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1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione

    • Product Name 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione
    • Alias SKF 86466
    • Einecs 684-050-6
    • 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
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    Specifications

    HS Code

    671070

    Chemicalname 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione
    Casnumber 21127-10-2
    Molecularformula C10H7F3N2S
    Molecularweight 244.24
    Appearance White to off-white solid
    Meltingpoint 92-96°C
    Solubility Slightly soluble in water; soluble in organic solvents like DMSO and ethanol
    Purity Typically ≥98%
    Storagetemperature Store at 2-8°C
    Synonyms 4-(Trifluoromethyl)phenylimidazoline-2-thione
    Smiles C1=N-C(=S)N(C1)C2=CC=C(C=C2)C(F)(F)F
    Inchikey BREOFSWFEGVQKH-UHFFFAOYSA-N

    As an accredited 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing White plastic bottle with secure screw cap, labeled "1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione, 25g," with hazard pictograms and batch information.
    Shipping 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione is shipped in tightly sealed containers to prevent moisture ingress and contamination. The packaging complies with relevant chemical shipping regulations, including appropriate labeling and documentation. Transport is conducted under ambient temperature conditions, using secondary containment for spill prevention, ensuring safe and secure delivery to laboratory or industrial destinations.
    Storage 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from sources of moisture and incompatible substances such as strong oxidizers. Protect from direct sunlight and heat. Store under inert atmosphere if possible to prevent degradation, and ensure that the storage area is clearly labeled and compliant with chemical safety regulations.
    Application of 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione

    Applications of 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione in Industrial Manufacturing

    1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione serves as a specialty intermediate and functional additive in several targeted downstream sectors. As the direct manufacturer, we supply this raw material to established partners with requirements for high-purity imidazoline derivatives in regulated industrial environments. Below we detail key application segments with precise process integration and compliance information for formulation managers and technical buyers.

    1. Sulfur-Containing Vulcanization Accelerators for Synthetic Rubber

    This compound acts as a secondary accelerator and sulfur donor in rubber formulations, especially within automotive and industrial elastomer production. Its structure supports efficient crosslinking, resulting in improved aging resistance and controlled cure profiles for advanced rubber grades including NBR and EPDM, which are widely required in harsh service conditions.

    Industry compliance standards

    • ASTM D2000 (Rubber Material Specifications)
    • ISO 9001:2015 (Quality Management Systems)
    • EU REACH Regulation (EC 1907/2006) – Substance Registration
    • RoHS Directive 2011/65/EU (for automotive and electrical parts)

    Typical usage ratio

    • 0.2–1.2 phr (parts per hundred rubber), fine-tuned according to target cure rate and mechanical property requirements

    Downstream process integration

    • Addition to internal mixers or banbury blenders with other vulcanization components during mastication
    • Inclusion before final milling and sheet formation to ensure uniform accelerator dispersion
    • Participation in press-curing steps where temperature-pressure profiles activate crosslinking

    Final product types

    • Automotive weatherstrips (EPDM-based)
    • Sealing gaskets and O-rings for industrial and hydraulic systems
    • Rubber hoses for chemical and fuel transport
    • High-performance conveyor belts

    2. Precursor for Agrochemical Synthesis: Fungicide Intermediates

    Downstream agrochemical producers select this compound as a critical intermediate for constructing thio-imidazoline motifs found in next-generation fungicidal agents. Its electronic features support the synthesis routes of specialty crop protection ingredients, enabling efficient structure-activity relationship tuning in final actives.

    Industry compliance standards

    • FAO/WHO Joint Meeting on Pesticide Specifications (JMPS) for technical active content
    • ISO 9001:2015 (Quality Management)
    • Good Manufacturing Practice (GMP) for pesticide intermediates
    • Local chemical substance registration (e.g., China's ICAMA, US EPA inert ingredient reporting)

    Typical usage ratio

    • Consistently introduced at 1.0–1.5 mole equivalents relative to target fungicide core during batch synthesis; excess may be used for reaction efficiency

    Downstream process integration

    • Incorporation in multi-step organic synthesis as a thione donor during the construction of thiazole, imidazole, or other sulfur-containing heterocycles
    • Purification via distillation or chromatographic separation before final product formation
    • Intermediary crystallization and quality inspection for identity and purity before next coupling reaction

    Final product types

    • Triazole-based fungicides
    • Custom hybrid imidazoline crop protection agents
    • Seed treatment chemicals
    • Specialty biocide formulations for agricultural use

    3. Corrosion Inhibitor Additive Manufacturing (Oil & Gas Sector)

    Operators in pipeline, refinery, and storage protection processes leverage this compound for formulating oil-soluble inhibitors that target microbially induced corrosion and sulfide stress cracking. Its chemical structure delivers extended film persistence under high-pressure, high-temperature environments, making it valuable in upstream production and downstream transport.

    Industry compliance standards

    • NACE TM0103 (Laboratory Corrosion Testing of Metals for the Oil & Gas Industries)
    • API Specification Q1 (Manufacturing for Petroleum Sector)
    • ISO 9001:2015
    • Compositional reporting for US EPA and EU REACH registration in corrosive environments

    Typical usage ratio

    • 20–1000 ppm in final inhibitor blend, adjusted based on water cut, temperature, and hydrogen sulfide concentration for effective metal surface protection

    Downstream process integration

    • Solubilized directly in solvent carrier matrices during corrosion inhibitor formulation blending
    • Dosed in-line at transfer stations or injection points with real-time monitoring
    • Field evaluation via corrosion coupon testing to validate dosage efficiency

    Final product types

    • Oilfield corrosion inhibitor concentrate
    • Pipeline maintenance chemical packages
    • Storage tank passivation additives
    • Oil and water phase anti-scaling agents for extraction systems

    4. Laboratory Chemical Synthesis Building Block

    Specialty chemical and pharmaceutical synthesis laboratories utilize this material as a molecular scaffold for developing unique sulfur-containing heterocycles and imidazoline-based research compounds. Its commercial availability at high purity gives researchers a direct route to advanced structures during new molecule discovery and small-scale process development.

    Industry compliance standards

    • ISO 9001:2015 (Quality Assurance for research chemicals)
    • Material Safety Data Sheet (MSDS) and GHS labeling compliance
    • Internal analytical QC methodologies (GC-MS, NMR traceability, purity >98%)
    • Legal supply chain control: valid chemical precursor clearances

    Typical usage ratio

    • Stoichiometric amounts according to synthetic route; most common at 1.0–1.2 equivalents per target ring system, varies by reaction scheme and yield

    Downstream process integration

    • Initial condensation, cyclization, or sulfur-exchange steps in new compound synthesis
    • Used in medicinal chemistry libraries for structure diversification
    • Subject to chromatography for product separation and scale-up feasibility assessment
    • Integrated into pilot-scale synthesis for pre-commercial R&D

    Final product types

    • Research-grade thione and imidazoline derivatives
    • Lead compound analogs for pharmaceutical investigation
    • Fine chemical reference standards
    • Advanced molecular probes for life sciences

    5. Electronics Industry: Chemical Intermediate for Conductive Polymer Precursors

    Producers supplying electronic and semiconductor sectors incorporate this molecule in the synthesis of imidazoline-functional monomers and high-durability specialty polymers. The material adds distinct sulfur and fluorine functional groups that enhance charge-transport and stability in advanced polymer backbones used for anti-static coatings and flexible circuit substrates.

    Industry compliance standards

    • IPC-4101/101 (Base Materials for Printed Boards)
    • RoHS Directive 2011/65/EU and WEEE Regulations for restricted substances
    • ISO 14001:2015 (Environmental Management for chemical processing)
    • REACH SVHC (Substances of Very High Concern) declaration

    Typical usage ratio

    • Fed at 0.05–0.2 mole fractions when constructing functional monomer blocks; exact ratio depends on target conductivity and polymer thermal resistance

    Downstream process integration

    • Introduced during initial monomer synthesis to provide sulfur/fluorine-containing imidazoline units
    • Polymerized in controlled environments to achieve defined block copolymer architecture
    • QC confirmation by GPC and conductivity testing for electronics-grade application

    Final product types

    • Conductive polymer dispersions for printed electronics
    • Flexible anti-static films
    • Dielectric coatings for microelectronic components
    • Circuit substrate additives
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    Certification & Compliance
    More Introduction

    1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione: A Closer Look from Our Factory Floor

    From Raw Materials to Precision Chemistry

    Batches of 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione roll off our line after stirring, checking, and double-checking every step that goes into its synthesis. Experience at the reactor tells us that every tiny detail affects how the final material behaves in actual use. While formula names look the same on paper, small changes in raw material quality, purification practices, or drying conditions create real consequences in labs and factories that depend on consistent supply. No two reaction days are exactly alike until all parameters reach the right range—from temperature to solvent dryness, with technicians measuring and adjusting, never guessing. We've learned how minor batch variables can affect the end user's catalyst efficiency, intermediate yield, or polymer performance. Success comes back to repetition, patience, and never taking shortcuts chasing cost or speed.

    What Sets This Product Apart in the Chemical Industry

    Many clients ask what makes 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione stand out among thione products. It comes down to the composition’s trifluoromethylphenyl group, which brings unique value for both synthetic routes and final applications. This functional group gives the molecule greater stability in demanding conditions. Over years supplying to pharmaceutical researchers and specialty polymers teams, we’ve received feedback that the trifluoromethyl group holds up where other substituted imidazoline-thiones would degrade or lose activity.

    Traditional imidazoline-2-thione compounds often lack the thermal or chemical resilience for advanced pharmaceutical or electronics intermediates, where the presence of strong electron-withdrawing groups, like trifluoromethyl, makes a difference in yield or purity. From small-scale kilo lots for medicinal chemistry to pilot-scale batches reaching hundreds of kilos, every run underscores the extra robustness this molecule provides over simpler analogues. In our routine lab checks, side-by-side comparisons with non-fluorinated versions show superior shelf stability and more predictable behavior under stress. This means less downtime for downstream users and lower risk when scaling up new processes.

    Our Production Philosophy: No Shortcuts, Only Clarity and Reliability

    Mass-producing 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione is not about mixing and hoping it works. Each production batch builds on the collective experience of a team that has seen the impact of trace impurities on final outcome. Early in our experience, careless handling during acidification or filtration led to off-odors or inconsistent dissolution rates. Today, every operator receives hands-on training in handling precursor materials, monitoring key stages, and logging results in real time. No protocols stay on paper. Quality arises from correcting every misstep immediately, not burying it in the next batch.

    Working in the plant, you feel the responsibility for what comes downstream: whether it’s going into a custom thiourea catalyst, a controlled-release pharmaceutical formulation, or a precision additive for high-performance plastics. No order leaves our dock until batch certifications pass strict internal audits, including NMR purity, residue-on-ignition, and water content. We also retest archived retention samples months later to confirm shelf stability holds up to expectations or to catch unexpected deterioration trends.

    Real-World Uses: From Catalysts to Pharmaceuticals

    Customers return for our 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione after finding value in selective sulfur transfer, metal ion complexation, and cyclization steps that demand both reactivity and stability. One major pharmaceutical client relies on our product for introducing trifluoromethylated fragments into a new class of anti-tumor leads, where traditional thiones gave low yields or unpredictable impurity profiles. With the right substitution, their lead process improved in both conversion rate and product work-up, based on direct collaboration between our labs and their process team.

    Another application comes from polymer specialists developing resins resistant to harsh industrial solvents. Here, the trifluoromethyl group resists breakdown during polymerization, translating to longer product lifetimes under field conditions. Electroless plating teams use the material in ligands that help generate tighter control over metal crystal formation, creating electronics coatings with fewer surface defects.

    Why Quality Isn't Just a Certificate

    Some new buyers ask for a simple “COA” and are surprised we go further. Passing one HPLC test does not equal reliable performance in every synthesis. Laboratories sometimes struggle with color formation, unusual odors, or inconsistent melting point when buying from traders with limited technical support. Our team takes direct accountability for the specs on every container. We don’t contract out essential steps or accept batch-lot substitutions from outside vendors, as quick fixes often end in costly recalls and process failures.

    Before a shipment leaves, routine checks go beyond assay and impurities; they include handling experience, ease of dissolution, and compatibility with typical solvents in each target use. As manufacturers, we see these steps as insurance against work stoppages or product recalls faced by our partners downstream. After years of feedback, we’ve invested in purification upgrades and anti-static packaging solutions to stop powder clumping—issues often glossed over by third parties.

    Listening to Chemists — and Fixing What Goes Wrong

    No product would improve without chemists willing to share problems openly. We recall one batch delivered to a fine chemicals site where filtration time doubled compared to earlier orders. Instead of brushing off the complaint, we sampled back every processing input, finding that a change in local water hardness raised salt contamination beyond earlier years. Installing inline ion-exchange solved the issue, reducing customer downtime and restoring reliable supply. Such feedback cycles have shaped our continuous improvement and keep our technical support nimble, not burdened by bureaucracy.

    On other occasions, academic partners cited batch-to-batch “drift” in reactivity, traced to overlooked micro-traces in solvent supplies. Today’s operation sources higher-purity solvents and applies fresh molecular sieves to each run, based on learning costly lessons over time. Repeat buyers now expect quicker troubleshooting when deviations occur, which we treat as opportunities, not annoyances. Our R&D specialists often visit end-user labs to observe reaction conditions firsthand, sometimes under NDA, then bring real-world knowledge back to production.

    Environmental Responsibility and Handling Experience

    Manufacturing this class of imidazoline-thiones provides a window into responsible chemical stewardship. The trifluoromethyl group, while valuable, comes with an environmental footprint if mishandled or released as waste. Our team takes waste containment and solvent recovery seriously, not as an afterthought. Prior efforts with less advanced scrubbers let small traces escape or accumulate, so we invested in closed recovery and real-time monitoring of vent emissions.

    Operators receive regular hands-on training in personal and environmental safety, with emergency drills and updated standard operating procedures every season. Disposal of spent acids and side streams follows local environmental requirements, documented and traceable, so regulatory checks never force process halts. Knowing that a single incident could impact rivers or local air, we invest in better filtration, waste minimization, and green chemistry wherever possible. Clients growing sensitive APIs and electronics compounds expect these controls, and so do we, as chemical workers living in the same communities.

    Differences from Other Makers — Why Our Background Matters

    Over years of manufacturing, we’ve seen plenty of quickly-made batches sold under the same CAS number but sharing none of the reliability. Some major generic traders pull product from unknown facilities and blend down out-of-spec batches before shipping. Downstream, customers encounter lost time, extra purification, and erratic process results. Because we design, produce, and test each lot in-house, tuning every variable, we avoid such surprises and maintain transparency.

    Handling the molecule directly, from basic building blocks to finished product, lets us control crystal morphology and minimize dust fines. A trader might promise a lump form that doesn’t cake, but their product clogs hoppers or releases trace ammonia in storage. Our team monitors temperature and humidity through packing, so customers avoid nuisance clumping or odor issues that disrupt cleanroom or pharmaceutical work. These differences may not show on a one-line specification but emerge over hundreds of monthly batches, tested not by marketers but by chemists who stand behind every shipment.

    Specifications Backed by Experience, Not Just Numbers

    With every batch, our goal is real-world performance, not just meeting paper specs. We know some buyers only see numbers on a table: purity by HPLC, melting point range, residual solvents by GC-MS. But from long days at the production line, we know what sits behind these numbers. A tightly-controlled reaction, followed by careful washing and drying, brings better stability and reactivity. In the lab, side-products can show in trace yellowing, lingering sulfur smell, or sluggish solubility. We set specifications based on thousands of data points and daily plant experience—not simply copying competitor claims.

    Long-term stability tests track color, odor, and reactivity over months in various packaging. For highly-sensitive syntheses, we offer extra-purified lots, documented by full spectra and impurity logs, because sometimes “95%” purity on paper means nothing if unseen by-products poison a critical catalytic process.

    Helping You Make the Right Choice

    We supply 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione to those looking for a trusted partner, not just a commodity. Our team frequently consults on solvent compatibility, reactivity concerns, and downstream process integration. This starts with direct communication, not layers of agents or long lead-times for technical answers. Each customer brings new requirements, whether it’s minimizing residual moisture for a moisture-sensitive pharmaceutical or requesting an alternative particle size for high-throughput automated dosing.

    Our input reflects a manufacturer’s hands-on mindset. We know what it means to blend reliability, transparency, and technical insight—the kind that comes only from making the product ourselves. If you need direct answers, technical data backed by real testing, and continuous process improvement based on industry best practice, the team on our factory floor stands ready to support your next challenge.

    Unique Challenges and How We Address Them

    In practice, thione chemistry rarely goes according to textbook descriptions. Challenges arise: batch exotherms, filtration headaches, product sticking, or unexpected off-colors. Our mix operators and plant chemists don’t just note the anomaly—they stop, sample, and dig for root causes. Early versions often suffered inconsistent yields until we refined alkylation techniques and switched to more inert equipment linings. Over several years, we found even the tiniest stainless steel leachables could disrupt final purity during long reaction holds, sending a lesson that no detail can be considered too small.

    We now work with custom glass-lined reactors and controlled cooling to keep everything in specification. Our QA staff operate their own small pilot reactors to evaluate process tweaks without disrupting the main line—what’s learned in a trial run often unlocks a permanent solution for full-scale production. Regular reviews of anomalous batches, coordinated between plant and R&D, sharpen our troubleshooting so fewer mistakes repeat down the line.

    Sourcing and Traceability — Closing the Loop

    From the first gram of benzaldehyde derivative purchased to final warehouse shipment, every input traces back to fixed suppliers—screened for both analytical grade quality and ethical sourcing. We keep detailed records of each lot to enable quick tracking, not just for compliance but for rapid response if an issue emerges at a customer site. A few years back, a supplier shifted to a lower-grade precursor without warning. Because we tracked batches by lot, we identified affected material and notified clients before any issue appeared in their processes.

    This chain of traceability builds trust, and our customers recognize its value. Several long-term partners ask for back-tracing documentation with every shipment, especially those in regulated markets or working under strict audit conditions. This practice has spared both sides from regulatory headaches and strengthened the kind of working relationships that stand the test of shifting market conditions.

    Working Together for the Future of Chemistry

    Looking ahead, constant improvement holds the key. Our R&D team stays tuned to evolving needs: safer chemistry, greener solvents, new application fields. On the plant floor, we invite honest feedback—everyone from line operators to technical directors can suggest changes, which pass from shop talk to pilot trial faster than most competitors allow. Being a manufacturer in control of every step gives us the flexibility to innovate rapidly, balancing reliability with readiness for the next challenge.

    For research chemists innovating tomorrow’s pharmaceuticals or polymer engineers developing new high-performance materials, our 1-(4-Trifluoromethylphenyl)Imidazoline-2-Thione offers more than simple supply. It’s the product of many years’ learning and continuous iteration—integrating feedback from users in dozens of industries. The drive for process stability, environmental security, and superior reactivity starts here and continues with every batch, every shipment, and every technical exchange.