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2-(Tert-Butylsulfonyl)Acetonitrile

    • Product Name 2-(Tert-Butylsulfonyl)Acetonitrile
    • Alias BSOACN
    • Einecs 'EINECS 695-554-5'
    • 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

    803326

    Chemicalname 2-(Tert-Butylsulfonyl)Acetonitrile
    Molecularformula C6H11NO2S
    Molecularweight 161.22 g/mol
    Casnumber 113252-34-7
    Appearance White to off-white solid
    Meltingpoint 60-62°C
    Solubility Soluble in organic solvents (e.g., DMSO, methanol)
    Purity Typically ≥ 98%
    Storageconditions Store at 2-8°C, protected from light and moisture
    Synonyms Tert-butylsulfonylacetonitrile
    Smiles CC(C)(C)S(=O)(=O)CC#N
    Inchi InChI=1S/C6H11NO2S/c1-6(2,3)11(8,9)5-4-7/h5H2,1-3H3

    As an accredited 2-(Tert-Butylsulfonyl)Acetonitrile 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 amber glass bottle containing 25 grams, labeled with product details, hazard warnings, and safety information.
    Shipping 2-(Tert-Butylsulfonyl)acetonitrile is shipped in tightly sealed, chemical-resistant containers to prevent contamination and moisture absorption. Packages are clearly labeled with hazard information and shipped following regulations for organic chemicals. Transport is typically via ground or air, with temperature controls when required, and includes all necessary safety documentation for handling and storage.
    Storage 2-(Tert-Butylsulfonyl)acetonitrile should be stored in a tightly sealed container, away from moisture and incompatible substances, such as strong oxidizers and acids. Keep it in a cool, dry, and well-ventilated area, protected from direct sunlight. Store at room temperature or as specified by the manufacturer. Follow all relevant chemical safety guidelines and ensure access to appropriate spill containment and protective equipment.
    Application of 2-(Tert-Butylsulfonyl)Acetonitrile

    Applications of 2-(Tert-Butylsulfonyl)Acetonitrile in Industrial Manufacturing

    2-(Tert-Butylsulfonyl)acetonitrile serves as a functional specialty intermediate in several high-value chemical industries, supporting complex molecule synthesis and large-scale manufacturing. Our plant-scale production allows precise specification to suit advanced applications in pharmaceuticals, agrochemicals, fine chemicals, and specialty polymers.

    1. Pharmaceutical Intermediate for Sulfonamide Synthesis

    Many API manufacturers utilize this compound as a protected nitrile building block in the custom synthesis of sulfonamide drug intermediates. Its tert-butylsulfonyl moiety offers enhanced reactivity for nucleophilic substitution steps, especially when introducing sulfonyl groups to aromatic and heterocyclic frameworks. Following deprotection and further transformation, the intermediate supports process assembly of selective enzyme inhibitors and anti-infective agents. In this stage, strict traceability ensures compliance with cGMP environments, and the material undergoes high-performance liquid chromatographic QC before usage in further pharmaceutical synthesis.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Parts 210/211
    • European Pharmacopoeia monograph applicability for intermediates
    • USP General Chapter <823>

    Typical usage ratio

    • Applied at 1.0–1.5 molar equivalents against the core reactant per batch
    • Adjusted according to specific substrate reactivity and impurity control, typically between 0.9–1.2 equivalents in GMP plants

    Downstream process integration

    • Used post-aryl halide coupling in the multistep synthesis sequence
    • Nucleophilic substitution followed by acid/base deprotection
    • Integrated before final API purification and crystallization

    Final product types

    • Sulfonamide antimicrobial drug APIs
    • Intermediate substrates for kinase inhibitors
    • Biologically active sulfonylated heterocycles
    • Pharmaceutical intermediate blocks for global CDMO customers

    2. Crop Protection: Synthetic Intermediate for Herbicide Actives

    Major agrochemical producers employ this raw material to introduce sulfonyl functionalities in constructing modern herbicidal actives, especially those belonging to the sulfonylurea and triazine families. The tert-butylsulfonyl group enhances selectivity in intermediate couplings, delivering high-purity intermediates essential for downstream toxicity minimization. All processing steps maintain rigorous batch records and environmental controls to ensure compliance with national and multinational pesticide manufacturing laws.

    Industry compliance standards

    • OECD Principles of Good Laboratory Practice for Agrochemicals
    • EPA 40 CFR Part 169 – Pesticide Records
    • SIN List regulatory guidance for chemical inputs
    • REACH Regulation (EC) No 1907/2006

    Typical usage ratio

    • Used at 1.0–1.3 molar equivalents compared to the nucleophilic partner
    • Reduction to 0.8 equivalents possible in optimized pilot trials for large-scale runs

    Downstream process integration

    • Enters after initial aromatic ring formation, during sulfonyl group introduction
    • Coupling in the mid-stage of multi-step herbicide synthesis
    • Followed by purification and formulation of herbicide technical concentrate

    Final product types

    • Sulfonylurea herbicide actives
    • Sulfonylated triazine intermediates
    • Technical grade herbicide products
    • Pre-mix herbicide formulations for soil treatment

    3. Fine Chemicals: Precursor for Functionalized Nitriles

    Advanced material companies rely on this compound as a selectable precursor during production of tailored nitrile-functionalized organics for applications in OLEDs, electronic materials, and high-temperature fluids. Its controlled reactivity and bulk purity enable custom process adaptations, such as nitrile alkylation or subsequent hydrolysis. The manufacturing workflow prioritizes impurity profiling and specification lot-to-lot verification for process reproducibility and downstream material quality.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems
    • RoHS Directive 2011/65/EU for electronic applications
    • Manufacture in accordance with EC No 1272/2008 (CLP Regulation)
    • Internal product stewardship protocols for specialty chemical handling

    Typical usage ratio

    • Applied at 1.0–2.0 equivalents, based on desired substitution pattern and downstream impurity profile
    • Batch-optimized based on reaction troubleshooting data and end-use purity threshold

    Downstream process integration

    • Initiates as alkylating agent in nitrile expansion reactions
    • Feeds into continuous reactors for multi-step functional group transfers
    • Entered before final conversion or formulation of electronic materials

    Final product types

    • OLED intermediate compounds
    • High-purity nitrile additives for lubricants
    • Functional electronic solvents
    • Specialty fine chemical intermediates for contract synthesis

    4. Specialty Polymers: Chain Modifier in Sulfone-Modified Resins

    Polymer manufacturers incorporate this molecule in resin formulation as a chain-end modifier, introducing bulky tert-butylsulfonyl functionality that controls glass transition temperature and enhances chemical resistance. The nitrile group serves as a reactive site for further polymer grafting or crosslinking. All polymerization batches use closed-system addition with inline analytical monitoring to ensure compliance with industrial polymer processing standards.

    Industry compliance standards

    • ISO 14001:2015 Environmental Management for polymer operations
    • ASTM D883 Standard Terminology Relating to Plastics
    • DIN EN ISO 11357 for polymer DSC analysis
    • RoHS Directive for end-use electronics components

    Typical usage ratio

    • Added at 0.5–2.0 phr (parts per hundred resin) during reactive extrusion
    • Precise dosing between 0.8–1.5 phr provides balance of mechanical properties and processability for targeted resin grades

    Downstream process integration

    • Metered into pre-polymer melt phase as a functional end-group additive
    • Incorporated prior to chain extension or crosslinking steps
    • Product quality tracked via in-process GPC and FTIR analysis

    Final product types

    • Sulfonylated engineering thermoplastics
    • Chemically resistant molded resins
    • Functional protoyping polymers for electronic assembly
    • Specialty copolymer blends
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    Certification & Compliance
    More Introduction

    Introducing 2-(Tert-Butylsulfonyl)Acetonitrile—Solid Performance for Advanced Synthesis

    A Closer Look at What Matters Most in Fine Chemicals Production

    From years refining organosulfur chemistry on the production floor, the ever-growing role of specialty compounds like 2-(Tert-Butylsulfonyl)Acetonitrile stands out. It’s not just another building block on the bench: each batch starts with rigorously sourced raw materials, prepared to meet the close tolerances demanded by process chemists, scale-up engineers, and quality teams. The model we push forward—manufactured with direct oversight, tracked from start to finish—delivers a solid, off-white crystalline powder that fits right into demanding synthesis setups, batch after batch.

    Specifications Built for Confidence

    Deciding which chemicals deserve a manufacturer’s attention comes down to working experience with reaction scale, solubility, isolation, and stability. In our facility, 2-(Tert-Butylsulfonyl)Acetonitrile emerges from a carefully monitored sequence, yielding material that holds purity above 98%. That’s by HPLC, which tends to catch more than a simple TLC or GC. Moisture content matters, and we keep it low—sometimes under 0.5%—by drying under vacuum and avoiding unnecessary exposure to the air. Density and melting point data stay consistent due to line checks, and these constants get verified with each lot.

    Those who weigh out this compound in the development lab notice the granular texture. It’s not prone to sticking or caking, which speeds up weighing and transfer. For weight-critical setups where accuracy saves hours of troubleshooting, this property streamlines the workflow. Bottling and packing occur in-house, so what gets sealed is what gets shipped. We see no sense in repacking or letting product pass through too many hands, since every exposure invites a loss in purity or issues with moisture. This single-chain approach lets us stand by what we supply.

    Application Experience from the Manufacturer’s Perspective

    We’ve fielded requests from small research outfits to large pharmaceutical houses, always circling around the same core uses. 2-(Tert-Butylsulfonyl)Acetonitrile often joins complex molecule assembly sequences as a nucleophile or intermediate, especially in constructing intricate heterocycles or protected functional groups. Medicinal chemists report that the tert-butylsulfonyl protection holds up well under a range of reaction conditions—oxidative, basic, and acidic media alike—helping the acetonitrile fragment deliver clean transformations before the next synthetic step.

    In manufacturing, reproducibility isn’t just a slogan—it’s a job requirement. We put 2-(Tert-Butylsulfonyl)Acetonitrile to the test not only in small-scale research synthesis, but also as the starting point for scale-up runs and pilot plant demonstrations. The crystalline form lends itself to filtration and washing. It resists hydrolysis at room temperature, letting process chemists hold stock solutions overnight without nasty surprises from breakdown products or odor issues. When switching from glassware to kilo-scale, these traits save both time and yield. We learned from years of listening to frustrated chemists: supply chains that swing between humidity, temperature extremes, and poorly sealed drums only add headaches. That’s why handling and storage protocols build from the ground up, right at the source.

    What Sets This Compound Apart—Lessons from Ourselves and Competitors

    Every organic chemist knows the feeling of wading through catalogs full of similar nitriles and sulfonylated compounds. Not all deliver the same performance—or cost efficiency. What makes our 2-(Tert-Butylsulfonyl)Acetonitrile stand apart comes down to in-house control over each step. We limit outsourcing not for the sake of inefficiency, but to keep contamination, confusion, and paperwork from creeping into the process. Years back, a poorly controlled lot from a trading company ended up with odd masses on LC-MS; that’s the last time we entertained suppliers without direct accountability. Tight internal controls fix that problem before it even begins.

    We confirm identity and purity with three separate analytical approaches: NMR, HPLC, and mass spectrometry. If steric bulk or subtle impurities can play a role in user reactions, we catch it and filter out anything out of specification. Some contract suppliers may offer a lower sticker price, but they skip analytical steps and let process variation go unchecked; inconsistency in reactivity or trace byproducts may be missed this way. Our team knows customers can’t afford downstream failures—and replacing a lot after a failed scale-up costs more than any discount could save.

    Shelf life and storage calls out another distinction. Some nitrile-based intermediates break down in poorly sealed containers or under fluctuating humidity. Our product comes in robust, tamper-evident high-density polyethylene bottles, heat-sealed and nitrogen-purged after final Q/A release. End users often tell us they see none of the hydroscopic behavior or clumping that haunts more sensitive chemistries. Our batches resist degradation better under standard warehouse conditions, which raises confidence in inventory management and planning, especially for sites operating with just-in-time delivery or limited floor space.

    Supporting Modern Synthesis—A Direct Manufacturer’s Perspective

    We have encountered nearly every challenge in the world of organosulfur intermediates: batch-to-batch drift, reactivity shifts, transport and storage headaches, accidental contaminant introduction. Our experience over time shaped a belief: chemistry grows reliable only when every step is visible, measured, and addressed before the final container gets loaded onto the outbound truck. 2-(Tert-Butylsulfonyl)Acetonitrile serves as a showcase for this philosophy. Customers come to us because inconsistent supplies cost more over time, even if the up-front number looks appetizing. It’s not hard to save pennies; it’s hard to save months on missed deadlines, delayed trials, or rejected batches. We learned this the hard way, so our investment goes into Q/A equipment and retaining the best-trained synthetic chemists.

    Feedback loops with users drive constant improvements. Pharma developers sometimes point out potential sources of reaction byproducts in scale-up runs, and we take those reports seriously. Each feedback cycle closes with a documented adjustment or process review, not just a polite reply. Sometimes, it’s about drying protocols. Other times, it’s a minor tweak in crystallization. Part of being a manufacturer—rather than a simple stockist or reseller—means closing the gap between lab and plant. If a customer flags changes in melting point or worries about color change, their observation feeds straight back to production and control. We value transparency, not just with specs but also with the tough lessons every lot teaches us.

    Why This Compound Demands Respect on the Synthesis Line

    Compared to generic alkylated nitriles, or less bulky sulfonyl nitriles, 2-(Tert-Butylsulfonyl)Acetonitrile brings a blend of functional group protection and steric hindrance. The tert-butylsulfonyl group shields the molecule in steps that need selective reactivity. Unlike simple acetonitrile or methylsulfonyl analogs, this bulkier group resists undesired side reactions—a trait that proves valuable in medicinal chemistry, where selectivity often marks the difference between scrap and success. From our standpoint, every percent gained in yield adds value to both the customer’s process and their bottom line.

    Hydrolytic stability holds up even in cases where ambient moisture or trace water in solvents could threaten other nitriles or simple alkylsulfonyl derivatives. No one enjoys explaining unexpected breakdown to auditors or regulators; the proof shows up in repeatable storage without degradation. It isn’t just about containment. Experience with customers running 2-(Tert-Butylsulfonyl)Acetonitrile through multi-step assembly routes shows cleaner workups, less time spent on post-reaction purification, and generally higher crude purity. Less time purifying means more time pushing the project forward, a detail hard to see on spreadsheets but always easy to spot on the shop floor.

    What Users Ask—and What We’ve Learned to Provide

    The conversations that shape the practical value of this compound usually take place far from the website or order page. Chemists ask about solubility in their favorite solvents, or how the bulk tert-butylsulfonyl group handles in mixed organic-aqueous systems. Direct experience in the plant tells us most users favor polar aprotic solvents (like DMF or DMSO) to dissolve 2-(Tert-Butylsulfonyl)Acetonitrile quickly and cleanly. In less polar alcohols or nonpolar solvents, some stirring helps, but no dramatic issues ever came to our attention. For scale applications, filtration and reclamation move smoothly due to the crystal habit and stability.

    Customers working at the bench often ask about reactivity—does our product introduce unexpected byproducts or color-forming issues? Over years, strict process control proved to be the best answer: side reactions usually vanish on a reliable foundation of purity and crystal structure. We’ve run the trials ourselves, both in-house and at customer sites, to confirm that process reproducibility does not drift between lots or after months of storage. Our chemists have removed contamination issues tied to trace metals and unstable residues by pushing all intermediates through additional purification steps, making every downstream run that much smoother.

    Safety also gets scrutiny, as organosulfur compounds can sometimes surprise with odor, reactivity, or irritation. Our protocols emphasize dust control and fume extraction, keeping worker comfort and plant safety at the front. We pack our product in leak-resistant bottles and require proper labeling—a small step, but one that heads off mix-ups or exposure incidents. Every plant manager knows the cost of a safety incident, both in lost production and morale. We cut risk by making guidelines easy to follow and packing product with clarity. Experience proves that clear instructions save more mistakes than any warning label.

    Building Trust in Every Order—The Manufacturer's Experience

    Our direct responsibility for synthesis and shipment means customers never debate what’s inside the bottle. By handling every stage—from precursor synthesis and isolation to packing and shipping—traceability stays unbroken. One particular strength lies in adaptability: the same manufacturing team that handles routine lots can shift production levels on demand, ramping up for larger orders or contract delivery. This flexibility stems from direct plant control, something that’s hard to replicate in outsourced supply chains.

    Trace documents and quality reports accompany every shipment, not to satisfy bureaucracy but because we found customers make fewer errors and fewer returns when transparency starts at the source. The ability to trace a lot back through its entire manufacturing process gives our partners a secure sense of security, especially when regulatory requirements place a premium on material origin. Our focus on each detail—because we lived through costly gaps, mix-ups, and headaches—lets us build reliability into every container shipped.

    Staying Ahead—Continuous Improvement Grounded in Real-World Experience

    Manufacturing 2-(Tert-Butylsulfonyl)Acetonitrile, day in and day out, exposed the little things that can derail even a robust process. Storage methods morphed over time, switching from glass to high-barrier plastics to minimize trace moisture and air ingress. Shipping practices adjusted as international clients demanded longer shelf life during transit. We tracked how processing conditions affected polymorphism, and we honed in on those that deliver the most manageable, predictable crystalline form. If a process improvement emerges—whether from customer feedback, unexpected storage results, or regulatory updates—it gets folded right back into our daily routine.

    Stagnation holds no place in the specialty chemicals business. Regulatory standards evolve, safety guidance thickens, and customer applications expand. Our approach leans into these changes, using each experience as a stepping stone. Training matters; our chemists keep up-to-date with best practices, both for the traditional reactions and new waves of green chemistry. We prioritize minimizing waste by optimizing synthesis and recovery, and keep solvents and reagents reused or recycled wherever chemistry allows. This approach takes investment, but we’ve always found that doing it right once beats fixing mistakes down the road.

    Addressing Industry Pain Points—A Chemical Producer’s Roadmap

    The challenges tied to specialty chemicals—especially for critical intermediates like 2-(Tert-Butylsulfonyl)Acetonitrile—go beyond analytical numbers. Delays in delivery, inconsistent lots, and batch returns create friction between supplier and user, and they sap morale on both sides. From our end, the solution rests on integrated, end-to-end production and real-time customer communication. We devote resources to rapid response, not just in emergencies, but any time a question or concern arises. If a memo flags a potential drift in purity or an issue in handling, we address it at the next batch inspection, not after it leaves our warehouse.

    We also recognize the evolution in downstream practices. As green chemistry methods expand, process developers push for safer, less toxic, and more efficient routes. 2-(Tert-Butylsulfonyl)Acetonitrile offers a balance of stability and reactivity, letting chemists sidestep more hazardous functional group transformations or extra steps for purification. Our teams regularly collaborate with industrial partners and academic labs to troubleshoot process bottlenecks and capture the value that incremental tweaks deliver at kilolab and ton scale alike.

    Looking to the Future—Ongoing Commitment as an Originator, Not a Middleman

    Our role goes deeper than simple logistics. Each improvement in the synthesis, handling, and delivery of 2-(Tert-Butylsulfonyl)Acetonitrile reflects decades at the reactor, not just the desk. Every change—big or small—gets driven by hands-on feedback, on-site trials, and a relentless focus on performance. Reliability, traceability, and openness aren’t buzzwords in our plant; they’re the products of lessons learned, both the easy way and the hard way.

    We see each shipment as a relationship. Real accountability doesn’t stop when stock reaches customer benches; it extends into the next product run, the next analytical question, the next regulatory review. We know firsthand how challenging new molecule synthesis can be, and we work daily to ensure our materials make the journey a little smoother. The loyalty of our customers and the pride in our team’s accomplishments stand as the strongest indicators of value—both for us and the industries we serve.

    Choosing 2-(Tert-Butylsulfonyl)Acetonitrile from our source means working with a manufacturer that knows each molecule from its roots to its final destination. That knowledge shows up not in claims, but in repeatable, clean chemistry, improved efficiency, and fewer unwanted surprises. We put our name on each container—and to us, that means something deeper than a label. It’s our signature on science, made solid.