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Triethyltin Chloride

    • Product Name Triethyltin Chloride
    • Alias Triethylstannyl chloride
    • Einecs 211-048-9
    • 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

    315698

    Chemicalname Triethyltin Chloride
    Molecularformula C6H15ClSn
    Molecularweight 267.34 g/mol
    Casnumber 994-30-9
    Appearance Colorless to pale yellow liquid
    Boilingpoint 191 °C (at 760 mmHg)
    Density 1.305 g/cm3
    Meltingpoint -37 °C
    Solubilityinwater Reacts with water
    Purity Typically >97%
    Odor Characteristic odor
    Refractiveindex 1.492
    Synonyms Triethylchlorostannane
    Storagetemperature Store at 2-8°C
    Hazardclass Acute Toxicity (oral, inhalation, dermal)

    As an accredited Triethyltin Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Triethyltin Chloride is packaged in a 100-gram amber glass bottle, tightly sealed with a screw cap and safety labeling.
    Shipping Triethyltin Chloride should be shipped in tightly sealed, corrosion-resistant containers under dry conditions. It must be clearly labeled as a toxic and corrosive substance. Transport is typically regulated under hazardous materials guidelines, requiring appropriate documentation and handling precautions to prevent leaks, spills, or exposure during transit. Avoid contact with water and incompatible materials.
    Storage Triethyltin chloride should be stored in a tightly sealed container, away from moisture, heat, and direct sunlight, in a cool, well-ventilated area. Store separately from incompatible substances such as acids, bases, and oxidizing agents. Clearly label the container and ensure it is kept in a designated chemical storage area with appropriate hazard signage. Follow all local regulations for toxic substances.
    Application of Triethyltin Chloride

    Applications of Triethyltin Chloride in Industrial Manufacturing

    Triethyltin chloride serves as a specialized organotin intermediate in advanced materials synthesis and precision chemical transformations. Its applications are confined to tightly regulated sectors where function and safety are closely monitored, demanding compliance with exacting industrial protocols. Our manufacturing strictly controls purity and trace element levels to suit targeted downstream processes.

    1. Organotin Catalysts for Polyurethane and Silicone Polymer Manufacturing

    Producers of high-performance polyurethane elastomers and silicone resins use this material as a precursor for organotin catalysts that accelerate crosslinking and cure reactions. In catalyst synthesis, attention centers on final catalyst activity and hydrolytic stability for downstream automotive, electronics encapsulation, and high-resilience foam production. Each catalyst batch must meet internal quality standards for reactivity index and controlled organotin residuals, as regulated by workplace safety and environmental controls.

    Industry compliance standards

    • REACH Regulation (EC) No 1907/2006 Annex XVII (organotin compound restrictions)
    • EU Directive 2011/65/EU (RoHS) for electronics applications
    • ISO 9001:2015 certified production process
    • SDS and workplace exposure limits as per OSHA 29 CFR 1910.1000 (for US plants)

    Typical usage ratio

    • 0.01%–0.3% w/w relative to total polymer precursor weight, modified case-by-case based on target curing time and polymer crosslink density

    Downstream process integration

    • Conversion to dialkyl/dialkoxy organotin catalyst via in-house reaction with chosen alcohol under controlled atmosphere prior to blending into polyol or silicone systems

    Final product types

    • Automotive polyurethane seating foams
    • Flexible foam for consumer bedding
    • Encapsulant-grade silicone rubbers for microelectronics
    • Industrial vibration-dampening elastomers

    2. Glass Coating Additives in Architectural and Automotive Glass

    Glass manufacturers leverage triethyltin-based intermediates for the preparation of conductive or anti-reflective glass coatings, especially in float glass and laminated safety glass plants. The chloride precursor is converted via controlled hydrolysis to prepare stannic oxides that integrate with chemical vapor deposition or sol-gel coating lines. Traceability and precise dosing are crucial given strict regulatory oversight on workplace air quality and downstream product surface quality.

    Industry compliance standards

    • EN 1096-1: Glass in building — Coated glass requirements
    • Directive 2000/53/EC (End-of-Life Vehicles Directive — heavy metals restrictions)
    • GB/T 11944 (China Safety Glass Standard for Architecture and Vehicles)
    • ISO 14001:2015 (Environmental management for plant operation)

    Typical usage ratio

    • 10–50 ppm organotin in final coating precursor solution, adjusted according to desired electrical conductivity or light transmittance of coated glass

    Downstream process integration

    • Introduced in stannate bath formulation for online chemical vapor deposition or in precursor solution for offline sol-gel glass coating reactors before baking and tempering steps

    Final product types

    • Low-emissivity (Low-E) architectural glass panels
    • Automotive windshield glass with anti-fog or conductive functions
    • Display panel cover glass with reduced haze coatings

    3. Synthesis of Organotin Reagents for Agrochemical Research

    Chemical synthesis laboratories at agrochemical companies utilize this intermediate to prepare complex organotin reagents as tools for site-specific functionalization in pesticide and fungicide molecule development. Precise molar addition and batch documentation are mandatory to comply with research management systems and downstream residue risk assessments for eventual field trial compounds.

    Industry compliance standards

    • Good Laboratory Practice (GLP) OECD Principles (ENV/MC/CHEM(98)17)
    • ISO/IEC 17025 Accreditation for chemical analysis labs
    • Relevant company-internal Environmental Health & Safety (EHS) protocols
    • Material Transfer Agreements (for collaborative research)

    Typical usage ratio

    • 0.05–1 molar equivalent relative to target substrate, modulated by desired reaction yield and minimization of tin residuals in research-grade product

    Downstream process integration

    • Used in organometallic coupling reactions or as a stannylation agent in solution phase synthesis under inert conditions, followed by downstream chromatographic purification

    Final product types

    • Research-scale agrochemical active intermediates
    • Reference samples of new fungicide analogs
    • Test compounds for field residue analysis programs

    4. Precursor for Advanced Semiconductor Patterning Agents

    Specialty chemical suppliers to wafer fabrication plants use this compound as a key intermediate in the synthesis of tin-containing photoresist additives. The product enters organometallic synthesis routes that yield compounds improving etch contrast and photoactive performance in EUV (Extreme Ultraviolet) and DUV (Deep Ultraviolet) lithography processes. Each batch requires analytical documentation of trace metal contaminants to meet sub-ppb process standards imposed by semiconductor cleanroom environments.

    Industry compliance standards

    • SEMI C63: Specification for High Purity Chemicals
    • IATF 16949:2016 Quality Management (for automotive electronics)
    • SEMI S2: EH&S Guideline for Semiconductor Manufacturing
    • Company-certified ISO Class 5–6 cleanroom handling for sensitive intermediates

    Typical usage ratio

    • 5–100 ppm tin level in resist layers, precision dosed for lithography sensitivity and image contrast, fine-tuned via resist formulation trials for each wafer line

    Downstream process integration

    • Synthesized into organotin compounds and uniformly incorporated during photoresist formulation in compounding reactors before cleanroom-contained wafer coating

    Final product types

    • EUV and DUV photoresist solutions for advanced wafer patterning
    • Microprocessor and memory chip photomask resists
    • Pattern transfer films for semiconductor and advanced display production
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    Certification & Compliance
    More Introduction

    Triethyltin Chloride — Manufacturer’s Perspective on a Key Organotin Compound

    An Introduction Born from the Production Floor

    Day in, day out, producing Triethyltin Chloride teaches you a lot more than any textbook. In our shop, we observe its special place among organotin compounds. Known by its chemical formula C6H15SnCl, this liquid demands respect. It distills down the essence of tin alkyl chemistry. Our unit operations focus on handling its sensitivity and potency because this intermediate sees use where others fail, especially in settings calling for tough, moisture-sensitive organometallics.

    Ask any hand on our line: Triethyltin Chloride calls for precision at every step, both in synthesis and containment. Pungent odor reminds us of its reactivity, but the pale liquid’s calm appearance belies its power in research labs and synthesis work. Over years of batch runs, close attention to temperature control and exclusion of air prove essential. Everyone soon learns how easily this compound hydrolyzes with atmospheric water, yielding aggressive byproducts. Stoppering every vessel, purging lines with inert gas, and managing effluent streams take far more care than with your average tin salt or oxide.

    Model and Specifications Grounded in Practice

    We bring out Triethyltin Chloride mainly at a purity over 98%, GC-tested and free from dibutyltin or methyl derivatives. Most users take it as a clear to straw-colored liquid. Trace metals, chlorides, and solvents get measured every batch; even minor remnants can disrupt sensitive organometallic syntheses. Every technical director who’s wrestled with unplanned side reactions knows that a few parts per million of water or alkali change everything: coloring, yield, even safety. So, we emphasize closed-system processing, vacuum distillation, and regular calibration of our analytical gear.

    Our batches tend toward 50 kg for research and pilot plant supply, but we can scale production for bulk discovery projects or industrial-scale work. By focusing on batch integrity, we maintain lot-to-lot consistency. Bottling gets priority since exposure to air — even during cap changes — can start a chain reaction of hydrolysis and decomposition. Each container leaves after checks for cloudiness, pressure build-up, and acidity, protecting your synthetic sequences. Each label is proof of our direct care from precursor charging to final flush.

    Direct Use in Research and Synthesis

    Working with Triethyltin Chloride differs from handling generic chlorides or mixed alkyl stannanes. Researchers use it as an alkylating agent, often in the preparation of organotin intermediates, catalysts, or as a starting point for tin-containing polymers. Our regular customers—academic labs and specialty pharmaceutical developers—use Triethyltin Chloride for both classic and experimental reactions. Chemists aiming to transfer ethyltin groups without the threats posed by trialkyltin species turn to this material, trusting in our control of side products.

    Historically, Triethyltin Chloride played a role in studies on biochemical phosphorylation and cell respiration. Our direct supply gives university groups a reliable material for neurological toxicity models, reflecting its pointed bioactivity. Safety demands respect; we've found experienced chemists using thick gloves, sealed hoods, and detailed SOPs, drawing on years of technical bulletins and real-world mishaps. The risks matter just as much as the chemistry. Speaking with project leads, we swap stories and share handling tips, taking pride in contributing to intricate syntheses and tough research puzzles.

    Why Triethyltin Chloride Stands Out in the Organotin Family

    Among organotins, Triethyltin Chloride fits into a unique slot. Triphenyltin and tributyltin chlorides see action in different corners of industry—mostly as biocides, stabilizers, or catalysts. These bulk commodities work well for routine vinyl stabilization or as generic antifoulants, but their bulk uses leave little room for sulfur chemistry or nuanced alkylation in high-value organic syntheses. In contrast, our compound finds favor with those needing a more finely tuned alkyl source and a clean, predictable transfer of tin groups.

    Compared to tri-n-butyl- or triphenyltin chloride, triethyltin brings less steric hindrance and distinct reaction kinetics. The ethyl groups unlock certain pathways impossible with bulkier stannanes. Our chemists often highlight that the physical handling sets it apart. Triethyltin Chloride comes in as a more volatile liquid, not as a crystalline solid, which influences how it stores, scales, and reacts in automated and continuous processes. Standard precautions fall short; tight seals, inert atmospheres, and quick transfers become the baseline. Poor handling leads to rapid loss or decomposition, and we’ve learned to avoid glassware flaws or half-closed stopcocks.

    Many new users arrive prepared for stannic chloride’s brutal vapors, then realize Triethyltin Chloride brings different hazards: sharp odor, slow fuming, and heating risk under closed containment. Our technical support teams coach end-users on proper dilution, waste neutralization, and post-reaction washes because contamination easily lingers. Even a milliliter spilled outside containment means shutdown and full cleanup. These standards — enforced on our floor and impressed upon every customer — shape best practices in small and large-scale runs alike.

    Challenges on the Shop Floor

    Years of experience with Triethyltin Chloride teach more about safety than any manual. Leaks or container failures mean more than lost product: they threaten both worker health and plant uptime. We invest constantly in training, retraining, and design changes that minimize exposure — this isn’t simply a regulatory box-tick, it’s the result of seeing what can go wrong, and working with people who value each shift’s end as much as results.

    We don’t trust standard gaskets for long-term storage. Specialty seals, glass ampoules, and double-containment sleeves mean fewer headaches. Some of the best lessons come from mixing team knowledge with supplier input, updating our storage after a single tell-tale whiff signals a seal breach. These small things support big outcomes — high-purity product, reduced exposure, and happy repeat users who notice the care in every bottle. A robust supply chain supports these standards: rapid movement from reactor to bottling line ensures fresh, uncompromised output, and we refuse to let aging inventory mar a partner’s results.

    A Manufacturer's View on Quality Pitfalls

    We have seen how minor impurities can derail a multi-stage synthesis relying on Triethyltin Chloride. Each time a customer sends back a detailed analysis, we learn something that pushes us harder: surface catalysis in glassware, micro-leakage during handling, or the need for more robust solvent drying. Adjusting these points translates to better results in users’ hands. We run regular lifetime tests on containers, storing samples on the same timeline as end-users, so that we see problems in real time and address them before your projects ever start.

    Release testing looks past the basics — color and clarity act as the first checks, but GC-MS profiles, Karl Fischer water assays, and UV-Vis absorption ensure no unofficial surprises enter your reactions. We never assume one size fits all. Discussion with large industrial users means tweaking purification steps or packaging to suit their throughput and storage. Research customers get smaller ampoules, sometimes with cold packs or customized packing, because a single exposure to moist air could send an entire week’s work off course. We monitor all feedback and track it against batch entries, a practice learned the hard way through the occasional missed detail.

    Technical Conversations with the Community

    Serving as a direct manufacturer places us at the front lines of chemical innovation. Calls and emails arrive every week asking for advice on use and substitution. Some want to compare Triethyltin Chloride with tetraethylstannane or dibutyltin dichloride, hoping for a cheaper or easier-to-handle option. From years of technical support, we offer facts, not sales pitches: this chloride won’t swap one-to-one for longer-chain stannanes, nor does it mimic tin oxides. Ethylation potential, volatility, and reactivity belong to this particular material. We share handling stories, cleanup protocols, and lessons from the bench, helping customers gain more than just a drum of liquid.

    End users ask about alternatives as regulations tighten. We speak from firsthand process runs: shifting away from Triethyltin Chloride isn’t trivial. No direct substitute matches its kinetic window in alkylation or its role in some transition-metal chemistry. Part of our job involves regularly testing new ligands, examining greener solvents, and investing in pilot work to see if new chemistry delivers. These collaborations feed back into safer, more efficient practice here at home and in every partner’s project.

    Compliance and safety standards shape much of our daily operation. Keeping documentation ready and batches traceable is as important as chemical integrity. We field audit requests and technical documentation reviews because precision at the documentation stage reflects the care put into every liter or ampoule.

    Safety: More Than Just Compliance

    People ask for Triethyltin Chloride with eyes wide open. No one treats it as a benign material. Our long history with this compound proves that lab-scale and industrial users need rigorous ventilation, PPE, and waste protocols. Training focuses not just on what to do, but what signs mark trouble — acrid smells, slight discoloration, or odd viscosities signal the need for quick intervention. We’ve updated our neutralization and spill response not just from manuals, but from everything we’ve seen and done over thousands of hours with the material.

    Internal medical teams and plant safety leaders trade notes with outside experts. The risks from Triethyltin Chloride’s neurotoxicity and potent alkylating nature drive every procedure, from loading to cleaning. Health and safety officers use our site as a reference for others planning to handle organotin streams, welcoming researchers and industrial partners for facility walkthroughs and planning. That way, expertise doesn’t stay bottled up inside the plant but becomes part of the wider responsible chemical practice.

    Improving Sustainable and Responsible Production

    The chemical industry’s future will not look like its past. Societal expectations around sustainability and clean production raise new challenges for those producing organotins, particularly ones as reactive and hazardous as Triethyltin Chloride. We see more scrutiny of our effluent controls, emissions, and supply chain inputs. Upgraded scrubbers, secondary containment, and advanced leak detection are not luxuries but necessities. As local and global rules evolve, we tie production schedules to updated permits and real-time environmental metrics, investing in staff, materials, and technology to keep pace.

    Waste streams, especially those bearing tin, undergo multi-step treatment: reduction, precipitation, chelation, and finally high-level disposal. By partnering closely with environmental authorities and neighboring facilities, we reduce risk and ensure transparency. Internally, we run regular audits and invite stakeholder input on new containment and recovery projects. Every improvement pays off in both peace of mind and reduced lifecycle cost for each kilogram produced.

    From the inside, we know that sustainability means more than recycling drums or reducing solvent. It starts at raw material selection, process yield, and creative reuse of byproducts. As we switch suppliers and refine logistics, our focus remains on delivering a consistently high-purity material with minimal environmental footprint, tracking every lot from input to delivered product.

    Direct Manufacturing: Expertise and Accountability

    Representing the manufacturer’s direct line to customers, we take responsibility for every decision, every drum, and every question. Repackagers and traders rarely see the nuance of producing, storing, and shipping a material like Triethyltin Chloride. We respond when something goes wrong and work directly with users to troubleshoot. The difference comes through in fast response for technical support, batch documentation, and custom formulation to fit specific needs.

    We do not just sell a chemical; we deliver our decades of knowledge, handling expertise, and real-time support, all learned through ongoing partnerships. The result is a chain of trust—each supply confirms our reputation among scientists, industrial researchers, and supply chain managers.

    Partnership: Innovation Rooted in Practical Experience

    Customers bring new challenges each year. From the first call to the last shipment, we work closely with you to identify the right packaging, ensure safe handling, and optimize yield wherever Triethyltin Chloride factors in. We speak from a place of rigorous production, open dialogue, and relentless improvement, not from buzzwords or hollow claims. Our feedback loop involves listening to users, watching performance in the field, and tweaking purification or delivery to address what matters.

    The specialty chemicals landscape keeps shifting. Raw material costs, transport constraints, and regulatory scrutiny can all upend plans. Our answer lies in hands-on agility at every point, not just scaling up but scaling smart. We keep our workforce sharp, our testing rigorous, and our communication clear. Those relying on Triethyltin Chloride for medical research or advanced material synthesis can see the difference.

    The Long View: Building on Experience

    No distributor or third party can substitute for direct experience making and moving Triethyltin Chloride. We have grown alongside the science, refining each detail so that today’s output exceeds previous benchmarks. Our practice sits on cumulative lessons: unplanned plant upsets decades ago, peer review feedback from major innovators, post-shipment technical call-ins, and continuous benchmarking against both domestic and global standards.

    Every drum filled is a statement: this batch comes direct from our line, watched by our crew, and supported by everything we have learned together with the user community. We aim not just to deliver Triethyltin Chloride, but to enable breakthroughs, ensure safety, and back up every promise with lived expertise.