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1-Aminopyridinium Iodide

    • Product Name 1-Aminopyridinium Iodide
    • Alias 1-APy-I
    • Einecs 259-599-7
    • 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

    849862

    Chemical Name 1-Aminopyridinium Iodide
    Molecular Formula C5H7IN2
    Molar Mass 238.03 g/mol
    Cas Number 24727-11-5
    Appearance White to off-white crystalline powder
    Solubility In Water Soluble
    Melting Point Decomposes
    Purity Typically ≥ 98%
    Storage Conditions Store at room temperature, away from moisture and light
    Synonyms Pyridin-1-ium, amino-, iodide

    As an accredited 1-Aminopyridinium Iodide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 1-Aminopyridinium Iodide, 25g, is supplied in a sealed amber glass bottle with a tamper-evident cap for stability.
    Shipping 1-Aminopyridinium Iodide is shipped in tightly sealed, chemical-resistant containers to protect from moisture and light. The package complies with all applicable hazardous materials regulations, including UN labeling if required. Shipping is typically via ground or air, with appropriate documentation and handling precautions to ensure safe delivery and regulatory compliance.
    Storage 1-Aminopyridinium Iodide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from moisture and incompatible substances such as strong oxidizers. Protect the chemical from light and sources of ignition. Ensure storage is in a chemical-resistant container and that appropriate safety measures, like proper labeling and spill containment, are in place.
    Application of 1-Aminopyridinium Iodide

    Applications of 1-Aminopyridinium Iodide in Industrial Manufacturing

    1-Aminopyridinium Iodide supports a range of precise industrial manufacturing needs in specialty chemical synthesis, advanced material development, and pharmaceutical intermediates. Our manufacturing partners utilize its unique properties in tightly regulated production processes, ensuring high consistency and purity for critical downstream sectors. Below, we detail main application paths, covering process integration, specific compliance requirements, and product outcomes across key industries.

    1. Organic Synthesis for API Intermediates

    Medicinal chemistry manufacturers value this raw material as a nucleophilic agent or catalyst for pyridine derivative synthesis. It facilitates key amination reactions and iodide-transfer steps in the synthesis of anti-infective and oncology small-molecule intermediates. Processing takes place under GMP or ICH Q7 guidelines to meet pharmaceutical quality and traceability standards. The purity and lot traceability of this ingredient support stringent regulatory filings and batch release protocols.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • Ph. Eur., USP, and JP monographs as applicable
    • 21 CFR Part 211 (US FDA)
    • EU GMP Annex 1, EMA quality guidelines

    Typical usage ratio

    • 2-8 mol% as catalyst or additive in step reactions, adjusted per amination or iodination scope and impurity control requirements

    Downstream process integration

    • Charged directly into the reactor during early or intermediate steps, typically after raw solvent charge, often followed by controlled heating and pH management for selective conversion

    Final product types

    • Anti-infective API intermediates
    • Aminopyridine-based oncology drug precursors
    • Nitrogen-containing heterocyclic pharmaceutical building blocks

    2. Specialty Dye Manufacturing

    Colorant manufacturers use the material for cationic dye production, especially in applications requiring controlled ion-exchange and high-purity iodide anion supply. Dye-forming steps occur under ISO and REACH-compliant environments, with input materials monitored for trace metals and halide levels. Our product’s lot consistency enables batch-to-batch reproducibility, crucial for producing dyes for personal care and textile sectors where purity and precise ionic balance are required.

    Industry compliance standards

    • ISO 9001:2015 quality management systems
    • REACH (EC) 1907/2006 for chemical substances
    • OEKO-TEX® Standard 100 limits for dye impurities
    • GHS/CLP hazard communications

    Typical usage ratio

    • 1-3% by weight of base dye formulation; ratio adjusted based on required cation-exchange efficiency and final hue properties

    Downstream process integration

    • Mixed with chromophore precursors during the main dye condensation step; may be added incrementally for precise ion concentration adjustment and reaction optimization

    Final product types

    • Cationic dyes for textile coloration
    • Hair dye intermediates (non-food/cosmetic grade)
    • Paper and ink colorant bases

    3. Perovskite Solar Cell Material Synthesis

    Electronic component manufacturers integrate the compound into the synthesis of organic-inorganic hybrid perovskites for advanced photovoltaic devices. It acts as a precursor in the formation of layered halide perovskite structures, where precise control over anion exchange and stoichiometry ensures high conversion efficiency and device stability. Material handling and synthesis must comply with RoHS and relevant environmental directives, and quality oversight is maintained in accordance with specialty electronics industry standards.

    Industry compliance standards

    • RoHS Directive 2011/65/EU
    • IEC 61249-2-21:2017 for electronic material contents
    • ISO 14001:2015 environmental management
    • Restriction of heavy metals per ECHA guidelines

    Typical usage ratio

    • 5-25 mol% relative to lead source in perovskite precursor solutions, fine-tuned to optimize film morphology and device performance

    Downstream process integration

    • Added to precursor solutions during the spin-coating or vapor deposition step, with real-time monitoring to ensure uniform crystal growth and halide distribution

    Final product types

    • Hybrid perovskite photovoltaic cells
    • Thin-film solar modules
    • Photodetector elements for optoelectronics

    4. Analytical Reagent Production

    Producers of analytical test kits and laboratory reagents rely on this compound for formulation of high-sensitivity detection kits. It serves as an ion-exchange additive or stabilizer in chromogenic and titrimetric assays where pyridinium structures enhance selectivity and accuracy in trace analyses. Reagent producers must meet ISO 17034 and local labware regulatory standards, and analytical validation is mandatory for batch release.

    Industry compliance standards

    • ISO 17034 (Reference material producers)
    • ISO/IEC 17025:2017 (Testing and calibration laboratories)
    • Chemical Inventory regulations (TSCA, REACH)
    • EN ISO 3696:1995 for laboratory water quality

    Typical usage ratio

    • 0.1-1% in assay buffer formulations, tailored based on detection range target and interference profile of specific analysis

    Downstream process integration

    • Blended into assay reagents during final mixing or just prior to lyophilization, followed by QC testing for purity and response reliability

    Final product types

    • Diagnostic test kit reagents
    • Chemical titration indicators
    • Trace element detection solutions
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    Certification & Compliance
    More Introduction

    1-Aminopyridinium Iodide: Real-World Value From a Dedicated Manufacturer’s Standpoint

    Understanding 1-Aminopyridinium Iodide

    Working directly with 1-Aminopyridinium Iodide on our production floor, it becomes clear this compound stands apart from the crowded shelves of organic intermediates. We produce 1-Aminopyridinium Iodide with consistent purity, meeting the needs of research laboratories and industrial partners who can’t afford uncertainty in their raw materials. For those hands-on in organic synthesis, this white-to-light beige, free-flowing solid delivers a predictable, stable supply of pyridinium and iodide ions in one straightforward package.

    Typical product from our current batch shows a purity above 98%. We maintain tight control throughout synthesis and purification to minimize by-products and reduce water content, recognizing that even trace moisture can shift color formation and influence reaction yields. The crystalline nature and reliable solubility in polar solvents make it an easy material to handle on a practical bench scale as well as scaled-up reactions.

    Repeated Experience Shows Its Unique Utility

    We first introduced 1-Aminopyridinium Iodide to local pharmaceutical teams hunting for a stable aminating reagent years ago. They needed something reactive enough to modify heterocyclic systems, but manageable from day-to-day. That early work brought home how this salt fills a particular niche—few other reagents can deliver the exact reactivity. Chemists value the material’s electrophilic aminating potential. The combination of pyridinium cation and iodide anion brings accessibility and utility not matched by similar aminium halide salts.

    Technical teams repeating N-amination steps on diverse scaffolds keep coming back for this product. The reason is straightforward: 1-Aminopyridinium Iodide reliably aminates electron-deficient aromatic rings and other challenge substrates, where standard organic or aqueous ammonia doesn’t deliver. Synthetic efforts for active pharmaceutical ingredients, especially when constructing substituted azaheterocycles, benefit from the salt’s relatively mild yet directed reactivity.

    Observations on Safety and Storage

    Seeing shipments move from warehouse to customer, we know practical safety starts at the point of manufacture. 1-Aminopyridinium Iodide isn’t classified as a hazardous material under typical transport codes, but dust control and protection from prolonged humidity remain real concerns. Our operators package the material in airtight, sealed containers that withstand routine handling and freight conditions—conditions learned from plenty of practical experience, since even short exposure to ambient air leads to noticeable clumping or subtle color shifts.

    On benches and in chemical storage cabinets, it makes sense to keep containers tightly closed, cool, and dry, away from direct sunlight and strong oxidizing agents. Years of observing storage in both academic and industrial settings show better results and longer shelf life when using amber glass or high-barrier plastic containers. Not only does that lock out moisture, but it also shields the salt from photochemical decomposition, which can impact color and, over time, reactivity. Direct contact with skin or eyes should always be avoided, so staff use gloves and goggles out of routine, not just compliance.

    Use Cases with Measurable Real-World Impact

    Our production history links this compound to diverse applications, but three stand out. First, medicinal chemists run amination steps to build new lead compounds. The reagent functions as a controllable source of amino radicals or as a direct aminating agent. On the kilo-lab scale, we’ve watched process teams apply this approach in batch and flow chemistry alike. Second, specialty polymer manufacturers tap into its reactivity when functionalizing advanced materials. The salt introduces new functional groups cleanly, paving the way toward custom polymer properties or surface functionalities. Third, academic researchers keep requesting kilograms for exploratory work, especially in catalysis and heterocycle modification projects.

    Performance isn’t the only reason this compound remains in active demand. Users regularly cite workable pricing, high batch-to-batch consistency, and an established supply chain as factors that make their jobs easier. Research timelines rarely wait for late deliveries. By operating on a production scale and not through spot buying or repackaging, we can support both pilot development and commercial runs. Team feedback over many years keeps us focused on what matters beyond what appears on a specification sheet.

    What Distinguishes It From Other Aminating Reagents?

    Engineers and chemists often ask for a rundown on how 1-Aminopyridinium Iodide stacks up against common alternatives. Having worked with both organic bases (such as alkylamines and hydrazines) and inorganic aminating reagents, several crucial distinctions arise in daily practice. Alkylamines usually lead to overalkylation, and hydrazines introduce instability or require harsh conditions to produce similar reactivity. Chloride salts of pyridinium amines lose effectiveness in many non-aqueous systems due to unwanted side reactions or lower nucleophilicity.

    Our teams note iodide offers a unique balance: it stabilizes the cation, increases solubility in many organic solvents, and avoids the formation of stubborn by-products. In the lab, iodide as a leaving group handles a gentler protonation environment—reducing risk of decomposing sensitive intermediates or starting materials. Chemists seeking selective monoamination or controlled addition consistently report better yields versus bromide, chloride, or tosylate analogues, especially when targeting electron-poor substrates.

    From the production side, it helps that 1-Aminopyridinium Iodide avoids the foul odors and volatility often associated with liquid amines or ammonia under heat. There’s also an advantage in compatibility with both bench-scale glassware and industrial reactors. Technicians find it simpler to transfer and dose pre-weighed quantities with less risk of airborne exposure or spillage. This translates to well-documented cost and safety savings for frequent users.

    The Manufacturer’s Take on Scaling and Reliability

    Producing this compound by the batch starts with sourcing high-purity pyridine and trusted iodinating reagents, then carefully controlling temperature, addition rate, and crystallization time. Temperatures slightly above room temperature speed up aminopyridine formation, but raising the heat too quickly causes colored side products and sticky residues that complicate isolation. Yield and purity respond directly to small changes in reaction conditions. Our crew tweaks every variable to minimize waste and maximize throughput.

    Routine QC analysis—NMR, HPLC, titration—corroborates each lot before it leaves the facility. If a batch lands outside color, melting point, or moisture parameters, we rework it as a matter of course. Some products only get spot-checked; 1-Aminopyridinium Iodide receives a full battery of tests because even one impure shipment disrupts downstream syntheses for our most demanding clients.

    Feedback loops run both ways. Hearing that a lot clumped or didn’t dissolve quickly is enough for us to retrace shipping or adjust crystal drying times. Once, a polymer manufacturer flagged a faint off-color in their loaded reactors. A deeper dive traced the same lot number to a minor impurity introduced by a subtle change in batch agitation speed. We documented, corrected, and compensated—not out of obligation, but because our long-term relationships depend on trust. Chemistry rewards attention to such details.

    Market Trends and Demand Observations

    Looking at the current landscape, more research labs and tech companies seek reliable aminating agents as they push into advanced small-molecule synthesis or functional materials. Global shifts toward green and safer chemistry have shifted preferences away from legacy reagents with toxic by-products or difficult waste streams. 1-Aminopyridinium Iodide fits this push for cleaner transformations. Our factory responds with more frequent, flexible batch schedules, and our data point to steady growth for the next several years.

    The compound’s cost profile reflects good value, mostly thanks to the scalability of modern process chemistry. Sourcing raw starting materials remains predictable, and most regulatory regimes classify it as non-dangerous, keeping logistics and paperwork smoother for end users. In tight project timelines or scale-up runs, reliability of supply often wins out over marginal differences in reagent cost, and companies treat our inventory as a strategic resource.

    Dependency on a sole supplier introduces risk, so we maintain buffer inventory and secondary production lines to absorb fluctuations in raw material pricing or demand spikes. Redundancy in production pays off; a brief supply interruption for a competitor a few years back sent several new clients our way, and our systems kept orders on track without delays. This contingency-oriented mindset grew out of direct experience with global logistics.

    Product Development Lessons Learned

    1-Aminopyridinium Iodide wasn’t always a routine offering. Years ago, chemical catalogs rarely listed it, and most research teams made it in-house. We saw the pain points: inconsistent quality, time lost on batch failures, and the gap between milligram and kilogram requirements. We decided to put it on a production footing after repeated calls from customers who had outgrown bench-scale syntheses. Early product runs revealed unique drying needs and strong sensitivity to trace metal contaminants. We revamped process filtration, tracked down every possible metal source, and developed a validated cleaning protocol for all reactors. Every lesson learned turned into a more robust product and a shorter timeline from order to delivery.

    Our technical sales team keeps close contact with major users. Feedback from pharmaceutical scale-ups helped us tighten particle size distribution, and requests from electronics researchers led us to develop a dust-suppressed variant. The basic chemistry remains the same, but user needs shift with new discoveries and regulations. We focus on quick iteration and responsive improvements, keeping our production nimble and our logistics straightforward.

    Key Role in Enabling New Chemistry

    We’ve seen firsthand how new aminating agents enable discoveries. 1-Aminopyridinium Iodide, in particular, helped academic teams at major research universities explore new areas of catalysis, leading to multiple high-impact publications. Its compatibility with standard glassware and routine safety protocols lowered the barrier for new labs entering heterocycle synthesis. Several of our industrial partners mention that their patent filings would have stalled without reliable access to this compound during crucial months of method development.

    On the manufacturing floor, the satisfaction comes from watching a bottle of our material serve as a building block in something new—be it a clinical trial material, an experimental dye, or a next-generation coating under evaluation by an automotive giant. These end-user stories find their way back to our production teams, reinforcing the value of attention to quality and responsiveness.

    The growth of high-throughput and automated chemistry also supports the upward trajectory for this salt. Labs running dozens of parallel reactions in 96-well plates tell us they need kilogram batches that arrive intact and ready to use, with little downtime for repackaging, grinding, or further drying.

    What’s Next?

    As a chemical manufacturer, we don’t approach these projects as one-off endeavors. The evolution of 1-Aminopyridinium Iodide came from building working relationships with chemists who rely on what we ship, prefer direct feedback, and don’t settle for second-best on their raw materials. We realize our job isn’t finished with a successful batch or a signed delivery receipt. Ongoing communication with users uncovers new needs for improved shelf life, finer particle sizing, and verified absence of regulated residuals.

    It’s no surprise more regulatory authorities expect higher traceability on all chemical materials, especially those entering the pharmaceutical or electronics supply chain. We respond by providing comprehensive batch certificates and analytical data with each order—supporting both compliance and peace of mind for QA and laboratory managers. We collaborate with users on custom documentation or special testing, based on their processes and regulatory environment. That’s how we build partnerships, not just sales.

    Conclusion

    Based on our years of experience as a direct producer, 1-Aminopyridinium Iodide finds relevance not just in catalogs or procurement databases, but in the hands of working chemists and engineers building the next wave of complex molecules and materials. Our commitment isn’t to one spec or one application—it’s to reliable quality, honest feedback, and solutions that meet the day-to-day realities of research and production chemistry. Our manufacturing teams remain ready for the day’s challenges, encouraging collaboration and innovation at every step of the supply chain.