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2-Diisopropylaminoethyl Chloride Hydrochloride

    • Product Name 2-Diisopropylaminoethyl Chloride Hydrochloride
    • Alias Chloroethyl Diisopropylamine Hydrochloride
    • Einecs 211-748-4
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    847216

    Chemical Name 2-Diisopropylaminoethyl Chloride Hydrochloride
    Synonyms N,N-Diisopropylaminoethyl chloride hydrochloride
    Cas Number 4261-68-1
    Molecular Formula C8H20Cl2N
    Molecular Weight 202.16 g/mol
    Appearance White to off-white crystalline solid
    Melting Point 154-157°C
    Solubility Soluble in water and alcohol
    Storage Conditions Store at 2-8°C, tightly closed, away from moisture
    Purity Typically ≥98%
    Boiling Point Decomposes before boiling
    Odor Amine-like
    Stability Stable under recommended storage conditions
    Hazard Classification Irritant
    Uses Intermediate in organic synthesis

    As an accredited 2-Diisopropylaminoethyl Chloride Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 500g of 2-Diisopropylaminoethyl Chloride Hydrochloride is packaged in a sealed amber glass bottle with tamper-evident cap and labeling.
    Shipping 2-Diisopropylaminoethyl Chloride Hydrochloride is shipped in tightly sealed containers, protected from moisture and direct sunlight. It is classified as a hazardous chemical, requiring proper labeling and documentation. Handling and transport must comply with local and international safety regulations, including appropriate packaging and precautions to prevent spillage or accidental exposure.
    Storage 2-Diisopropylaminoethyl Chloride Hydrochloride should be stored in a cool, dry, well-ventilated area away from incompatible substances such as strong oxidizers. Keep the container tightly closed and protected from moisture. Store at room temperature, avoiding excessive heat or direct sunlight. Ensure proper labeling and secure storage to prevent accidental spills or exposure. Use appropriate secondary containment to minimize contamination risk.
    Application of 2-Diisopropylaminoethyl Chloride Hydrochloride

    Applications of 2-Diisopropylaminoethyl Chloride Hydrochloride in Industrial Manufacturing

    As a manufacturer of this advanced intermediate, we supply 2-Diisopropylaminoethyl Chloride Hydrochloride for established sectors that require reliable performance and strict quality assurance. Our production supports precise formulation for demanding synthesis routes in specialty chemicals and advanced manufacturing.

    1. Active Pharmaceutical Ingredient (API) Intermediate Synthesis

    Pharmaceutical manufacturers select this intermediate in multi-step synthesis chains for select APIs, most notably within antihistamine, anesthetic, and some central nervous system agents. The compound typically enters as a key alkylating agent to introduce diisopropylamino groups on core molecules, driving specific functional group transformations with controlled yields. Our technical team works with process chemists to maintain quality aligned with strict GMP expectations and regulatory filings, supporting kilo- to ton-scale projects.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • USP / EP monographs as required by downstream API
    • FDA 21 CFR Part 210/211 for drug components
    • EDQM guidelines for traceability and impurity control

    Typical usage ratio

    • 0.85–1.10 molar equivalents per substrate, tunable per target API molecule and process step

    Downstream process integration

    • Charged during nucleophilic substitution or alkylation stage in multi-step synthetic sequence
    • Introduced under controlled temperature and inert-gas conditions to prevent side reactions

    Final product types

    • First-generation antihistamines
    • Short-acting local anesthetics
    • Psychoactive CNS agents (where permitted)
    • API intermediates forming part of complex finished dosages

    2. Quaternary Ammonium Compound Manufacturing

    Chemical formulators use this intermediate in the production of specific quaternary ammonium compounds for lab reagents and specialty industrial chemicals. The material provides a chloride source for controlled quaternization. In these facilities, chemists monitor reaction conditions closely to prevent excess byproduct formation. Consistent impurity profiles are vital for quality control, especially when quaternaries are destined for regulated laboratory or technical applications.

    Industry compliance standards

    • REACH compliance for supply within Europe
    • ISO 9001:2015 Quality Management System
    • Custom specifications per customer technical data sheets
    • SDS and GHS labelling compliance

    Typical usage ratio

    • 1.00–1.30 moles per target tertiary amine, depending on desired substitution yield

    Downstream process integration

    • Added during direct quaternization in batch or semi-batch reactors
    • Process control points at addition, mixing, and temperature hold

    Final product types

    • Alkyl chloride quaternary ammonium salts
    • Analytical lab reagents
    • Antistatic agents for industrial applications
    • Cationic surfactants (restricted to registered use cases)

    3. Specialty Resin and Polymer Curing Agents

    Specialty resin manufacturers integrate this intermediate as a functional hardener or chain modifier for advanced epoxy, polyurethane, and select acrylic systems. Its tertiary amine functionality supports catalysis or crosslinking—especially in rigid or chemical-resistant formulations. Batch engineers monitor loading and mixing timing to control network formation and final physical properties. Proper QC ensures no migration of residuals, safeguarding downstream compliance.

    Industry compliance standards

    • ISO 14001 for environmental management in specialty chemical plants
    • UL 94 for polymer end-use fire safety classification
    • RoHS Directive for electrical resin applications (if applicable)
    • In-house analytical protocols for residual amine control

    Typical usage ratio

    • 0.5–3.0% by mass relative to total resin formulation, adjusted based on polymer matrix and target mechanical strength

    Downstream process integration

    • Pre-mixed with base resin prior to polymerization or curing stages
    • Process monitoring for pot life and exotherm management

    Final product types

    • High-performance epoxy adhesives
    • Custom molded polymer parts for electronics
    • Chemically resistant industrial coatings
    • Structural composites for transportation

    4. Fine Chemical Synthesis: Heterocyclic Building Block

    Fine chemical companies use the intermediate to introduce diisopropylamino functions onto aromatic or heterocyclic scaffolds. This allows access to advanced intermediates for agrochemical actives, dyes, and functional monomers. Operations maintain closed material handling to control exothermic reaction profiles and byproduct minimization. Downstream partners require batch-specific COA and impurity documentation for further processing into regulated chemical entities.

    Industry compliance standards

    • ISO 17025 accredited laboratory analysis for batch release
    • Chemical Control Law requirements (Japan, if exported)
    • REACH substance registration dossiers
    • Material Declaration for downstream supply chain traceability

    Typical usage ratio

    • 10–20 mol% relative to heterocyclic starting material, varied according to target product yield and substitution efficiency

    Downstream process integration

    • Added in key alkylation or amination step after core ring assembly
    • Batch pressure and temperature precisely controlled

    Final product types

    • Agrochemical intermediates
    • Specialty dyes for plastics and textiles
    • Building blocks for polymer additives
    • Complex ligands for chemical catalysis
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    Certification & Compliance
    More Introduction

    2-Diisopropylaminoethyl Chloride Hydrochloride: A Closer Look From the Production Floor

    What We Make and Why It Matters

    Our work with 2-Diisopropylaminoethyl Chloride Hydrochloride starts long before anyone places an order. Since our founding days, we have focused on specialty amines, and this compound, which many know by its shorthand DIPAEC, stands out in our catalog. With a chemical formula C8H20Cl2N2 and a molar mass of 217.17 g/mol, DIPAEC has earned a consistent spot in the portfolios of pharmaceutical companies, fine chemical plants, and academic labs.

    In our plant, we synthesize 2-Diisopropylaminoethyl Chloride Hydrochloride with years of method improvement behind the scenes. The material comes out as a white crystalline powder with a distinct odor characteristic of amines. Tight control of moisture and temperature during synthesis and packaging keeps impurities in check. We regularly check for residual solvents and chloride content, aiming for levels below 0.2% where possible. At scale, those quality decisions add up, minimizing side reactions and breakdowns during use.

    How DIPAEC Performs in Real Workflows

    Talking to our partners in pharma R&D, one truth stands above the rest—reproducibility matters more than anything. 2-Diisopropylaminoethyl Chloride Hydrochloride acts both as a synthetic intermediate and as a key quaternization reagent for some of the most delicate, time-sensitive processes around. The hydrochloride version holds unique value for process chemists. Unlike the free base, the hydrochloride salt stabilizes the molecule, protecting it from picking up excess water and turning gummy—something free amines often do. Most customers buy this salt for its dry, predictable handling.

    An ideal DIPAEC batch blends straight into polar solvents like water or DMF. Its solubility profile in our recent production runs consistently matches published data, saving time for chemists who measure precise stoichiometries. Those working in peptide chemistry see smooth coupling steps with minimized racemization. Alkylation reactions hit higher yields. In other words, the salt form does not just sit better on the shelf. It helps boost success rates across entire research pipelines.

    Not Just Generic: Benchmarks That Set Our DIPAEC Apart

    Our production team has run enough batches to spot the subtle shifts that come with each shipment of raw inputs. Over the years, we learned that even a slight tweak in one step, such as controlling nitrogen sweep speed during chlorination, can either spike or suppress color and purity. We run in-line NMR during reaction to catch by-products early and have cut down the number of recrystallization cycles by fine-tuning temperature ramps. For customers who push the limits of purity for scale-up, our data shows average assay levels of >99% and chloride ion content that consistently beats the industry mean.

    And practical issues cannot be ignored. DIPAEC is moisture-sensitive. Bags and drums we ship are triple-lined with laminate foils under nitrogen, avoiding the formation of sticky masses that slow down reactors. This might sound straightforward, yet many manufacturers still rely on single-layer liners and hope for the best, leading to costly clumping on arrival. Records from our logistics team show that correct packaging has cut waste and boosted feedback from repeat customers.

    Why Our DIPAEC is a Go-To Choice

    Many chemists ask about the difference between using 2-Diisopropylaminoethyl Chloride Hydrochloride and related compounds. One focus falls on the steric profile of the diisopropyl groups. They block unwanted side reactions, so selectivity during alkylation gives higher yields. Compared to dimethyl analogs, the extra bulk in DIPAEC makes a clear difference in reaction profiles with more demanding substrates.

    From a manufacturing angle, we notice these steric advantages translate to cleaner post-reaction profiles—less time spent stripping out minor isomers. Anyone synthesizing quaternary ammonium salts for drug development or advanced polymers will appreciate this. In our own testing, yields of key alkylation products ran several points higher using our DIPAEC versus less hindered analogs.

    How We Reduce Impacts and Improve Consistency

    Making DIPAEC demands respect for both safety and environmental controls. Chlorinated intermediates create hazards that only seasoned operators handle well. We tackle this through scrubbed wet systems and continuous monitoring of airborne chloride and amines. Even one unnoticed leak can cause headaches, not only for us but for our neighbors. Each batch comes with a Certificate of Analysis (COA) featuring traceability from starting solvent to finished lot. That matters because recalls or deviations waste more than just money; they break trust with people depending on every drum and bag.

    Improving production cycles for DIPAEC does not mean pushing out more metric tons per year and hoping for fewer rejects. Instead, it means running every batch at optimized temperature and solvent ratios, even during supply kinks. We built automation for pH and conductivity checks in real time, not just in end-of-line sample grabs. As a result, we see fewer off-spec batches. In the rare case something slips, we reprocess, not landfill, holding each material to the same standards we apply to our most regulated APIs.

    Supply Realities and Cost Management

    Price trends for 2-Diisopropylaminoethyl Chloride Hydrochloride do not escape the bigger swings in the amines and halides markets. Relying on a stable supply of diisopropylamine and high-grade methyl chloride gives us an edge, but there are times when upsets hit the entire sector. By running our own distillation and recycling units, we cut down exposures to spikes, passing reliable pricing on to our partners.

    In a year where logistics challenged nearly every link in the global chain, we invested in local storage and quick turnaround distribution centers. It paid off: lead times for custom lots shortened, and fewer customers lost weeks waiting for specialty goods to clear customs. Instead of hunting for the lowest spot bid, our approach commits us to stable output and honest feedback. Everyone knows which batch they are holding, what to expect upon opening, and who to call if something is not right.

    Using DIPAEC: Real Experiences and Lessons Learned

    As a group that both makes and uses these intermediates in pilot projects, our team logs reaction records and feedback from hundreds of client sites. We regularly field questions about compatibility, side reaction risks, and tips for dissolving DIPAEC in scale equipment. One detail often overlooked by new users is the exotherm during dissolution in water—adding powder slowly while stirring and cooling reduces gas release and keeps material in solution longer.

    Many researchers run initial screens with glassware, but as reactors scale, issues with powder feeding and clogging show up. Our technical support line fields requests each quarter for advice on anti-caking and feeding systems. Packing machines with controlled humidity helps, but so does switching to batch-wise slurry introduction and keeping DIPAEC cold up to use. It is in these specifics that differences between suppliers show up most clearly.

    We have seen alternative sources arrive caked and stuck or showing discoloration from thermal cycling. That changes everything for a process that depends on precise workup and repeatable conditions. Our support chemists step in, recommending dispersion methods and solvent choices based on the particular plant’s system. This hands-on feedback, catalogued with each lot shipped, feeds back into process modifications, improving results for the next production window.

    Difference Over Imitation Products: Observable at Every Level

    A fair amount of 2-Diisopropylaminoethyl Chloride Hydrochloride on the market comes from resellers who blend down lesser lots or mix batches for price advantage. As direct manufacturers, we start with single-batch traceability from the start of synthesis. We watch for by-products, unreacted starting materials, and particle size distribution because so many critical parameters get set here, not during warehouse blending. Years back, our lab found trace hydrolysis byproducts in competitor samples—an impurity tough to see with standard HPLC. Now we routinely run GC-MS confirmations, and several partners have shifted sourcing to our facility based solely on such side-by-side analysis.

    We ship DIPAEC with measured bulk density and certificate-backed analysis for residual solvents and water. Packs over 1 kg ship under nitrogen. Each lot builds on internal specs shaped by actual project feedback, not just historical averages. On occasion, collaborating with process R&D teams led to tweaks in crystallization steps, either favoring larger chunks for easier handling or finer powders for certain rapid-mix reactors. We do not believe in off-the-shelf solutions for everyone.

    DIPAEC’s Changing Role in Cutting-Edge Chemistry

    Demand for quaternization reagents like DIPAEC is not flat. With the surge in research targeting advanced ion channels, designer peptides, and new drug modalities, more teams look for specialty reagents with robust, batch-to-batch reliability. In peptide coupling, DIPAEC’s steric footprint and chloride salt handling give a leg up over more basic alkyl agents. In the last three years, we watched as new patents reference DIPAEC in key steps, driven partly by the desire for single-step synthesis routes that avoid multi-day purification.

    Academic groups, too, send requests for smaller pack sizes for mechanistic studies and scale-up pilots. Many tune reaction conditions to get clean NMR and HPLC traces, often using our QC data as a foundation. Each season brings new insight into conditions for direct alkylation or salt metathesis integration. By cycling feedback from advanced users directly into plant operations, we bridge gaps between theory and practice, making each run more reliable.

    Future Expectations: Regulatory and Environmental Pressures

    As producers accustomed to regulatory scrutiny, we recognize that markets such as North America and the EU demand more than a clean COA. Per product, compliance checks for reach and other manufacturing directives matter as much as technical specs. We keep up with limits on nitrosamines, halide content, and control banding for production workers. Our future-facing projects invest in recycling waste chloride and minimizing solvent footprints. No one expects overnight results, but by engaging partners early during route development, we can design safer and more sustainable DIPAEC production for everyone in the loop.

    We also see emerging interest in green chemistry. It is a topic few can ignore anymore. On pilot lines, we run solvent recapture and ammonium chloride scrubber loops. Several projects underway aim at reducing the use of class 2 solvents entirely and adapting solid phase delivery for less waste. While these approaches take time to scale, direct dialogue with field chemists helps identify which changes bring real impact without disrupting the procedures people rely on every day.

    Staying Accountable From Synthesis to Shipment

    Reliability remains the top concern for everyone handling DIPAEC. As manufacturers, we commit to transparency from first synthesis to each delivered drum. No batch leaves our plant without having met the same assay and impurity standards that our own R&D work requires. Each year brings new users, each with unique needs and new challenges. We know that meeting specs once does not make a standard; repeated performance does.

    We tune our supply policies, packaging, and technical documentation with direct input from customers spanning pharmaceuticals, agricultural innovation, and academic research. Every change comes after real-time tracking of what works, what fails, and how improvement circles back into safer, better chemistry. That is what makes direct manufacturing of 2-Diisopropylaminoethyl Chloride Hydrochloride not only an exercise in chemical engineering but a matter of day-by-day trust and responsibility.

    Our Perspective: Beyond the Bottle

    Chemical manufacturing, especially for specialty reagents like DIPAEC, is both an art and a science. Each new run brings a chance to refine approach—minimizing waste, improving consistency, and listening to voices from both inside and outside the lab. Steadily, enhanced feedback loops and direct connection to the laboratories that deploy these intermediates deliver insights impossible to glean from paperwork alone.

    Our experience tells us that with 2-Diisopropylaminoethyl Chloride Hydrochloride, small changes—particle size, packaging, purity—often decide the difference between a process that scales and one that stalls out. High-quality, traceable DIPAEC enables users to focus not on troubleshooting but on discovery and progress. We are here for those challenges, responding in real time and never shying away from learning, adapting, and pushing forward.