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HS Code |
157625 |
| Chemical Name | 2-Dimethylaminoisopropyl Chloride Hydrochloride |
| Molecular Formula | C5H13Cl2N |
| Molecular Weight | 158.08 g/mol |
| Cas Number | 4584-49-0 |
| Appearance | White to off-white crystalline powder |
| Melting Point | 144-147 °C |
| Solubility | Soluble in water |
| Storage Temperature | 2-8 °C |
| Synonyms | 2-(Dimethylamino)-1-chloropropane hydrochloride |
| Purity | Typically ≥98% |
| Hazard Classification | Irritant |
| Ec Number | 224-957-0 |
As an accredited 2-Dimethylaminoisopropyl Chloride Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The packaging for 2-Dimethylaminoisopropyl Chloride Hydrochloride (25g) is a sealed amber glass bottle with a tamper-proof cap and hazard labeling. |
| Shipping | 2-Dimethylaminoisopropyl Chloride Hydrochloride should be shipped in tightly sealed, corrosion-resistant containers, protected from moisture and incompatible substances. Transport must comply with regulatory requirements for hazardous chemicals, including appropriate labeling and documentation. Avoid exposure to extreme temperatures, and ensure handling by trained personnel using adequate personal protective equipment. |
| Storage | Store **2-Dimethylaminoisopropyl Chloride Hydrochloride** in a tightly closed, clearly labeled container in a cool, dry, and well-ventilated area away from moisture, heat, and incompatible materials (such as strong oxidizers). Avoid exposure to direct sunlight. Use appropriate corrosion-resistant shelving, and ensure spill containment is in place. Access should be limited to trained personnel using suitable protective equipment. |
Applications of 2-Dimethylaminoisopropyl Chloride Hydrochloride in Industrial Manufacturing2-Dimethylaminoisopropyl Chloride Hydrochloride serves as a key intermediate and functional ingredient across specialty chemicals manufacturing. As the original producer, we supply direct to formulators and integrators in sectors with controlled, validated, and technically regulated processes. Below are real downstream applications and the industrial requirements for each scenario. 1. Synthesis of Pharmaceutical Intermediates for Antihistamine AgentsIn pharmaceutical ingredient manufacturing, this material acts as a core alkylating agent during the production of several antihistamine drug intermediates, such as those found in the synthesis pipeline for dimethindene and related compounds. Manufacturers incorporate it into the stepwise build-up of branched amine structures, requiring precise molar control and minimization of residual chloride. Quality assurance teams monitor for batch consistency, while formulation chemists adjust the ratio according to molecular yield targets and downstream purification requirements. Industry compliance standards
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2. Quaternary Ammonium Compound Production for Industrial BiocidesManufacturers of specialty biocides depend upon this raw material to prepare quaternary ammonium salts with targeted antimicrobial profiles. The chloride hydrochloride form ensures controlled reactivity when reacting with tertiary amine partners for synthesis of disinfectant actives used in institutional and food processing environments. Process chemists closely monitor stoichiometry and excess handling to reduce residual chlorides and meet authorized impurity specifications for these finished actives. Industry compliance standards
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3. Surface-Active Agent (Surfactant) Raw Material in Personal Care and Hygiene FormulationsPersonal care formulation plants employ this compound as a core functional intermediate for cationic surfactant production, primarily for hair conditioners, antistatic agents, and skin care emulsifiers. During the surfactant manufacturing cycle, the material facilitates introduction of dialkylamino groups into alkyl chains, significantly affecting deposition and rinse-off properties. Regulatory audit trails require end-use tracking and ingredient disclosure as well as batch traceability. Industry compliance standards
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4. Intermediate in Synthesis of Ion-Exchange Resins for Water TreatmentWater treatment resin manufacturers utilize this intermediate during the amination stage of weak-base or mixed-bed ion exchange resin production. Its structure enables high selectivity and exchange capacity for specific cations and organics. Facilities validate each batch for chloride ion content and amine conversion rates, aligning formulation closely with the performance metrics required for municipal or industrial water purification deployments. Industry compliance standards
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5. Synthesis of Agrochemical Intermediates for Herbicide and Plant Growth Regulator FormulationsAgrochemical active ingredient manufacturers depend on this material for introducing N,N-dimethylamino moieties into polar intermediate molecules, especially in the production of certain phenoxyalkanoic acid herbicides and growth regulators. Process plants emphasize selective conversion and rigorous impurity control to meet both global and local residue requirements for agricultural use. Downstream partners typically require detailed batch release analytics and storage stability documentation. Industry compliance standards
Typical usage ratio
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Direct experience with the manufacturing and handling of specialty amine intermediates has made it clear that 2-Dimethylaminoisopropyl Chloride Hydrochloride (often recognized in labs and production units as DMIC HCl) brings practical value to the table. This compound features a methylated amine structure bonded to an isopropyl chloride, further stabilized by hydrochloride salt formation. From early synthesis stages to the final crystallization step, the product shows excellent stability and consistent reactivity. Its physical and chemical characteristics result from close attention to both precise reaction conditions and thorough purification, which always makes a difference for downstream use.
DMIC HCl, as we commonly call it, displays a well-defined crystalline or powdery texture that performs reliably in both pilot and full-plant setups. Based on our experience, the main identifiers—molecular weight, solubility in polar solvents, and melting profile—offer predictable behavior under varied lab and industrial settings. Lot-to-lot performance, monitored by chromatography and titration, reveals consistency in amine content and chloride proportion. These factors contribute directly to dependable incorporation in a range of organic synthetic processes. Importance rests not only on its molecular blueprint, but also on how stringent controls during synthesis help limit impurities that can interfere with reaction efficiency.
Over the years, customers—especially in pharmaceutical research and specialty chemical development—have relied on this amine chloride salt as an intermediate for quaternization, alkylation, and further functionalization steps. Aldehyde and ketone derivatives have been built through this pathway, and its reactivity profile is well-understood by both research chemists and production engineers.
When evaluating performance under scaled conditions, this compound’s hydrochloride form brings handling advantages. Compared to the free base variant, it stores securely under ambient conditions and carries less risk of volatilization and atmospheric moisture absorption. Our shift from free amine to hydrochloride salt years ago was prompted by field complaints about odor, instability, and variable quality; we saw a near-immediate improvement in shelf life and batch-to-batch uniformity.
Practical application extends beyond pharmaceuticals. Custom surfactant synthesis, specialty coatings, agrochemicals, and advanced polymer modification routines have all benefited from the unique amine donor capability of DMIC HCl. This isn’t just about delivering a reagent on specification—it’s about enabling reliable product development cycles where the role of starting materials can make or break new syntheses.
There are plenty of amine chlorides out there, but experience has shown that 2-Dimethylaminoisopropyl Chloride Hydrochloride stands out in both reactivity and selectivity. Most basic chloro- or aminoalkyl halides lack the dual alkyl substitution that gives this intermediate better nucleophilicity and more predictable quaternization behavior. The hydrochloride form contributes to both process cleanliness and shelf stability, helping avoid the browning and decomposition issues that often show up in free-base forms of similar compounds.
Performance in final applications tests the value of synthetic intermediates. For example, the secondary amine group grants lower basicity than primary amines, which means fewer unwanted side products—something our pharmaceutical partners have noted time and again in project feedback. With several years of tracked stability data, we can confidently say this product supports the kind of reproducibility required for scale-up or registration batches in regulated environments.
In practical use, the crystalline hydrochloride is preferred over oily or aqueous solutions of the base form. Powder handling dramatically reduces airborne losses and unintentional operator exposure. We noticed early on that switching to the hydrochloride variant minimized both raw material loss and operator complaints about odor and skin irritation, especially on lines running continuous or semi-batch operations.
Shaping best practice in manufacturing starts at the raw material stage. Sourcing the starting amines from tried-and-true suppliers, then carrying out alkylation under moisture-controlled settings, ensures that product purity stays within tight boundaries. Controlled addition of hydrochloric acid—not just in excess but calibrated to react with exactly the right stoichiometry—leads to a product that doesn't corrode equipment or leave stubborn residues. Consistent crystallization protocols matter, and the drying phase is always monitored for precise water content, since excessive moisture can destabilize batches in long-term storage.
Our operators have seen that small process shifts—reaction temperature adjustments, stirring intensity, sequence of acid and amine addition—produce significant changes in final product appearance and purity. For this reason, we don’t cut corners at any stage, whether testing intermediates with NMR or final lots with ion chromatography. From a practical angle, spending extra time dialing in these parameters pays dividends later, when end-users run larger reactions and expect the same outcome every time.
Packaging choices play a role, too. Moisture-barrier liners, careful drum or pail selection, and robust sealing all help retain the product at specification through local and overseas shipments. Our logistics staff watch transport humidity and warehouse conditions, as these real-world factors can undo careful manufacturing in just a few weeks if overlooked. We routinely collect data on in-transit stability; so far, controlled packaging methods have prevented product caking, clumping, or moisture-induced hydrolysis that would otherwise reduce performance.
As those involved in process R&D know, intermediate quality sets the tone for every step downstream. Over hundreds of pilot and production runs at our plant, DMIC HCl has delivered consistent conversion rates above 95% when used in common quaternization and alkylation schemes. Finished goods produced from our batches have repeatedly cleared in-house and third-party regulatory hurdles with minimal rework. We’ve supported both small-scale agile development and multiton-per-month supply to established product lines, always with a priority on delivering the highest lot integrity.
Whether a lab is designing improved CNS-active drugs, advanced lithography aids, or specialty water-treatment agents, DMIC HCl’s well-behaved reactivity offers a foundation that saves time and money. Real-word feedback often highlights its compatibility with various solvent systems, and the convenience it brings in multi-component reactions requiring clean conversion without excess purification steps.
Focusing on process reliability, we take pride in the fact that our formulation supports higher yields with cleaner mass balances. Our QC department tracks every out-of-trend test so that users don’t have to contend with surprises. If a batch doesn’t make grade, it doesn’t ship—regardless of projected delivery schedules.
Manufacturers carry unique safety responsibilities. Over years of pilot runs and plant scale-ups, we’ve designed every step with safety in mind. The conversion to hydrochloride salt form reduces both volatility and the occurrence of irritating vapors. Operators on our floor rarely report issues with odor or inhalation risks, and the rate of accidental skin contact is greatly reduced with solid product handling.
Our HSE staff regularly review and update handling procedures for this intermediate. Simple protocols yield the best results: wear proper PPE, keep the area dry, and handle powders in well-ventilated spaces. Waste minimization is built into the process: spent filters, wash solvents, and packaging are managed per accepted local and international guidelines. Solvent recovery units reclaim much of what’s used during production and purification. We track all waste streams to ensure reliable compliance and to reduce environmental burden year to year.
In the rare case of spill or breakage during transport, the hydrochloride salt doesn’t create persistent odors or spread through the air. Cleanup consists mostly of sweeping and careful washing before surface neutralization, something our loading-dock crews appreciate. Over the past decade, switching our product lines to hydrochloride salts of key amines has had a positive impact on both workplace safety and community relations—complaints about odors or emissions have dropped to near zero.
Making and shipping DMIC HCl isn’t just a matter of sticking to formulas. Real-world manufacturing means paying attention to feedback—both from customers and from our own production team. We run pilot trials of new or improved production routes, measuring product yield, impurity levels, and handling characteristics before rolling changes out on a plant-wide basis. This method keeps us flexible while maintaining reliability.
Customers sometimes approach us after using material from less attentive suppliers. Their main concern is always reliability—batches that behave unpredictably in the same reaction, or that arrive with unacceptable levels of by-products. Our reputation has grown from fixing these problems: tailoring process parameters, fine-tuning purification, and offering batch-level analytical data that our customers can verify in their own QA labs.
We welcome site visits, customer audits, and third-party inspections. Part of building trust lies in opening the floor to evaluation and critique, and demonstrating batch traceability. We maintain detailed run histories, full COA documentation, and digital archives for every production lot. Any deviation from specification leads directly to a corrective action review.
Continuous improvement plays a role in our ongoing work with DMIC HCl. Our R&D team investigates both raw material sourcing and new purification techniques, always looking to further increase both yield and product consistency. This doesn’t stop at routine production—our close contact with labs at pharmaceutical and specialty chemical companies feeds right back into our own pilot lines. It’s not unusual for researchers to test new synthetic ideas using our DMIC HCl, then return with feedback on selectivity, solubility, or storage results.
Based on user feedback, we recently optimized the drying and crystal selection step. Product shelf life now exceeds two years under routine storage, and color stability is markedly improved. Certain custom specifications, such as adjusted particle size or reduced residual solvents, are handled as special projects. Our technical department has always prioritized keeping open lines of communication with customers around the world, and these efforts pay off in practical results.
Careful data collection helps identify and eliminate trace-level impurities that only show up in advanced catalytic or secondary modification systems. Clean product not only improves downstream success rates, it also reduces process headaches for everyone involved.
Demands change every year, particularly as new applications for DMIC HCl develop in fields outside historically established pharmaceutical and surfactant work. Customers in the advanced polymer and agrochemical segments increasingly seek broader supplier partnerships built on transparency and data sharing. Our direct role as manufacturer gives us full oversight of every production variable, which becomes a key asset when tight supply chains or special documentation needs arise.
Every request for increased traceability or dedicated analytical support is viewed as a chance to raise our standards even higher. Over time, the partnership between manufacturer and end user grows strongest when data flows both ways, supporting not just current needs but next-generation research and production success.
Supply reliability stands at the core of what we do. Market disruptions or global logistics fluctuations have less impact when transparency and contingency planning anchor the production chain. Direct manufacturing lets us maintain both buffer stocks and the flexibility to adjust batch sized quickly in response to demand changes—something resellers and middlemen can rarely manage effectively.
Our lead times, from order to shipment, are based on practical experience with both local and export customers. Processing times can be adjusted up or down depending on urgency, weather considerations, and shipping lane activity. If delays arise from raw material supply or external regulatory shifts, we immediately communicate those downstream, ensuring customers can adapt schedules on their end.
Shipping and customs documentation share the same importance as batch purity. All shipments—domestic or international—arrive with full analytical background, packaging safety measures, and compliance certification as required. This helps avoid bottlenecks and keeps project timelines on track.
Decades of experience in chemical synthesis and direct manufacture of 2-Dimethylaminoisopropyl Chloride Hydrochloride have shaped a practical, results-oriented approach. Every production run embodies a commitment to high standards, innovation, and accountability. Whether meeting the needs of R&D teams pushing boundaries or supporting established product lines in bulk, our process tailors responsiveness and data transparency to fit real-world business and technical demands.
Our entire manufacturing team shares the belief that the foundation of new chemistry—whether drug discovery, advanced coatings, or niche polymer development—is only as strong as each critical intermediate. Using insight gained directly from years of pilot and full-scale production, we deliver DMIC HCl built for reliability and backed by direct accountability throughout the product life cycle.