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Lauroylcholine Chloride

    • Product Name Lauroylcholine Chloride
    • Alias Choline lauroyl chloride
    • Einecs 263-261-3
    • 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
    VTB
    Specifications

    HS Code

    488292

    Cas Number 863-93-6
    Molecular Formula C15H32ClNO2
    Molecular Weight 293.87 g/mol
    Appearance White to off-white powder
    Solubility Soluble in water
    Melting Point 124-126°C
    Storage Temperature 2-8°C
    Synonyms Dodecanoylcholine chloride
    Purity Typically ≥98%
    Usage Biochemical research; substrate for cholinesterase

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

    Packing & Storage
    Packing Lauroylcholine Chloride is packaged in a 25g amber glass bottle with a secure screw cap, labeled for laboratory use only.
    Shipping Lauroylcholine Chloride should be shipped in tightly sealed containers, protected from moisture and light. It must comply with relevant chemical transport regulations. Package securely to prevent leakage or spillage. Store and transport at controlled room temperature, away from incompatible substances. Proper labeling and documentation, including hazard information, are essential for safe shipping.
    Storage Lauroylcholine Chloride should be stored in a tightly sealed container, protected from moisture and light. Keep it in a cool, dry, and well-ventilated area, ideally at room temperature (15–25°C). Avoid exposure to heat, incompatible materials, and strong oxidizing agents. Proper labeling and secondary containment are recommended to prevent accidental release or contamination.
    Application of Lauroylcholine Chloride

    Applications of Lauroylcholine Chloride in Industrial Manufacturing

    Lauroylcholine chloride is a specialized quaternary ammonium compound widely used in high-performance and regulated industrial applications. As a manufacturer, we provide material that supports advanced process control, product safety, and high purity demands in critical sectors. Below, we detail major downstream segments, compliance considerations, blending protocols, production stages, and typical end products.

    1. Ophthalmic Drug Formulation Aids

    Pharmaceutical companies use lauroylcholine chloride as a cationic emulsifier and surfactant in ophthalmic preparations, including eye drops and ocular suspension systems. Its utility arises from its ability to enhance solubility and bioavailability of active ingredients, especially for lipid-soluble drugs requiring micellar delivery. Material selection strictly follows pharmacopeial and toxicological standards due to patient safety requirements. Our production offers documented traceability, analytical purity, and controlled bioburden, supporting downstream compliance and consistent blending with active pharmaceutical ingredients.

    Industry compliance standards

    • Ph. Eur. (European Pharmacopoeia) monographs for excipients
    • USP-NF (United States Pharmacopeia–National Formulary) standards
    • ICH Q7: Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • 21 CFR Part 210/211 (US FDA GMP for finished pharmaceuticals)

    Typical usage ratio

    • 0.01%–0.2% w/v based on final eye drop or suspension batch; adjustment depends on solubilization and irritation studies in preclinical evaluation

    Downstream process integration

    • Blending into sterile aqueous or oil phases prior to aseptic filtration
    • Emulsification during high-shear mixing of actives and stabilizers
    • In-process QC for droplet size and preservative function
    • Entry point: emulsification and solubilization stage after primary sterilization

    Final product types

    • Prescription and OTC ocular drops (e.g., cyclosporine emulsions)
    • Polymeric micelle-based ophthalmic suspensions
    • Sustained release eye formulations

    2. Antimicrobial Preservatives in Parenteral Nutrition Solutions

    Parenteral nutrition manufacturers employ lauroylcholine chloride in lipid-based intravenous emulsions as a cationic antimicrobial preservative. Its selection is based on efficacy against common microbial contaminants and compatibility with sensitive parenteral ingredients. Implementing this raw material requires full documentation for regulatory inspections, compatibility studies, and residue analysis. Producers introduce the raw material during final mixing under GMP cleanroom conditions, ensuring that efficacy and patient tolerability align with international pharmacopeial guidance.

    Industry compliance standards

    • Ph. Eur. 5.1.3 / USP <51> Antimicrobial Effectiveness Testing
    • ISO 13408-1: Aseptic Processing of Health Care Products
    • ICH Q3C: Impurities – Residual Solvents
    • WHO Technical Report Series for Parenteral Preparations

    Typical usage ratio

    • 0.01–0.10% w/v based on final emulsion volume, titrated according to challenge test results and patient compatibility profiles

    Downstream process integration

    • Incorporation at the terminal emulsion blending phase under LAF (laminar air flow)
    • Verification by sterility and effectiveness testing before primary packaging
    • Monitor preservative system during long-term stability trials
    • Entry point: final mixing and QC validation panel

    Final product types

    • Ready-to-use lipid emulsions for intravenous delivery
    • Total parenteral nutrition multi-chamber bags
    • Lipid-based infusion admixtures for hospital pharmacy

    3. Fabric Softeners and Textile Finishing Agents

    Textile and fabric care producers add lauroylcholine chloride as an active cationic surfactant in high-end liquid fabric softeners and textile conditioners. The surfactant imparts antistatic, softening, and dispersing properties required for synthetic and blended fibers in industrial laundries or finished garments. Manufacturing partners verify batch quality and compatibility with other quaternaries, meeting consumer goods regulatory requirements in each export market. Usage ratios are tuned for mechanical textile processes, and the raw material is often charged directly into high-shear blending tanks for downstream homogenization.

    Industry compliance standards

    • REACH Regulation (EC) No 1907/2006 for Chemical Substances
    • EU Detergents Regulation (EC) No 648/2004 (including biodegradability requirements)
    • 47 CFR 303.7 (US Federal Fabric Care Labeling)
    • OEKO-TEX Standard 100 for restricted substances

    Typical usage ratio

    • 3%–8% w/w based on finished softener batch; production line adjusts ratio for targeted textile softness and antistatic effect

    Downstream process integration

    • Premixing in aqueous phase prior to emulsification
    • Combination with fragrances and performance additives
    • Homogenization for stable dispersion in final product
    • Entry point: batch blending after initial water charge

    Final product types

    • Premium liquid fabric softeners
    • Textile finishing fluids for laundries and OEM garment plants
    • Antistatic textile rinse additives

    4. Phase Transfer Catalysts for Polymer Synthesis

    Polymer and specialty resin producers apply lauroylcholine chloride as an effective phase transfer catalyst (PTC) to facilitate specific nucleophilic substitution or addition reactions in two-phase liquid-liquid systems, including chlorination or quaternization processes. The material selection prioritizes high purity, low moisture content, and absence of interfering ions. Operators dose the catalyst during reaction initiation to accelerate reactant migration between immiscible phases, which maximizes yield and reduces the need for aggressive solvents.

    Industry compliance standards

    • ISO 9001:2015 (Polymer Production Quality Management)
    • 28 CFR 1310 (US DEA CWC requirements for specific quaternaries)
    • ISO 14001 (Environmental Management for chemical synthesis)
    • National standards from producers’ region for polymer additives (e.g., GB/T 20108-2006 in China)

    Typical usage ratio

    • 0.05%–0.5% w/w of reactor charge; ratio adjusted for reactant solubility and required conversion rate

    Downstream process integration

    • Charging into reactor prior to introduction of aqueous and organic phases
    • Maintaining agitation to ensure phase boundary contact
    • Real-time monitoring of conversion rate and byproduct profile
    • Entry point: start of main polymerization or post-integration chemical reaction

    Final product types

    • High-molecular-weight specialty polyamides
    • Functionalized vinyl polymers
    • Trait-modified polyurethane prepolymers

    5. Dispersing Agents in Color Cosmetic Manufacturing

    Cosmetic and personal care producers utilize lauroylcholine chloride as a dispersant in water-in-oil or oil-in-water emulsions, chiefly for pigment and filler evenly dispersion in premium color cosmetic formulations. In this application, the focus is on tight control of particle suspension to achieve batch uniformity, long shelf life, and consistent skin feel. Plant operators dose the material into the oil phase during milling or high-shear mixing, followed by immediate transfer to filling lines under ISO cleanroom conditions.

    Industry compliance standards

    • COSMOS Standard for Organic Cosmetics (Europe)
    • Regulation (EC) No 1223/2009 on Cosmetic Products
    • FDA 21 CFR 720 Subpart B (US cosmetic ingredient declaration)
    • ISO 22716: Cosmetic GMP

    Typical usage ratio

    • 0.3%–1.5% w/w relative to total formulation; fine adjustment conducted based on rheology and pigment load

    Downstream process integration

    • Inclusion during pigment milling or dispersion with oils and silicones
    • Co-emulsification with cetyl/stearyl alcohol blends
    • Batch rheological and microbiological control pre- and post-filling
    • Entry point: order of addition depends on target emulsion structure

    Final product types

    • Foundations and liquid concealers
    • Lipsticks and creamy color sticks
    • Sunscreen-enriched makeup (colored day creams)
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    Certification & Compliance
    More Introduction

    Lauroylcholine Chloride: Insights from a Chemical Manufacturer

    Our work with Lauroylcholine chloride spans the better part of two decades. Through our hands-on experience, we have learned what consistently sets this specialty quaternary ammonium salt apart in both performance and reliability. Many chemical products come with their stories, but Lauroylcholine chloride stands out because it can genuinely improve processes across pharmaceutical synthesis, surfactant formulation, and scientific R&D thanks to its unique combination of functional groups. The firsthand lessons we've gathered around its formulation, quality control, and feedback from application partners give us a perspective rooted not in promotional language but practical fact.

    Understanding the Makeup and Consistency of Lauroylcholine Chloride

    Offering Lauroylcholine chloride in its standard model—purity levels upwards of 98% by HPLC—has meant that batch consistency and careful raw material sourcing get top priority in our daily operations. Our teams stress over every shipment of lauric acid and choline derivatives we procure, knowing full well that contaminants or off-specification materials will impact downstream processes. The white crystalline powder shows a characteristic faint odor, which regular customers quickly recognize and associate with purity. Each package leaves our facility only after rigorous moisture and assay analysis, since even small deviations can change reactivity or storage lifespan.

    Whether prepared in 25-kg fiber drums or smaller laboratory packs, we stay mindful of the issues that often frustrate users of lower-quality supplies: clumping, discoloration, and ill-defined melting points. As a manufacturer, we realize how tiny details play oversized roles, such as trace water content shifting solubility or accelerating decomposition. To address this, we emphasize airtight storage and just-in-time dispatch to keep our product close to its ideal specification from filter to customer bench.

    Applications: How Our Lauroylcholine Chloride Changes Workflows

    Research laboratories and process engineers use Lauroylcholine chloride primarily because its structure—melding a choline moiety with a lauric acid tail—delivers reliable performance as a phase-transfer catalyst and specialty surfactant. In everyday use, this means smoother separation for extraction needs, better yields for certain alkylation reactions, or improved solubilization in medicinal compound formulation. Our feedback loop with end-users, both academic and industrial, confirms the biggest gains often come in places where similar ammonium salts fall short: stability under variable pH or salinity conditions, decreased foaming, and improved bio-compatibility.

    A research chemist in a pharmaceutical firm may note that switching to Lauroylcholine chloride trims down purification steps when synthesizing quaternary ammonium intermediates. This saves them time while reducing solvent waste, an important consideration in today’s push for safer and more sustainable manufacturing. A surfactant formulator may notice that lauroylcholine derivatives avoid sticky residues or precipitants that crop up when using alternatives like cetyltrimethylammonium or other halide salts.

    What Sets Lauroylcholine Chloride Apart?

    Many potential buyers ask us about differences between Lauroylcholine chloride and other common cationic surfactants, particularly in terms of function and reliability. Products like cetyltrimethylammonium chloride (CTAC) or benzalkonium chloride (BAC) are widely available, and traders often promise these can substitute for our lauroyl-based offering. Based on documented laboratory comparisons and customer audits, the key technical difference is in the balance between hydrophilicity, toxicity, and compatibility. Lauroylcholine chloride carries a less aggressive surfactant profile compared to the harsher BAC or CTAC, making it especially valuable in biochemical and physiological applications where cell viability matters.

    The lauroyl (C12) chain strikes a balance not easily matched by longer or shorter alkyl quaternaries. Choline-based quaternaries also naturally mesh well with biological membranes, leveraging structural similarity to phospholipids and enhancing permeation without severe irritation—an advantage in transdermal or mucosal delivery systems. Labs focused on high throughput screening or cell culture report fewer artifacts and more predictable performance when using quality-assured Lauroylcholine chloride rather than generic or mixed quaternary alkylammonium products. These real-world distinctions often translate to fewer failed runs and smoother day-to-day operation.

    Manufacturing Reality: Quality Control and Process Integrity

    From a manufacturer’s perspective, the greatest challenge with Lauroylcholine chloride comes from maintaining high quality across every lot, despite the pressure for price competition or the temptation to process larger quantities. The temptation to cut corners in drying, or to hasten the esterification and quaternization steps, always risks the formation of unwanted by-products or residual solvents. Our team relies on continuous monitoring, retention of authenticated reference samples, and cross-checking every batch’s certificate of analysis against long-term control charts. Any deviation from target melting point range (usually 70-74°C), HPLC purity, or colorimetric appearance triggers a full internal audit.

    Some buyers have tried to use Lauroylcholine chloride from non-specialist suppliers who trade in bulk quaternary bases, only to discover lot-to-lot differences, compromised assay, and poor stability under storage. Our facility has received numerous samples characterized by yellowish tinge, excessive free acid, or even undissolved alkali following import from non-OECD countries. As an established chemical manufacturer, we take pride in delivering only material that meets not just the basic monograph or JECFA recommendations, but the more demanding specifications our industrial and biopharmaceutical clients routinely require.

    Working with Partners: Reducing Downstream Processing Headaches

    One key lesson we have drawn from years supplying this product is that partners who invest in high-purity Lauroylcholine chloride often experience reduced filtration load, less fouling in reactors, and fewer downstream issues when isolating sensitive actives. This isn’t theoretical; batch records and customer feedback show direct reduction in cleaning solvent use and process downtime. We regularly consult with users to help troubleshoot bottlenecks, sometimes attending site visits to understand process scale-up challenges or unique reactor configurations. By examining spent media, scum layers, and effluent streams, our technical group can often pinpoint and correct issues that trace back to minute contaminants or mismatched grades.

    In applications like controlled drug delivery, where regulatory compliance and patient safety are non-negotiable, the call for Traceable Good Manufacturing Practice (GMP) becomes clear. Our documentation trail covers the source of every incoming kilo of raw materials, the validation of each production run, and the results from microbiological and elemental impurity testing. Learning from the regulatory climate, we have adopted periodic third-party audits and encourage customers to review our production practices firsthand. This transparency helps foster trust and supports not just compliance, but long-term business continuity for process partners aiming for international market access.

    Environmental Stewardship: Toward Cleaner and Safer Production

    Considerations around environmental impact influence every step of our production approach. Lauric acid, a key raw material in Lauroylcholine chloride, often comes from renewable sources such as coconut or palm kernel oil; our supply chain managers work hard to vet the provenance of every shipment for sustainability. We seek RSPO-certified partners and monitor carbon footprint per drum shipped. Waste minimization gets the same attention—by recycling process solvents, recovering heat from exothermic steps, and optimizing batch sizes, our plant sees less than two percent material loss per run.

    Toxicological review of Lauroylcholine chloride has shown a relatively mild aquatic hazard profile—lower than longer-chain alkylammonium surfactants. Nonetheless, we install extra capture and neutralization steps in our effluent systems, ensuring all waste passes strict discharge thresholds before exit. Internal safety committees meet every quarter to review near-misses and adapt process controls as needed, always looking for smarter ways to balance productivity with stewardship. Over the years, we’ve seen customers increasingly value our environmental focus, especially those with ISO14001 mandates or who report Scope 3 emissions.

    Supporting Science and Technology: Pushing the Boundaries of Use

    Synthetic chemists have long relied on Lauroylcholine chloride as a phase transfer catalyst for biphasic reactions. The molecule’s amphiphilic nature facilitates the movement of anionic reagents into organic phases, speeding up reactions that otherwise stall or run inefficiently. We have collaborated with academic partners who use this compound in novel microemulsion systems, micelle-stabilized synthesis, and as a dispersing agent for hydrophobic drugs.

    Beyond traditional use, a handful of research groups are exploring Lauroylcholine chloride as a precursor in the design of functionalized lipid vesicles or novel cationic carriers for gene therapy. Our technical support frequently shares best practices for solubilization, buffer choice, and compatibility with proteins, since each new use case brings compound-specific quirks. With high-purity material and detailed chromatographic data on hand, research projects progress faster and rarely stall because of batch inconsistencies.

    Safety Considerations and Handling

    No commentary would be complete without addressing handling and safety. As with any quaternary ammonium salt, Lauroylcholine chloride calls for careful attention to personal protection and storage habits. Dust generation can irritate skin and eyes, so our packing lines operate under negative pressure and automatic bagging. End-users in pharmaceutical and research environments typically use gloves, eye protection, and dust masks. We attach batch testing data for heavy metals, solvent residues, and allergen risks, supporting informed and safe handling from warehouse to laboratory.

    Packing integrity and labeling receive special attention since accidental mixing of quaternaries can cause storage caking and decomposition. Every drum features a tamper-evident seal, with clear lot and expiry dating supported by technical datasheets. Customers who store material for long periods appreciate that our material resists clumping—a reflection of controlled water content and rapid-to-market shipment. Our technical advisers stress the need to avoid prolonged exposure to open air and recommend a cool, dry storage space to maximize usable shelf life.

    Comparison with Other Source Materials

    Competitors sometimes market blended or multi-component ammonium chloride products drawn from various synthetic sources—occasionally employing by-products from unrelated processes. These blends tend to show variable melting points, off-odors, or color shifts after several months on the shelf. Our process, in contrast, sticks to purpose-specific synthesis routes with documented purity improvements following each reaction step. Over years of manufacturing, we have learned that customers value predictability most: every container delivers the same quality, solubility, and appearance as the last, even across global shipments.

    Some applications, especially formulation of pharmaceuticals or food-contact materials, require more than just high assay levels. Trace impurities, such as long-chain by-products, oxidized fragments, or trace amines, can interact with active pharmaceuticals or nutrients, causing instability or off-tastes. As a manufacturer, we keep an eye not just on regulatory limits but on minimizing these trace elements by maintaining tight reaction controls and above-standard in-process analytics.

    Looking to the Future: Innovation and Customer Collaboration

    Our commitment as a manufacturer extends beyond just shipping barrels. We see Lauroylcholine chloride as a foundation for new developments in health, specialty chemicals, and bioprocessing. Increasingly, our partners look for custom blends, improved grades, or innovative delivery formats—such as ready-to-dissolve sachets for pilot plants or pre-sterilized glass vials for advanced research. These innovations only come through dialogue with users who share what slows them down or limits their process flexibility.

    In recent collaborations with microfluidics and nanotechnology groups, we have supported work testing the compound’s ability to form stable nanoscale emulsions or act as a transfer agent for encapsulated drugs. We share anonymized performance data on solubility, particle size distribution, and shelf stability, giving start-ups and established firms the data they need to make go/no-go decisions fast. As demands grow for tighter regulatory conformance, we invest in in-house testing and external certification—ensuring every run can be traced and reviewed all the way back to batch records and test results.

    Lessons Learned: Why Manufacturing Expertise Matters

    The global market for specialty surfactants and phase-transfer agents is full of choice, but experience teaches that consistency, quality, and manufacturer engagement make the biggest difference in end results. Lauroylcholine chloride’s popularity comes not just from intrinsic properties, but from the effort put into quality assurance, process transparency, and technical support. By paying close attention to every raw material, every filter run, and each user’s feedback, we build a record of reliability that partners grow to trust.

    Every kilogram of Lauroylcholine chloride that leaves our plant represents more than just a chemical—it’s the sum of choices, controls, and thousands of small improvements we have made over the years. We have seen how it can enable better outcomes in research and production, save time in purification or formulation, and help customers avoid the pitfalls of lower-quality alternatives.

    For companies and institutions that depend on process reproducibility, stable ingredient supply, or compliance with ever-tightening standards, the source and integrity of Lauroylcholine chloride matter as much as its price or certificate of analysis. Our story with this compound continues to evolve, shaped by scientific progress, customer partnership, and a drive to set new benchmarks for what a specialty manufacturer can deliver.