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HS Code |
826227 |
| Chemical Name | N-Octyl-N-Methylpyrrolidinium Bromide |
| Cas Number | 73707-87-2 |
| Molecular Formula | C14H30BrN |
| Molecular Weight | 292.30 g/mol |
| Appearance | White to off-white solid |
| Melting Point | Approx. 110-115°C |
| Solubility In Water | Soluble |
| Boiling Point | Decomposes before boiling |
| Storage Temperature | Room temperature |
| Synonyms | 1-Methyl-1-octylpyrrolidinium bromide |
| Purity | Typically ≥98% |
| Inchi Key | PWPFPIYAMGIVBB-UHFFFAOYSA-M |
| Smiles | CCCCCCCC[N+]1(CCCC1)C.[Br-] |
| Ec Number | 690-343-3 |
As an accredited N-Octyl-N-Methylpyrrolidinium Bromide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250g of N-Octyl-N-Methylpyrrolidinium Bromide, securely sealed in an amber glass bottle with a tamper-evident cap and warning label. |
| Shipping | N-Octyl-N-Methylpyrrolidinium Bromide should be shipped in a tightly sealed container, protected from moisture and light. It must comply with local, national, and international regulations for chemical transport. Typically shipped at ambient temperature, it should be clearly labeled and accompanied by appropriate safety and hazard documentation, such as an MSDS. |
| Storage | N-Octyl-N-Methylpyrrolidinium Bromide should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers. Protect from moisture and direct sunlight. Store at room temperature, and avoid extreme temperatures. Ensure the storage area is clearly labeled and access is limited to trained personnel equipped with appropriate personal protective equipment. |
Applications of N-Octyl-N-Methylpyrrolidinium Bromide in Industrial ManufacturingN-Octyl-N-Methylpyrrolidinium Bromide, as developed by our factory, serves as a specialized cationic surfactant and phase transfer catalyst with applications across select sectors requiring high ionic conductivity or effective phase transfer characteristics. Below are the principal real-world application scenarios for this raw material, based on established industrial practices and validations. 1. Electrolyte Additive for High-Safety Lithium Battery ManufacturingLeading lithium battery manufacturers utilize this compound as a performance-modifying electrolyte additive to enhance ionic conductivity and thermal stability in specialized battery cells, particularly targeting non-flammable, high-voltage chemistries required by automotive and grid storage sectors. By incorporating it into the electrolyte phase, production lines address the cycle stability and operating safety challenges found in advanced cell designs. Industry compliance standards
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2. Phase Transfer Catalyst in Organic Synthesis for Active Pharmaceutical Ingredients (APIs)Pharmaceutical manufacturers deploy this material in their synthesis plants as a phase transfer catalyst, particularly effective in quaternization, alkylation, and nucleophilic substitution processes. These operations, usually performed in two-phase systems, gain from the material's unique ionic profile, reducing reaction times and improving product yields for select cationic intermediates and finished active substances. Industry compliance standards
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3. Antistatic Agent in Polyvinyl Chloride (PVC) and Engineering Plastics ProcessingCompounding plants and plastic engineered goods producers rely on this cationic surfactant as an internal antistatic agent, addressing static accumulation and processing challenges in stringent ESD (electrostatic discharge) environments. Its compatibility with PVC and select engineering polymers ensures permanent internal conductivity, eliminating dust attraction or static marking during rapid molding and extrusion lines. Industry compliance standards
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4. Surfactant in Cosmetic Formulation (Excluding Leave-on Personal Care)Cosmetic and toiletry batch manufacturers select this compound as a cationic conditioning agent and wetting aid for rinse-off hair care and specialty cleansing products, owing to its substantive affinity for keratin and efficacy at low dosage. Utilization targets improvement of wet combability, antistatic behavior, and deposition effects unique to the cationic surfactant group, especially for products subjected to frequent regulatory audits for ingredient traceability. Industry compliance standards
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5. Ionic Liquid Component in Supported Liquid Membrane ExtractionSeparation technology developers rely on this material as an essential ionic liquid constituent for supported liquid membrane (SLM) systems, particularly those designed for selective extraction of heavy metals or rare earths from high-salinity feedstocks. The compound’s high ionic mobility and tunable hydrophobicity suit membrane processes demanding both selectivity and stability under chemically aggressive conditions. Industry compliance standards
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Producing N-Octyl-N-Methylpyrrolidinium Bromide isn’t just about following a formula. Every kilo handed off the line reflects a mix of chemistry, reliable sourcing, and an understanding of why the details matter. As direct manufacturers, we have watched this compound grow from a specialty item few people recognized, to a sought-after ionic liquid cation in research and specialized industrial applications. Questions and requests from partners often focus not just on purity but on the practical handling and ongoing performance expectations.
Our process for synthesizing N-Octyl-N-Methylpyrrolidinium Bromide integrates control at each stage. Source materials, including pyrrolidine and carefully distilled octyl bromide, shape the outcome. High-purity methylating agents and rigorous controls during workup have proven key. Each batch draws on process feedback we’ve gained through real-world footage, not just feedback from a spreadsheet or a textbook.
The specifications for N-Octyl-N-Methylpyrrolidinium Bromide speak to what users want from a modern ionic liquid precursor. The product typically takes the form of a white to off-white powder, with low moisture levels and confirmed by NMR analysis. We’ve seen requests ranging from grams for academic pilot projects to bulk multi-kilogram lots for pilot plant trials. For us, maintaining lot-to-lot color, granule size, and the “feel” means dialing in conditions, not just testing at the end.
Industrial partners use our material for catalysis, developing new electrochemical devices, or tuning separation processes. This compound’s stability under moderate heat and resistance in alkaline and acid environments makes it stand out during experimentation. Its solubility in water and select organic solvents builds a foundation for those aiming to blend it with different ionic species or to create custom functionalized liquids.
Researchers and engineers are pushing the boundaries of ionic liquid use. In our conversations, the shift goes towards not only exploiting conductivity advantages but also environmental and process safety improvements. N-Octyl-N-Methylpyrrolidinium Bromide fits into these changes thanks to its tailored structure. The octyl group gives it a profile that balances lipophilicity and water compatibility, which broadens its role—whether users need a component for electrolyte systems, a medium for organic transformations, or a stage for extraction protocols.
We have witnessed how laboratories turn to this compound during optimization of solvent systems, or as a template for ionic liquid-based drug delivery. It finds a spot in energy storage development, especially where researchers hunt for thermal and electrochemical stability. The salt’s performance depends on careful drying, and as manufacturers, we dry at controlled temperatures under reduced pressure, knowing how water content shifts the material’s behavior. This is one of those moments where plant-scale experience bridges the gap between the ideal in journals and the real demands of the workplace.
Our catalog includes several pyrrolidinium salts. Each fulfills a niche, but N-Octyl-N-Methylpyrrolidinium Bromide brings forward a distinctive balance. Shorter alkyl chains, like those in N-Methyl-N-Butylpyrrolidinium bromide, improve water solubility but reduce hydrophobic interactions. Longer chains can impede solubility and handleability. The octyl group lands in a middle ground, giving flexibility for both aqueous and organic-phase uses.
Colleagues in R&D sometimes ask why one would choose an octyl over, for example, an ethyl or hexyl variant. Consistent feedback points to compatibility with a broader range of solvent systems. Additionally, the bromide anion offers better crystallinity and manageable hygroscopicity when compared to iodide or chloride counterparts. From a manufacturing standpoint, we can control purity and handle logistics with fewer headaches on the shelf: bromide versions often transport better, and we see fewer issues with clumping during storage, even in large-volume packaging.
Chemical production is full of stories about chasing spec sheets or adjusting to customer preferences. Our most successful collaborative projects often start with a discussion about how physical design and chemical attributes play out during actual use. With N-Octyl-N-Methylpyrrolidinium Bromide, discovery and scale-up teams push boundaries in biphasic catalysis, electrosynthesis, and solubilization of biomolecules. One example came out of an energy innovation hub: the team hit unexpected conductivity enhancements when customizing electrolytes. Working hands-on with our technical staff, they compared impurity levels and microstructural differences among similar salts and identified how trace bromide affected stability in their cell setups.
Our technical staff regularly evaluates batch consistency. We control every point of the pathway, from start to finish. Practical changes—from the choice of intermediate purification to improvements in drying atmosphere—make a visible difference. Teams working at pilot scale need options for both standard and tailored packaging; bulk users rely on antistatic liners that cut down moisture transfer, while research labs may need smaller, pre-weighed vials to avoid repeated exposure and product loss.
Many buyers in the advanced materials and life sciences sector learn quickly that not every source gives the same support. As direct manufacturers, we control what leaves our plant, and the conversation doesn’t end at shipping. Over the years, our chemists have helped partners troubleshoot material integration, ramp up pilot formulations, and manage scale-down challenges.
Questions about stability? We can reference real-time stability studies in various packaging types and climate conditions. Looking for low-water content? Our analytical team runs Karl Fischer titration at multiple points in production, not just at the end—because material stored for a few weeks may behave differently in the field than it did in our lab.
Considerations reach beyond the shipping manifest. Some teams choose this compound for compatibility with advanced NMR solvents or to minimize interference in trace-level analytics. We understand these factors aren’t just theoretical. When a customer faces lost productivity over tiny hydrophobicity differences or struggles with powder handling during automated dosing, our advice stems from having managed those issues ourselves across projects.
Consistency is more than achieving a number on a certificate of analysis. Our plant runs monitoring checks at multiple stages: before and after drying, after blending, and again after packaging under nitrogen. We document outcomes as much for internal improvement as for regulatory review. Over the past decade, moving from lab-scale glassware into tone-scale reactors meant redesigning the protocol for each volume jump to maintain the performance partners expect.
We have invested in staff training and frequent calibration of analytical tools. NMR, GC, and Karl Fischer titrations aren’t mere steps but assurance tools for our team and outside auditors. If a customer has a method incompatibility, our technical group explores alternatives alongside them, rather than just referring to a sheet. Often, customers working on novel ionic liquid matrices send us feedback on unexpected batch performance. In those cases, our open-door technical support and process transparency build confidence. Maintaining long-term trust simply can’t be faked or shortcut.
Discussions about environmental responsibility keep rising, especially for functionalized chemicals like N-Octyl-N-Methylpyrrolidinium Bromide. We face both opportunities and pressure: optimizing processes to lower water use, repurposing by-products, and searching for more efficient waste treatment. Plant modifications provide cumulative improvements. By switching to closed filtration and solvent recycling loops, our line has seen a tangible cut in both solvent waste and off-gassing.
Our technical development group is also looking beyond compliance, toward greener synthesis. Recent trials using alternative alkylating agents, less hazardous quaternary ammonium sources, and improved crystallization have yielded promising results. Balancing greener chemistry with users’ critical performance expectations creates ongoing tension, but manufacturers who only aim for the minimum risk falling behind as regulations shift and stakeholders demand more transparency.
We communicate these developments openly with customers. Some partners now request data on cradle-to-gate CO2 output or solvent use patterns. As a manufacturer, sharing these details nurtures confidence, and in some markets, becomes a requirement for long-term supply relationships.
Over time, many specialized compounds shift from niche applications to new industries. N-Octyl-N-Methylpyrrolidinium Bromide has moved the same way, originally mostly used in ionic liquids research but now called upon in areas like biomass processing, advanced separation techniques, and even potential pharmaceutical carrier development. In every instance, our approach is to listen to what the application team really needs—sometimes speeding drying to achieve ultra-low moisture for sensitive batteries, sometimes delivering larger, less granular batches for extraction facilities where caking isn’t an issue.
Some customers need guidance on the safest ways to handle, store, or use the product. Our experience in tackling real-world logistics—from temperature excursions during shipping, to issues with long-term stability under fluctuating humidity—enables us to help them find the right setup for their needs. We have modified labeling, packaging, and even suggested in-use handling routines based on feedback from the field. It is worth noting that distributor knowledge only stretches so far; advice from direct experience with the compound on actual manufacturing lines carries the most weight.
Some of the most impactful advances come from collaboration. We have hosted visiting process teams at our plant who wanted to see how our dryers work, and we’ve taken part in lab exchanges to help researchers scale their methods. These discussions regularly point out that technical problems need hands-on solutions. For example, a battery company struggling with clumping and inconsistent dosing worked with us to redesign bulk handling bins and optimize drying, which immediately cut down product loss.
Mutual trust between manufacturer and user speeds breakthroughs. Our production engineers, while monitoring on-line feedback, can spot patterns and apply fixes before they become issues downstream. These joint efforts also keep us sharper as process engineers—they drive updates to our documentation and practical adjustments to everything from filtration methods to order lead times.
Manufactured chemicals such as N-Octyl-N-Methylpyrrolidinium Bromide don’t behave identically across every use setting. Despite tight controls at our end, humidity spikes at customs or storage facility lapses affect the product. Some groups have built in-line drying steps into their process after facing trace water effects. Being open about these “outside the spec sheet” realities matters. We’re happy to share stabilizing protocols, container recommendations, and case studies to keep customers informed.
We also keep our own process resilient. New regulation, commodity market swings, and shifts in downstream application requirements mean flexibility is vital. Servicing both research and industrial users means adapting our quality management system to include customer-facing audit trails and detailed traceability, so if a customer wants to dial in any physical or chemical characteristic, we have the data and experience to help.
Solubility shifts, batch-to-batch variations, and packaging breakdown are common pain points for specialty compounds. Drawing from plant-level experience, we’ve refined staged drying at low vacuum, adjusted blend times to prevent caking, and redesigned outer layer packaging for moisture-sensitive customers. While perfecting solubility in every solvent isn’t feasible, we share detailed compatibility data with users so they can choose the right batch for their protocols.
Cross-training among our lab and manufacturing staff means we catch off-odors, tiny color changes, or flow issues before material leaves our warehouse. Offering real-time lot verification and direct technical support—for example, guiding new users through their first process cycle—builds loyalty and speeds up troubleshooting. Over the years, we’ve guided customers facing material separation problems mid-production, helping them trace the source to minor supplier changes, not unseen downstream errors.
By actively maintaining a loop with end-users, we reinforce both quality and accountability. This is what long-term manufacturing brings to the table—solutions developed through experience, not just what looks good in a catalog.
The landscape for specialty ionic liquids keeps changing. New frontiers, including green solvents, renewable feedstock processing, and advanced electrochemical devices, expand the role of engineered quaternary salts like N-Octyl-N-Methylpyrrolidinium Bromide. Regulatory oversight and supply chain transparency will keep increasing, meaning our attention to detail and ongoing customer support must match the pace.
Manufacturing isn’t only about filling barrels or jars. It’s about knowing what’s inside each container and standing behind material performance—and being ready to adapt as scientific understanding and industrial needs move forward. By remaining close to both our product and the people who use it, and always learning from the outcome, we keep quality at the center of our process. N-Octyl-N-Methylpyrrolidinium Bromide stands out not because a brochure says so, but because manufacturing skill, technical support, and real-world experience combine to give researchers and producers what they actually need for success.