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HS Code |
114519 |
| Product Name | 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate |
| Cas Number | 62868-32-2 |
| Molecular Formula | C10H14N2·H2SO4 |
| Molecular Weight | 262.31 g/mol |
| Appearance | White to off-white crystalline powder |
| Melting Point | 230-235°C (decomposes) |
| Solubility In Water | Freely soluble |
| Storage Conditions | Store at 2-8°C, protected from light and moisture |
| Purity | Typically ≥98% |
| Synonyms | 3-(N-Methyl-2-pyrrolidinyl)pyridine sulfate |
| Safety Precautions | Handle with gloves and eye protection |
| Ph Of 1 Percent Solution | Approximately 5.0-6.0 |
| Canonical Smiles | CN1CCCC1C2=CN=CC=C2.[O-]S(=O)(=O)[O-].[H+].[H+] |
| Inchikey | UUWFNYBOPFYFFC-UHFFFAOYSA-N |
As an accredited 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White, tightly sealed amber glass bottle containing 25 grams, labeled "3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate," with hazard and handling information. |
| Shipping | **Shipping Description:** 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate is shipped in secure, sealed containers, labeled according to chemical safety regulations. Package includes a Material Safety Data Sheet (MSDS) and complies with local and international transport regulations for laboratory chemicals. Store and transport under dry, cool conditions, away from incompatible substances or direct sunlight. |
| Storage | Store 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate in a tightly sealed container, in a cool, dry, and well-ventilated area. Protect from moisture, heat, and direct sunlight. Keep away from incompatible substances such as strong oxidizers. Ensure proper chemical labeling and restrict access to trained personnel. Regularly monitor storage conditions and inspect the container for signs of damage or leakage. |
Applications of 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate in Industrial Manufacturing3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate is a specialized chemical intermediate valuable for a range of industrial synthesis pathways. As a manufacturer, we have gathered application experience and data from our partners in regulated, high-volume, and specialty sectors. Below we outline key downstream application fields, with detailed process insights for each major segment. 1. Pharmaceutical Active Ingredient Synthesis (Nicotinic Alkaloids and Derivatives)This compound serves as a core building block in the synthesis of selective nicotinic acetylcholine receptor modulators and other pyridine-based pharmaceutical intermediates. Downstream producers incorporate it in controlled conditions, primarily for anti-smoking medications, cognitive disorder research agents, and select central nervous system APIs, where purity and traceability influence final batch quality. Dosing precision and contaminant control are crucial for meeting international pharmaceutical registrations. Industry compliance standards
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2. Agrochemical Synthesis (Selective Insecticide Intermediates)This compound supports the preparation of synthetic intermediates involved in developing neonicotinoid and related pyridine-structured insecticides. Agrochemical companies use it for constructing core scaffolds crucial for high-selectivity active ingredients. Proper control of trace residue and isomeric purity ensures compliance with regional regulatory guidelines and finished product specifications. Industry compliance standards
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3. Flavors & Fragrance Ingredient Manufacturing (Nicotine Analogue Derivatives)Flavors and fragrance houses utilize this material to synthesize trace-level nicotine analogues and structurally related alkaloids for use in tobacco-free flavor bases and e-liquid formulations, following strict regional restrictions. Only authorized manufacturers operate in registered and controlled environments, with close monitoring of residual precursor and metabolite profiles to satisfy food and e-vapor regulations. Industry compliance standards
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4. Fine Chemical Intermediates for Specialty PolymerizationThe compound is adopted by fine chemical companies to introduce functionalized pyridine rings into specialty engineering polymers and resins. These modified polymers exhibit targeted solubility, improved thermal properties, or enhanced UV-stability for advanced electronics, coatings, and filament industries. Careful control of the precursor addition and impurity tracking supports the required material certifications for downstream export and end-user application. Industry compliance standards
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In the world of fine chemical manufacturing, a product like 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate occupies a position all its own. This compound, often recognized in the scientific community for its essential role in advanced research and specialized industrial processes, draws upon decades of accumulated know-how in both synthesis and application. At our manufacturing facility, we handle the complexities of production day in and day out, tailoring every step for batch consistency and purity.
For those unfamiliar with the molecular structure, this compound features a pyridine ring substituted with a methyl-bearing pyrrolidine group, paired with sulfate as the counterion. Our team has spent years tuning the process—starting from raw material selection through to reaction control and purification. The sulfate salt form arises from specific application requirements, offering both ease of handling and increased solubility in aqueous systems. Many researchers and industrial users ask for the sulfate form because it tends to behave consistently in a range of biological and chemical environments, avoiding some pitfalls encountered with base or hydrochloride forms.
We know reliability matters more than anything. Our operations focus on batch-to-batch reproducibility, and we routinely achieve a purity level exceeding 99%. Each lot undergoes rigorous characterization using methods like HPLC, NMR, and LC-MS, because our partners don’t just want to take our word—they need proof that their research will not be derailed by trace impurities or unexpected side products. From colorimetric checks to moisture analysis, our technicians don’t cut corners.
Our standard model for 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate is sold in bulk crystalline form, with particle size ranging in a consistent, well-controlled window. This makes dosing repeatable and eliminates guesswork whether it’s for formulations, pilot-scale production, or scale-up validation runs. Our packaging team seals every kilo in multi-layer containers under an inert atmosphere, preventing degradation during shipping and storage.
We do not dilute or pre-mix the material, as some traders or small-scale resellers might. What you get is precisely what we isolate at the end of the purification line, fit for direct use in research or manufacturing steps. Our assurance processes reach well beyond government or industry minimum standards, simply because we know what’s at stake every time this chemical becomes part of a synthesis or test protocol.
Over the years, researchers and industrial process developers have found a surprising range of uses for this pyridine derivative. While many associates connect it with reference standards or analytical intermediates, in practice we see it shipped off in quantities ranging from academic microgram levels to pilot-plant multi-kilo lots. For anyone working in neurochemistry, tissue labeling, or metabolic tracing, the sulfate form supports water-based solubility—a crucial point for clean dissolutions and reproducible conditions in aqueous assays.
Our direct customers come from both public and private sectors. Some run life sciences labs focused on cholinergic receptor studies—others aim at patentable small-molecule synthesis. We see orders from pharmaceutical pilot plants where this molecule is woven into specialty catalysts, fine-tuned intermediates, or niche synthetic pathways that support drug discovery and agricultural chemistry. Some buyers use the compound for calibration and verification in high-throughput automated analysis, counting on the intact sulfate form for precise results. Our own experiences with scale-up batches tell us how unforgiving certain applications can be, where standard off-the-shelf material simply does not meet the needs of biocompatibility or solvent compatibility.
Certain academic groups request custom packaging or altered crystalline forms for specialized kinetic studies. We’ve worked hands-on with investigative scientists redesigning their supply logistics to bring this material into alignment with strict experimental timelines. Those efforts highlight the practical challenges and win the trust of teams who cannot afford downtime or failed runs. The sulfate version, compared with alternatives like the hydrochloride salt, brings less risk of acid-catalyzed side reactions and lower corrosivity for laboratory glassware—sometimes a small difference in theory but a huge one in busy, stretched labs.
We keep close tabs on how our 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate holds up against other salt forms and generic offerings from various suppliers. Our chemists see marked differences in shelf life and handling stability depending on the chosen counterion, particle structure, and residual moisture content. Through trial and error, we’ve watched rival products clump, discolor, or degrade before they make it out of laboratory storage. Our version holds its color and flow for months without caking, even under routine lab conditions—a direct result of material science attention during crystallization.
Requests for hydrochloride or free-base forms often come with complaints about hygroscopicity, inconsistent assay, or solubility troubles in buffered solutions. The sulfate form steps around many of those problems. We routinely analyze user data sent by returning customers—often they come back citing simpler preparation in physiological buffers, lower pipetting error for trace analysis, and a distinct lack of by-product peaks during analytic separation. This isn’t theory; it’s the practical upshot of letting process engineers work directly with end users, collecting feedback and feeding it back into the production loop.
Generic sources may meet a minimal chemical label, but field-testing batches provided by less experienced manufacturers reveal the difference at critical stages—either in chromatographic purity or performance within complex biological matrices. We have prioritized an active, hands-on approach to technical support, walking research and process development groups through storage, reconstitution, and integration steps. Questions never go unanswered, and requests for documentation or trace analysis receive priority treatment by our analytical team.
Those who haven’t manufactured 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate at scale might overlook the subtleties. Running consistently large batches means dialed-in reaction kinetics and the right crystallization profile, or product can emerge with variable physical properties. We’ve spent years calibrating our reactors, solvents, and purification stages. Early on, certain solvents caused unpredictable crystal growth or left trace contaminants that only showed up under demanding assay conditions. Today, we use custom-designed plant equipment and maintain a continuous data stream on reaction and drying parameters, avoiding abrupt shifts that could upend the downstream processes of life science and industry clients.
Moisture control stands out as the biggest challenge. Overly dry product loses solubility performance, but too much moisture can trigger instability or agglomeration. Humidity studies and storage trials have sharpened our real-world packaging techniques, letting the compound travel continents without losing its defining properties. Every year, we invest in both stability studies and small-batch test-outs so any subtle change in raw material source gets caught before a full run. This level of attention comes from direct, boots-on-the-ground experience—not armchair theorizing.
By working closely with instrument specialists, we’ve also tweaked our protocols so users get peak results in NMR, HPLC, and mass spectrometry assays straight from the shipping container. We have learned which minor impurities most impact typical research applications, and we target those with targeted post-crystallization cleanup, rather than relying on broad-brush final filtration. Our analytical chemists don’t just certify the batch; they perform cross-lab comparison checks, building a cumulative profile of performance that grows with each production cycle.
Direct conversations with industrial users and academic research teams drive our continuous improvement. Over time, recurring issues stand out—such as inconsistent dissolution, low batch homogeneity, or color changes in storage. We respond by refining both starting material procurement and our labor-intensive recrystallization process, shaving down impurities that would never pass under the radar of rigorous high-throughput assays.
Some of our biggest breakthroughs stem from unscheduled calls or late-night emails from scientists in the field. Issues with dissolution or reactivity aren’t theoretical for those in the lab; they lead to ruined experiments or missed deadlines. From experience, we know how to pivot on short notice, scaling up fresh lots or troubleshooting application bottlenecks, saving teams from unnecessary rework. Our full-time staff don’t rest at a generic business-hour hotline; instead, our technical experts pick up the phone and walk users through troubleshooting.
By investing in continuing education and cross-training for the plant and QC teams, we raise the bar on troubleshooting unusual issues — like color instability linked to rare atmospheric contaminants or reactivity variance caused by upstream ingredient quality. Unlike those who buy and resell finished batches, our hands-on foundation stops recurrent problems before they ripple out to the field or research lab.
Chemical manufacturing involves more than synthesis and shipment; it takes scrupulous record-keeping and compliance monitoring. We respond to regulatory groups with complete dossiers on route-of-synthesis, trace contaminants, and process history—not just for the major components but for trace side-products and breakdown fragments. Trust in the manufacturing process extends beyond supplying Certificates of Analysis; it means furnishing complete method validation, shelf-life prediction, and chain-of-custody information that can withstand the scrutiny of audits or regulatory submissions.
Our approach doesn’t hide behind technical jargon. Plant workers and senior chemists review documentation and customer feedback together. Audit checks draw directly from real manufacturing runs, not staged or idealized lab samples. Over the years, this habit of transparency has built enduring business relationships, with repeat customers citing their audit experiences as a major differentiator compared to other vendors.
Long experience shapes every decision in how we offer 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate. Shortcuts taken by others—skipping process optimization, filtering with marginal solvents, consolidating various suppliers’ lots—just lead to headaches for the end user. Our staff includes chemists and engineers who have walked the entire journey, from raw-bulk ingredient wrangling through formulation, storage, and analysis.
We recognize the variability inherent in upstream supply chains and buffer users against sourcing hiccups by maintaining in-house reserves of critical precursors. No plant can escape every supply shock, but careful forecasting and direct buy-in at the raw material stage lets us prevent disruptions that have tripped up competitors relying on just-in-time stocks from far afield. Customers contact us less to complain about missed deliveries and more to thank us for uninterrupted benchwork, pilot runs, and process validation milestones delivered on time.
Our knowledge doesn’t end with synthesis or shipment. Annual workshops, detailed case studies, and feedback sessions all play a role in maintaining credibility and expertise. We invite users, regulators, and instrument specialists to challenge our practices—because we believe ongoing dialogue elevates both product and application. That perspective stands out in a marketplace where chemical supply can sometimes become transactional rather than collaborative.
As applications for 3-(1-Methyl-2-Pyrrolidinyl)Pyridine Sulfate expand across new sectors—from analytical reference material to key intermediate production—it’s the cumulative experience behind every kilo that sets our chemistry apart. While synthetic and analytical methods evolve, the basic needs for batch consistency, practical solubility, and trustworthy support remain constants.
Our process doesn’t stand still. New customer challenges drive fresh optimizations—whether in scale-up yield, downstream compatibility, or even environmental safety milestones. Each production cycle brings new learning. By drawing from experience and staying open to innovation, we keep our material ahead of the market curve, making sure our partners—from graduate students to industrial process leaders—can rely on our pent-up expertise baked into every lot.