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4-Aminobenzo-15-Crown-5 Hydrochloride

    • Product Name 4-Aminobenzo-15-Crown-5 Hydrochloride
    • Alias 4-APB15C5·HCl
    • Einecs 629-466-6
    • 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

    824978

    Product Name 4-Aminobenzo-15-Crown-5 Hydrochloride
    Cas Number 102802-08-4
    Molecular Formula C15H25ClN2O5
    Molecular Weight 348.82
    Appearance White to off-white solid
    Solubility Soluble in water
    Melting Point 150-153°C
    Storage Temperature 2-8°C
    Purity ≥98%
    Boiling Point Decomposes before boiling
    Synonyms 4-Aminobenzo-15-crown-5 hydrochloride; p-Aminobenzo-15-crown-5 HCl

    As an accredited 4-Aminobenzo-15-Crown-5 Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A 5-gram amber glass vial, sealed with a screw cap, labeled “4-Aminobenzo-15-Crown-5 Hydrochloride, analytical grade.”
    Shipping 4-Aminobenzo-15-Crown-5 Hydrochloride is shipped in tightly sealed, chemically resistant containers to prevent contamination and moisture absorption. The packaging ensures safe transit under ambient conditions. Each container is clearly labeled, accompanied by a Safety Data Sheet (SDS), and complies with relevant chemical shipping regulations and handling guidelines.
    Storage 4-Aminobenzo-15-crown-5 hydrochloride should be stored in a tightly sealed container, protected from light, moisture, and air, in a cool, dry, and well-ventilated area. Avoid exposure to incompatible substances such as strong oxidizers. Recommended storage temperature is 2–8 °C (refrigerator). Ensure proper labeling and access only to trained personnel. Keep away from ignition sources or direct sunlight.
    Application of 4-Aminobenzo-15-Crown-5 Hydrochloride

    Applications of 4-Aminobenzo-15-Crown-5 Hydrochloride in Industrial Manufacturing

    4-Aminobenzo-15-Crown-5 Hydrochloride is a highly specialized macrocyclic compound that plays a crucial role in several advanced industrial fields. As a direct manufacturer, we support process chemistry and scale-up for customers across key sectors. Below, we outline detailed downstream application scenarios, focusing on real-world process integration, compliance, industrial ratios, and final product outcomes.

    1. Analytical Reagent Synthesis for Ion-Selective Electrodes

    This compound is widely used as a functional additive in manufacturing polymer membranes for potassium and ammonium ion-selective electrodes. The selective ion complexation properties enhance membrane sensitivity and response time, directly impacting analytical accuracy in environmental and clinical diagnostics. During membrane fabrication, the crown ether is incorporated in precise quantities and undergoes stringent QA checks to meet performance criteria for electrode response.

    Industry compliance standards

    • ISO 13485 for medical devices
    • ISO 17025 for testing laboratories
    • REACH Regulation (EC) No 1907/2006
    • ASTM D1607 for electrode test methodologies

    Typical usage ratio

    • Generally 0.5%–2% w/w in the polymer matrix of the membrane cocktail; adjusted based on target ion selectivity and membrane thickness

    Downstream process integration

    • Integrated during the casting of polymer membranes from solution; directly impacts membrane homogeneity and ion selectivity of the finished electrode

    Final product types

    • Laboratory ion-selective electrodes (ISEs)
    • Environmental water quality probes
    • Point-of-care clinical diagnostic sensors

    2. Phase Transfer Catalysis in Organic Synthesis

    This macrocyclic compound serves as a phase transfer catalyst (PTC), particularly for nucleophilic substitution reactions involving alkali metal salts. Its unique structure enables efficient transport of cations across immiscible phases, which increases reaction yields and minimizes the use of hazardous organic solvents. Manufacturers use this compound primarily in upscale pharmaceutical and agrochemical syntheses to streamline process kinetics and improve product isolation.

    Industry compliance standards

    • Good Manufacturing Practice (GMP, ICH Q7)
    • European Pharmacopoeia guidance for chemical synthesis
    • REACH Regulation
    • Environmental Protection Agency (EPA) 40 CFR 720

    Typical usage ratio

    • 0.1 mol%–1.0 mol% relative to limiting substrate; tuning based on batch vs. continuous process, substrate reactivity, and desired throughput

    Downstream process integration

    • Added directly to the reaction mixture during two-phase synthesis; removed by aqueous washes after product extraction

    Final product types

    • Pharmaceutical intermediates (e.g., heterocyclic actives)
    • Agrochemical intermediates (e.g., sulfonamides)
    • Specialty fine chemicals

    3. Molecular Recognition Additive for Chromatographic Columns

    4-Aminobenzo-15-Crown-5 Hydrochloride acts as a molecular selector in the manufacture of liquid chromatography columns for alkali metal ion separation. The compound is covalently immobilized onto silica gel or bonded phases, imparting the column with selective retention for target ions. Industrial users employ columns containing this selector in the refinement and quality control of pharmaceutical actives, food additives, and rare metal recovery.

    Industry compliance standards

    • USP <621> Chromatography Method Validation
    • ICH Q2(R1) Analytical Method Validation
    • ISO 17025 Laboratory Accreditation
    • REACH Regulation (Europe)

    Typical usage ratio

    • 5%–15% w/w loading on silica gel; optimized through pre-column performance assays and adjusted per column length and grain size

    Downstream process integration

    • Grafted onto chromatographic silica during packing; acid/base stability confirmed before integration into column hardware

    Final product types

    • Analytical HPLC columns for ion separation
    • Preparative chromatography columns
    • Quality control tools for metals and pharma industries

    4. Template Agent for Macrocyclic Polymer Resins

    Downstream manufacturers use this compound as a template molecule in the synthesis of crown ether-based polymer resins. Its structure guides the organization of monomers and crosslinkers, resulting in polymers with controlled cavities for ion exchange and chelation. This application is prominent in the production of selective ion exchange resins for environmental tech and analytical purification tasks.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems
    • RoHS Directive 2011/65/EU (if used in electronic waste treatment resins)
    • REACH Regulation
    • Directive 98/83/EC for materials in contact with drinking water (if applicable)

    Typical usage ratio

    • 0.8%–3% w/w relative to total monomer mass; selection depends on target ion selectivity and extraction efficiency

    Downstream process integration

    • Introduced during pre-polymerization phase as structure-directing template; removed post-curing and resin rinsing steps

    Final product types

    • Cation exchange resins for laboratory use
    • Polymeric chelating media for metal recovery
    • Analytical sample preparation cartridges

    5. Host Molecule in Supramolecular Sensor Devices

    As a key component in supramolecular chemistry, 4-Aminobenzo-15-Crown-5 Hydrochloride is deployed as a host molecule in sensor devices measuring metal ion concentration in environmental and industrial settings. Device manufacturers employ this compound to assemble recognition layers or incorporate it into sensor matrices, leveraging its selective complexation with target cations for rapid and reliable detection.

    Industry compliance standards

    • ISO 14001 for environmental monitoring device manufacturing
    • RoHS Directive (electronics)
    • IEC 61010 for sensor device safety
    • REACH Regulation for materials used in sensors

    Typical usage ratio

    • Concentration range of 0.02–0.1 mmol/L in sensor matrix; calibrated individually per device platform and detection range

    Downstream process integration

    • Deposited onto transducer surfaces or co-polymerized in hydrogel matrix during final sensor assembly; sensor response verified via wet-chemistry calibration

    Final product types

    • Portable metal ion analyzers
    • Environmental monitoring probes
    • Process control sensors for industrial effluent
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    Certification & Compliance
    More Introduction

    4-Aminobenzo-15-Crown-5 Hydrochloride: The Chemist’s Versatile Crown

    How We Approach Manufacturing 4-Aminobenzo-15-Crown-5 Hydrochloride

    Producing 4-Aminobenzo-15-Crown-5 Hydrochloride takes more than just technical knowledge. Our team handles each batch with a clear focus on consistency and reliability because we know whose hands this material eventually reaches. We have stood alongside researchers and process engineers for years, learning that precision isn’t just a technical target—it’s a promise we make every day. Our process does not chase quantity for the sake of quotas. We keep purity top-of-mind, filtering out imperfections and checking for structural integrity at each stage. A product like this builds its reputation not only in the reaction flask, but all the way through to its final application.

    Product Overview

    4-Aminobenzo-15-Crown-5 Hydrochloride stands out in the family of crown ethers. Its unique aminobenzo ring structure bonded to a 15-crown-5 ring makes it valuable for both fundamental research and practical applications. Many of our customers gravitate towards this molecule specifically for its selective binding properties and functionalized ring. The hydrochloride salt form brings enhanced solubility in polar media, which simplifies downstream work-up and handling in aqueous systems.

    Our Attention to Specifications

    Every chemist knows that minor differences in product quality ripple out into major consequences. An off-spec intermediate ruins an entire series of steps—there’s no reason to bet research budgets or pilot-scale production runs on anything but a controlled, high-specification material. Years of practice go into tuning our production lines so final product purity exceeds 99%. Moisture and residual solvents matter just as much, so we monitor these too. Typical batches yield a fine crystalline powder. Our team pays attention to the smallest coloration shifts or crystal habit changes; seasoned lab technicians learn to spot differences before they show up in analytics.

    Usage in Coordination and Supramolecular Chemistry

    The aminobenzo substitution on the crown ether transforms its chemical personality. While most crown ethers pick up cations based simply on cavity size, 4-Aminobenzo-15-Crown-5 Hydrochloride brings an added hydrogen bond donor. Chemists targeting selectivity in cation extraction or phase transfer catalysis take advantage of this capability. The material’s affinity for alkali metal ions has led to research breakthroughs in selective extraction and sensing. Not every process needs custom chemistry—some just need a reliable, predictable chelator. Over the years, we have seen groups use this compound to bridge between classic host-guest chemistry and practical solution-phase extraction.

    Beyond the Lab: Real-World Applications

    Academic researchers investigate subtle intermolecular interactions, but industry finds its applications in practical ways. Environmental labs apply crown ethers for selective heavy metal extraction. Pharmaceutical researchers rely on crown ether derivates for complexation studies or preformulation work. In our experience, the aminobenzo modification imparts both an extra point of interaction and new routes for synthetic modification. Many chemists use the amine group as a handle for further derivatization—attaching fluorescent labels or linking to other molecular frameworks. Process engineers appreciate its clean dissolution and reactivity profile. This isn’t a case of maximizing novelty; it’s about predictable and robust performance batch after batch.

    Why Functionalized Crowns Matter

    Generic 15-crown-5 serves well for many ionophore applications, but not every research goal aligns with “one size fits all.” The amine functional group takes a basic crown ether and opens new routes in ligand design, catalysis, and material science. Synthetic chemists benefit from the dual features—strong cation affinity from the crown segment and new synthetic leverage from the amino group. Good science depends on reliable building blocks, and this compound stakes its place as more than an academic curiosity. Seasoned materials teams look for ways to push performance, adapt selectivity, and create value from nuanced structural changes.

    How Our Approach Differs from Off-the-Shelf Offerings

    There’s no shortage of specialty vendors offering crown ethers, but the difference comes out over repeat orders and scale-up requests. We keep our focus on lot-to-lot reliability because research doesn’t pause for a hiccup in purity. Feedback from clients has shaped how we handle packaging, quality checks, and documentation. A tight grip on the upstream process limits byproducts and makes downstream steps less burdensome for our customers. Custom requests, including variations in counter-ions or crystal morphology, regularly come our way. We put our experience to work, discussing each challenge with the end-user, understanding that good chemistry doesn’t wait for a standard solution.

    Challenges in Production and Handling

    Producing high-purity 4-Aminobenzo-15-Crown-5 Hydrochloride takes coordination across multiple steps. Each synthesis passes through tough checkpoints to weed out impurities. In our early production runs, minor changes in reagent order dramatically influenced impurity profiles. Once we nailed the right sequence, yields improved and purification became easier. Handling the hydrochloride salt presents challenges, as its hygroscopic nature draws water from the atmosphere. To address this, our team shifted to airtight, low-humidity filling stations long before it became widespread industry practice. We see packaging as a final stage of quality control, not an afterthought. If moisture sneaks in, it complicates downstream chemistry.

    Comparing to Other Crown Ethers

    Families of crown ethers follow recognizable patterns. The classic 15-crown-5 binds sodium ions effectively, thanks to the snug cavity size. Introducing a p-aminobenzo group stirs up new opportunities for specificity in binding profiles and chemical reactivity. Where generic crowns perform well as passive cation shuttles, 4-Aminobenzo-15-Crown-5 Hydrochloride steps into the spotlight for applications requiring extra hydrogen bonding or post-synthetic flexibility. Over the years, inquiries from academic groups led us to study competitive binding scenarios; the added amine often tips the balance by participating in secondary sphere interactions. Our ability to tailor batches based on feedback from real users drives product evolution over time.

    Batch Consistency and Traceability

    Our reputation stands on the performance of every lot. To reach that mark, we keep careful documentation on every input, batch process, and test result. Advanced chromatography checks catch minor impurities, but it’s our process design that reduces variability in the first place. Manufacturing consistency cuts down time spent troubleshooting unexpected lab outcomes—trust, in our world, gets built with every shipment that meets spec, not just the first one. Our team routinely consults with partners to review product performance, ready to adjust protocols after a single odd result. This hands-on, responsive approach sets our crown ethers apart from bulk commodity offerings.

    Supporting Advanced Research and Development

    Ongoing advances in supramolecular chemistry push demands for cleaner, more functionally-tunable macrocycles. 4-Aminobenzo-15-Crown-5 Hydrochloride regularly fills that niche thanks to its blend of stability, solubility, and reactive side chain. Research teams have taken our material into application spaces like ion-selective electrodes, chemosensors, and even non-aqueous catalysis. We have participated in technical workshops where customers explained how small changes in morphology impact performance. The knowledge goes both ways—we learn from these front-line researchers as much as they rely on our material consistency. Each discussion informs how we tighten processes, respond to new purity demands, or adapt packaging to keep the product in peak condition during international shipping.

    Differences That Add Value

    Not all crown ethers can serve as both a platform for combinatorial chemistry and a practical agent for cation transport. The flexible amino group on the aromatic ring truly matters. Researchers looking to build more complex architectures reach consistently for this functionalized derivative. The hydrochloride form dissolves cleanly and does not foul up most analytical steps, allowing for easier integration into advanced workflows.

    Lessons Learned From Decades of Production

    Looking back at our history with crown ethers, technical learning never really stops. There was a time new macrocycle synthesis felt like charting unfamiliar territory, with every experiment followed by anxious checks for batch purity. Over time, vigilance and feedback sharpened every step. We now see the entire lifecycle of each batch, from raw input evaluation to final customer usage. Problems do not vanish overnight; they get solved slowly, through tracking, adaptation, and sheer persistence. Economic pressures to cut corners never stack up against the cost of a failed project downstream. Instead, our engineers keep their eyes on purity, stability, and ease of handling. Staying close to end-users keeps us honest.

    The Role of Documentation and Transparency

    Comprehensive documentation isn’t a compliance exercise; it’s how we ensure that each decision, tweak, and observation solidifies into reliable practice. We field regular questions from buyers on minute composition details, offering open access to our analysis and batch records. Confidence comes from repeated confirmation that every vital metric—melting point, water content, residual solvents, trace metallic content—is not only controlled, but transparent to the buyer.

    What Industry Trends Mean for Our Product

    In the last five years, interest has surged from cross-disciplinary teams targeting novel cation-selective membranes and advanced materials. Our customer base now ranges from classic analytical chemists to forward-leaning materials scientists and startup teams. New trends emerge rapidly; groups pivot toward greener solvents, heightened selectivity, and multi-modal sensing platforms. 4-Aminobenzo-15-Crown-5 Hydrochloride integrates well with these goals because of its tunable chemistry and adaptability to newer techniques. We work closely to revalidate packaging and support documents according to evolving standards, so transitions into regulated pharma and environmental workflows remain smooth.

    Feedback-Driven Evolution

    Some of the best process improvements originate with clients in the field. Years ago, repeated feedback around slight yellowing in storage prompted an overhaul of our handling systems. This switch directly improved shelf life, stability, and downstream results for users. In another instance, requests for documentation on trace sodium levels pushed us to refine our analytics program, leading to better quality and more confidence from our customers. The cycle of feedback and action rarely closes; our technical support team fields inquiries not just about specs, but about process integration and downstream implications. Active listening has become part of the product’s DNA, folding user experience into every major revision.

    Keeping Up With Regulatory Expectations

    Expectations do not stand still. Environmental and safety standards get stricter each year. We track regulatory trends across major markets, verifying our product’s compliance not only with today’s norms but with anticipated future requirements. Labeling, traceability, and impurity profiling go under regular review, ensuring buyers get the documentation needed for both internal audits and external inspections. These efforts reflect a real respect for our partners in regulated environments.

    Practical Support for Real-World Challenges

    Challenges in delivery, on-the-ground storage, or reconstitution do not faze us. Our technical support team helps clients troubleshoot stubborn dissolution or questionable analytics. We keep open communication for questions ranging from solubility profiles to best practices in sample preparation. This responsive support network turns off-the-shelf chemistry into fully-involved problem solving, drawing from both real-world experience and the technical literature. No two labs face identical realities, and our approach reflects that diversity.

    Building the Future With Reliable Supply

    Securing a dependable source for niche chemicals is a challenge in itself. We’ve built collaborations with regular customers looking to ensure their supply chains survive market volatility, customs delays, or unplanned shifts in demand. Our facilities can scale from research-grade to pilot or early production volumes, each time carrying forward the same standards and attention to detail. Requests for custom packaging or specialty grades get routed straight to our process engineers, cutting through layers of bureaucracy and keeping decision-making nimble. This responsiveness matters as researchers shift from gram-scale proof-of-concept studies to multi-kilogram pilot work.

    Supporting Broader Adoption and Application

    As synthetic and analytical communities uncover new uses for functionalized crown ethers, we find our role shifting toward technical partnership. Open communication about product behavior, limitations, and storage quirks enables wider adoption. Our support documents draw on real performance data gathered from academic and industrial partners, not just legacy specifications. Experienced users readily share results with us, whether mapping cation selectivity profiles in complex matrices or troubleshooting integration into automated analysis systems. This two-way dialogue powers new applications and follows our material as it enters unexplored chemical territory.

    Fostering Responsible Innovation

    Responsible manufacturing does not just mean ticking off compliance boxes. We encourage responsible use, from safe handling to correct waste disposal. Our technical team offers guidance, ensuring that specialty chemicals land in skilled and informed hands. In-house education sessions cover emerging topics, such as minimizing process waste, improving atom economy, and selecting solvents with lower environmental footprints. Our commitment to responsible stewardship goes hand in hand with a belief in science-driven progress.

    Reflections From Behind the Scenes

    Walking the factory floor, you hear a certain rhythm in the way teams approach each new production run. Years of shared experience inform every adjustment. The best equipment and cleanest raw materials mean little without the vigilance of people who notice the tiniest anomaly—whether it’s color, crystallization, or response to a test reagent. Every member of our production team understands that a flawed batch doesn’t just cost money; it impacts the credibility of researchers and the progress of critical projects. Our own journey producing 4-Aminobenzo-15-Crown-5 Hydrochloride has been marked by tenacity, learning, and a refusal to compromise on detail.

    Looking Ahead

    The story of this compound is not static. As advances in catalysis and analytical chemistry unfold, the aminobenzo-derivatized crown continues to surprise. Its value lies not only in its molecular structure, but in the rigor of the people manufacturing, testing, and supporting its use across disciplines. We stand ready to adapt, learn, and deliver new solutions as the field grows. Each order represents not just a supply transaction, but an ongoing partnership between us and the world’s professionals striving for the next innovation in science and industry.