about our customers’ systems, workflows, and desired outcomes. Whether supporting an exploratory synthetic program or powering a validated manufacturing process, we commit to sharing in the responsibility for every success—and tackling challenges head-on when they come up.

    Our staff participate in technical symposia and industry forums to stay current on new requirements and breakthroughs. Insights earned through our own manufacturing trials pay off for our clients. Even as new isothiocyanates and alternatives reach the market, we maintain that small differences in structure and quality have oversized impacts downstream. Building a bridge from molecule to end-use keeps us focused—everyone shares in the benefits of responsible, innovative, and transparent manufacturing.

    In Closing: Why Direct Manufacturing Matters

    Direct manufacturing gives us insight into every aspect of 2-Ethyl-6-Methylphenyl Isothiocyanate’s story. From the time we bring in raw materials to the moment final product leaves our door, we own the outcome. We know the chemical inside and out—not just the molecule, but the process and the people that make it work. Our team’s focus stays on turning out high-quality, consistent, and reliable material, supported by documentation, technical knowledge, and open lines of communication.

    The journey to reliable specialty chemicals never cuts corners. We built our approach on years of experience, attention to detail, and direct customer partnership. Time and again, the results speak for themselves—better batch-to-batch consistency, fewer troubleshooting headaches, and greater confidence on both sides of the supplier relationship. Real-world problems find real solutions in our factory every day because we remain close to the process and to the people using our product. That’s the difference a manufacturer brings to the table—clarity, control, and true understanding at every step.