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2-Aminoethylammonium Chloride

    • Product Name 2-Aminoethylammonium Chloride
    • Alias Ethanolammonium chloride
    • Einecs 218-070-3
    • 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

    593274

    Product Name 2-Aminoethylammonium Chloride
    Chemical Formula C2H9ClN2
    Molecular Weight 96.56 g/mol
    Appearance White crystalline solid
    Melting Point 225-230 °C (decomposes)
    Solubility In Water Highly soluble
    Boiling Point Decomposes before boiling
    Cas Number 20246-50-4
    Density 1.335 g/cm3 (approximate)
    Ph Of 1 Percent Solution 5.5 - 7.0
    Storage Conditions Store in a cool, dry place
    Odor Odorless

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

    Packing & Storage
    Packing The chemical 2-Aminoethylammonium Chloride is packaged in a 100g high-density polyethylene bottle with a tamper-evident screw cap.
    Shipping 2-Aminoethylammonium chloride is shipped securely in tightly sealed containers to prevent moisture absorption and contamination. Packages are appropriately labeled according to relevant safety and regulatory guidelines. The chemical should be transported in compliance with local and international regulations, and stored in a cool, dry place away from incompatible substances.
    Storage 2-Aminoethylammonium chloride should be stored in a tightly sealed container in a cool, dry, and well-ventilated area. Protect it from moisture and incompatible substances such as strong oxidizers. Store away from direct sunlight, sources of ignition, and excessive heat. Ensure proper labeling and keep it out of reach of unauthorized personnel. Always follow relevant safety data sheet recommendations.
    Application of 2-Aminoethylammonium Chloride

    Applications of 2-Aminoethylammonium Chloride in Industrial Manufacturing

    As the original producer of 2-Aminoethylammonium chloride, we supply this specialty chemical to advanced industrial sectors with well-established downstream applications. See below for a breakdown of major real-world utilization scenarios, including industry standards, dosage parameters, processing steps, and resulting end-use products.

    1. Electroplating Additives in Nickel Plating Baths

    Nickel electroplating processes frequently rely on our material as a plating brightener and grain refiner, especially within high-speed and precision applications such as connector manufacturing. The product integrates into proprietary additive packages, contributing to deposit leveling, reduced internal stress, and improved ductility. The additive’s performance depends on tight monitoring of bath chemistry and production protocols governed by established electroplating standards.

    Industry compliance standards

    • ISO 1456:2022 (Electroplated coatings of nickel)
    • ASTM B689 (Standard for Electroplated Engineering Nickel Coatings)
    • REACH and RoHS compliance for chemical compositions
    • QC systems per ISO 9001

    Typical usage ratio

    • 10–300 mg/L in working bath (standard formulations require dose adjustments based on additive systems, plating speed, and target finish properties)

    Downstream process integration

    • Dosed directly into nickel sulfamate or nickel sulfate plating baths during tank makeup or maintenance cycles
    • Performance monitored via Hull cell testing and solution analyses
    • Added prior to component immersion, with feedback adjustments during continuous production

    Final product types

    • Precision nickel-plated connectors
    • Printed circuit board through-hole platings
    • Electronic component housings
    • High-appearance nickel-plated mechanical parts

    2. Cationic Surfactant Intermediate for Textile Antistatics

    Textile finishing operations utilize our material as a core building block for antistatic agents designed for synthetic fiber processing. It acts as a quaternization precursor, where it reacts with fatty acids or alkylating agents to yield permanent cationic surfactants. Finished antistatic compounds based on this chemistry provide fiber-to-fiber charge dissipation, static reduction, and process enhancement in fiber spinning and weaving lines.

    Industry compliance standards

    • OEKO-TEX Standard 100 (textile chemical safety)
    • ZDHC MRSL (Manufacturing Restricted Substances List)
    • REACH registration for surfactant intermediates
    • ISO 14001 (Environmental Management Systems) implementation at plant level

    Typical usage ratio

    • Used at 1.5–5% by weight in antistatic agent synthesis charges; adjustment based on degree of quaternization and chain length of co-reactants

    Downstream process integration

    • Undergoes aqueous or solvent-based quaternization in reaction vessels
    • Final antistatic surfactant product added 0.05–0.3% (owf) to textile bath
    • QC lab validates charge and performance before shipment to textile plants

    Final product types

    • Antistatic finishes for polyester and nylon fibers
    • Fiber spinning lubricants
    • Anti-static weaving oils
    • Ready-to-use antistatic textile auxiliary formulations

    3. API Intermediate for Pharmaceutical Synthesis (e.g., Ethambutol)

    Within pharmaceutical active ingredient synthesis, the material provides a critical amine functionality for N-alkylation and salt formation steps. It serves as a specialty amine reactant for manufacturing anti-tubercular agents such as Ethambutol, introducing controlled aminated moieties under GMP-grade conditions. This chemistry must comply with strict traceability, impurity limits, and batch reproducibility required in regulated drug supply chains.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)
    • USP–NF Monographs pertaining to Ethambutol
    • Ph. Eur. (European Pharmacopoeia)
    • 21 CFR Part 211 (FDA cGMP for finished pharmaceuticals)

    Typical usage ratio

    • Reactant charges are calculated stoichiometrically; typically 1.0–1.10 molar equivalent relative to alkylating agents in the N-alkylation process for active intermediates

    Downstream process integration

    • Directly loaded into API synthesis reactors; involved in multi-step batch processes
    • Final salt or intermediate isolated via filtration and solvent extraction
    • In-process QC includes HPLC purity assays and residual amine specification confirmation

    Final product types

    • Ethambutol hydrochloride (API powder)
    • Bulk intermediates for further pharmaceutical processing
    • Finished active ingredient supplied to generic drug formulators
    • Pharmaceutical-grade reagents for aminated product lines

    4. Organic Synthesis Building Block for Ion-Exchange Resin Manufacture

    Resin formulators employ this amine salt as a precursor for functionalization of crosslinked polymer beads. Through post-polymerization aminolysis or condensation reactions, the amino compounds become covalently bound, imparting selective cationic exchange or chelation capacity. Finished resins enter water treatment, pharmaceutical, or specialty separations markets, where they demand high batch reproducibility and leachables compliance.

    Industry compliance standards

    • NSF/ANSI 61 (Materials for Drinking Water System Components)
    • 21 CFR 173.25 (Ion exchange resins used in food processing)
    • FDA DMF (Drug Master File) for pharmaceutical applications
    • Tested to ISO 9001-certified quality management system

    Typical usage ratio

    • Used in polymer functionalization at 3–8% relative to total resin solids, with final degree of substitution tuned via reaction monitoring

    Downstream process integration

    • Charged to post-polymerization reaction vessels after initial bead formation
    • Involved in aminolysis or condensation with halogenated polymers
    • Resin purification includes repeated washing and crosslinking cycles

    Final product types

    • Cation-exchange resin beads
    • Water softening resins
    • Pharmaceutical purification media
    • Custom resin products for food, beverage, or electronics purification

    5. Specialty Additive in High-Performance Corrosion Inhibitors

    Corrosion inhibitor formulations for pipeline and industrial cooling water systems use this amine salt as a neutralizing amine and film-forming agent. Its amine functionality helps buffer corrosive environments and fosters the adsorption of protective layers on metal surfaces, especially in closed recirculating systems. Dosage and use must account for system volume, pH targets, and inhibitor blend composition, governed by industry-specific monitoring programs.

    Industry compliance standards

    • ASTM D6832 (Standard Guide for Corrosion Tests in Cooling Systems)
    • ASME Boiler and Pressure Vessel Code Section VIII for pressure system components
    • ISO 5667-10 (Water quality – sampling for corrosion control chemicals)
    • Compliance with BPR (EU Biocidal Products Regulation) for formulations supplied in Europe

    Typical usage ratio

    • Inhibitor blends include 70–250 ppm; actual dose range varies with system size, water chemistry, and pH maintenance requirements

    Downstream process integration

    • Premixed with other neutralizing amines and corrosion inhibitors in blending tanks
    • Dosed continuously or batchwise into water circulation systems
    • Monitoring frequency aligns with system-specific quality control protocols

    Final product types

    • Chemical feed blends for industrial closed-loop chillers
    • Pipelining corrosion inhibitor packages
    • Cooling tower protection chemicals
    • Passivation fluids for plant shutdown and layup
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    Certification & Compliance
    More Introduction

    2-Aminoethylammonium Chloride: Engineering Reliability Through Consistency

    Stewarding Chemical Purity From Raw Batch to Final Product

    Nothing in the world of aminoethyl compounds brings more demand for precise production controls than 2-Aminoethylammonium Chloride. Speaking as a manufacturer who’s tracked this compound from its early synthetic routes to today’s sophisticated requirements, the real value in this product is less about its chemical name and more about the quiet backbone it provides for a host of applications.

    Our daily experience in the plant begins earlier than the clock. Every batch we produce, whether labeled AEAC-98 or AEAC-100, depends on carefully sourced raw materials. For chlorides, even a trace of moisture or a miscalculated temperature curve shows up in the final assay. We don’t just check our batch against a checklist, our lab staff live alongside these reactions. You can sense a production run’s consistency in the way the crystalline product settles after filtration, or how clean the pH comes through in quality testing. This isn’t about just passing standards; it’s about engineering reliability for a growing sector of the chemical industry.

    Product Profile: What Sets 2-Aminoethylammonium Chloride Apart

    2-Aminoethylammonium Chloride, also known for its robust use as an organic intermediate, shines in a market crammed with similar-sounding mono-chlorides and di-chloride derivatives. Looking at our long production runs, what stands out isn’t just the appearance or solubility, but how predictable its downstream reactions are. Our AEAC product, for instance, commonly arrives as a white crystalline solid, matched to a minimum purity exceeding 98% by HPLC, and always delivered with moisture under 0.1%. This isn’t overkill. For clients in pharmaceuticals, fine chemicals, and certain coating technologies, a tenth of a percent makes a world of difference. Off-the-shelf grades that cut corners end up driving up costs due to reaction failures or wasted blending cycles.

    We’ve run countless titrations and monitored every risk for unwanted byproducts like ethylenediamine or residual ammonia. The synthesis we use leverages a pressure-controlled batch reactor system that’s custom built for small-molecule amines. Batch records don’t just capture numbers for the auditors, they document everything from the identity of each lot of hydrochloric acid to the shifts in ambient temperature through the workday. We’ve traced the impact of minor details—a slow drip in the chloroethylamine feed leads to a more granular product and a tougher downstream filtration. You learn these lessons only by living with the chemistry, cleaning the filters, and following a batch from synthesis to final analysis.

    Beyond Commodity: Supporting Deep Integration in Specialized Sectors

    Over years, one trend becomes clear: clients value 2-Aminoethylammonium Chloride less as a simple raw material and more as a foundational partner for their specialized chemistry. Take pharmaceutical intermediates—reaction reproducibility turns on how clean the base salt is. Where generic suppliers often batch together mother liquors, we isolate crystals through multiple crops, even though this cuts into yield. That extra step keeps the purity high and side-solutes low.

    Fine chemical developers have flagged to us how tiny traces of unknowns can poison catalytic runs or block crystal formation. Early on, we listened to a client frustrated by solids hugging the side of a jacketed reactor; post-mortem on samples pointed to unknown organics from a prior poorly-filtered batch. Rigorous documentation and round-the-clock oversight at our plant make these incidents a distant memory. That explains why our 2-Aminoethylammonium Chloride lands on spec, ready for integration in chemical syntheses from crosslinkable polymers to biological conjugates.

    Different From Industry Lookalikes: Clarity on Variants

    With so many amine hydrochlorides on the market, confusion arises—some buyers have mistaken simple ethanolamine hydrochloride or ethylenediamine dihydrochloride for our specific mono-salt. We’re always clear: 2-Aminoethylammonium Chloride presents a unique molecular structure, acting as a primary amine with two ammonium sites, but without the complexity of di-amines. As direct manufacturers, we distinguish between possible double salt formation and our singularly defined product grade, confirming by both NMR and titration that we keep cross-contamination out of the final material.

    We have encountered cases where initial samples from non-specialist sources—often carrying secondary or tertiary impurities—render downstream work almost impossible. These lookalikes might function in dye work or certain textile processes, but we see immediate problems in reactive batch syntheses or biological labeling, where isomerization and minor side reactions are fatal for yield. This is why, at the lab, each crystal’s clarity is measured not just by eye, but by spectral transparency and melting point. After years of hands-on learning, we know how to tailor the process to eliminate these pitfalls before the product reaches clients’ doors.

    Technical Understanding: From Chemistry to Day-to-Day Production

    Decades of chemical manufacture have shown that consistency never happens by accident. We conduct our reactions in glass-lined vessels to prevent contamination—steel vessels risk trace iron leaching, which will trigger decomposition or throw off the final test for chloride content. Our plant runs filtration under inert nitrogen to stop oxidative discoloration, cutting final filter cake to retain the natural crystalline white finish. Every operator on our line tracks reaction pH by hand, logging numbers step by step, knowing that off-spec readings drive trouble in retention and IC testing later in the process. No automated sensor can see the subtleties that an experienced pair of hands or careful eyes catch in real time.

    Even the packaging cycle receives our full attention. Moisture packs differ for each shipment: laboratory use, kilogram drums, or hundreds of kilos bound for bulk chemical synthesis lines. Our production team avoids caking and ensures that samples retain color integrity as well as solubility. We never rush a shipment just to fulfill a calendar target. When a client’s work rides on the performance of our 2-Aminoethylammonium Chloride, we assume that level of responsibility every time batch records are signed.

    Comparing Specifications: Why Purity and Identification Matter

    Some buyers seek details on model grades such as AEAC-98 and AEAC-100. These refer directly to our final HPLC or elemental assay—whether the product checks out at 98% or above 99.5%. We produce both, but the final pick depends on client need. Bulk producers working in non-pharma might choose the cost-efficient AEAC-98, while developers focused on final purity for injection standards, ligands, or biological chemistry demand the AEAC-100. Once, a biotech client provided us with an assay discrepancy traced to less than 0.05% organic impurity; it took a full process audit, and the outcome led to an in-process filtration modification and increased granularity in milling.

    Other suppliers might tout ‘pharma grade’, but rarely show source testing data. Each container shipped from our plants travels with full batch records on moisture, chloride ion content, absence of residual solvents, and spectroscopic confirmation. Through this approach, our 2-Aminoethylammonium Chloride has developed a reputation that travels farther than the price sheet would suggest. Our name goes into every spec sheet, but the real signature appears in the quality and reliability of the end product in the field—repeatable, predictable, safe for its intended purpose.

    How We Respond to Industry Shifts: Environmental and Regulatory Pressures

    As regulations tighten and buyers become more sophisticated, we face new challenges in the world of amino-based chlorides. Restrictions on wastewater discharge, stricter handling of amine volatiles, and increasing traceability requirements make for heavier operational loads. Instead of passing these headaches on to the buyer, our response is to build in cleaner scrubbing systems, electronically tag every raw material drum, and run comprehensive trace analytics to preempt any compliance red flags. Just five years ago, this kind of granular oversight rarely appeared outside ‘big pharma’; today, clients expect no less, and we deliver.

    One case involved a customer audit focused on potential nitrosamine formation; our process, tuned through years of on-floor improvements, kept precursors below threshold and led to a zero-observation inspection. By building up a deep institutional memory—process flows, lab notebooks, and constant feedback between plant and client—we avoid regulatory surprises and keep quality consistently on target. We not only track shifts in legislation, but share our methods in open dialogue with partners to foster transparency and trust.

    Product Applications: Real-World Feedback Drives Quality

    We take pride in being more than a component supplier. Our years in chemical production mean almost every new application for 2-Aminoethylammonium Chloride starts with a conversation. In surfactant work, our product’s reactivity gives developers confidence that the final blend forms stably, without the formation of stubborn oily phases that can arise from less pure base stocks. In the field of resins, our materials ensure that crosslinking steps finish with the intended mechanical properties—in many cases bringing down total cycle time by reducing post-polymerization clean-up and error rates.

    Over the past decade, our customers’ needs have shifted deeper into specialty applications. For example, companies in the life sciences sector have requested low-volume, high-purity lots. Each batch for them undergoes additional in-process checks—not just for known contaminants, but new potential side-products identified in ongoing analytical research. This hands-on approach leads to batch reproducibility at levels that open new avenues for biomolecular conjugation work and advanced coatings, tasks where even a hint of inconsistency derails high-stakes projects.

    Clients in industrial sectors let us know when viscosity or solubility needs shift. After fielding a series of requests from researchers scaling up bench work into full reactors, we recalibrated our drying processes. Lower moisture now keeps reactivity at a peak, with fewer issues during dissolution. Feedback, direct conversation, and follow-through guide every change on our line, not fluctuating trends or generic benchmark metrics.

    Rooted in Relationships: Supporting Partners From Start to Scale-Up

    Technical advantages alone rarely convince a customer to return. What truly cements trust in a product like 2-Aminoethylammonium Chloride is the routine, sometimes unsung work—avoiding batch-to-batch variability, ensuring shipments arrive as the client needs, and standing ready to troubleshoot when raw materials behave unusually. We keep daily logs not just for internal reference but to spot emerging patterns before they become problems. These lessons spring from years of experience, shared internally and through frank dialogue with partners in both upstream and downstream roles.

    Our operations staff spend as much time in conversation with receiving chemists as in the lab or control room. We know schedules slip, logistics chains hiccup, and process requirements change almost overnight. Each time, we put a real person on the line to resolve matters, not just send off another email. We’ve found that human contact, habit built from years navigating the unpredictable, reinforces reliability in ways no automated tracking or offsite sales rep can deliver.

    Challenges in Manufacturing: Why Hands-On Oversight Remains Key

    Producing 2-Aminoethylammonium Chloride at commercial scale throws up hurdles rarely seen outside highly reactive amine chemistry. Raw material variability can upend even the most well-tuned process. Once, a late-arriving batch of chloroethylamine came with unflagged byproducts from an upstream process change. It took a full workday’s deliberation between lab, procurement, and floor staff to chase down the cause and stem the deviation before it reached the client. This is the kind of near miss that keeps a manufacturer up through the night, and the experience that makes future errors less likely.

    Power interruptions, minor sensor drift, and ambient humidity shifts all factor into the daily management puzzle. We train our team to spot edge cases—not just by instrument but by tactile experience and cross-checking real-time process data with historical records. We openly discuss mistakes, review causes, and continually integrate feedback, accepting that each new challenge can point the way to a better, more predictable product.

    Looking Ahead: Innovations in Manufacturing and Product Customization

    As end users innovate and regulatory expectations continue to evolve, the pressure to refine our processes never stalls. We actively invest in upgraded reactor designs, advanced inline spectroscopy for reaction monitoring, and new protocols for impurity testing. Our approach remains rooted in close cooperation with both suppliers and customers; experience has taught us that system-wide accountability trumps top-down mandates.

    Requests for even higher purity batches, special particle sizing, or solvent-matched formulation find an eager ear at our plant. Each new customization ripples back through years of learning—what filter cloth works with damp resinous cakes, which drying conditions preserve solubility at target particle size. No request vanishes into a spreadsheet; we tackle them openly, together, with eyes on both chemistry and practicality.

    The world of 2-Aminoethylammonium Chloride moves quickly, but the foundation remains built on knowledge—chemistry passed between generations of plant staff, lessons drawn from each batch record, and a shared stake in delivering exactly what the customer needs, batch after batch, shipment after shipment.