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HS Code |
484139 |
| Cas Number | 945666-79-1 |
| Chemical Formula | C8H15BrN2 |
| Molecular Weight | 219.12 g/mol |
| Appearance | White to off-white solid |
| Melting Point | Approximately 150-160°C |
| Solubility In Water | Soluble |
| Boiling Point | Decomposes before boiling |
| Purity | Typically ≥98% |
| Storage Conditions | Store at room temperature, keep container tightly closed |
| Iupac Name | 1,3-dimethyl-1H-imidazolium-3-propylbromide |
| Density | Approximately 1.3 g/cm³ |
As an accredited 1,3-Dimethylimidazolium Propane Bromide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 1,3-Dimethylimidazolium Propane Bromide is packaged in a 100g amber glass bottle, featuring a secure screw cap and clear labeling. |
| Shipping | **Shipping Description for 1,3-Dimethylimidazolium Propane Bromide:** This chemical is shipped in tightly sealed containers, protected from moisture and incompatible substances. It should be handled with appropriate PPE. Transport in accordance with local, national, and international regulations for chemical substances, ensuring proper labeling and documentation for safe and compliant delivery. |
| Storage | 1,3-Dimethylimidazolium Propane Bromide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from moisture, heat, and direct sunlight. Keep the chemical away from incompatible substances such as strong oxidizing agents. Ensure proper labeling and store at room temperature, following all relevant safety and environmental regulations for chemical storage. |
Applications of 1,3-Dimethylimidazolium Propane Bromide in Industrial Manufacturing1,3-Dimethylimidazolium Propane Bromide offers unique ionic properties and high solubility for numerous high-value chemical processes. As a direct manufacturer, we have documented extensive downstream integration in distinct industrial sectors, with each application following strict compliance and technical protocols. 1. Catalysis Media for Fine Chemical SynthesisIn advanced organic synthesis, chemical producers adopt this ionic liquid as a solvent and catalytic medium to boost reactivity and selectivity, particularly in quaternization and alkylation reactions. The material supports homogeneous and heterogeneous catalysis while withstanding high temperatures and a broad pH range, thereby reducing by-product formation and improving throughput. Industry compliance standards
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2. Electrolyte Component in Electrochemical ApplicationsIn supercapacitor and battery cell assembly, this ionic liquid finds use in non-aqueous electrolyte systems to enhance ionic conductivity and support stable electrode interfaces. Manufacturers select it for its low volatility, wide electrochemical window, and compatibility with various electrode materials, improving device safety and performance metrics in high-energy storage. Industry compliance standards
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3. Solvent for Cellulose Dissolution in Fiber SpinningCellulose processing facilities integrate this ionic liquid as a direct solvent for dissolving lignocellulosic biomass to produce regenerated fibers. Its strong hydrogen-bond basicity enables dissolution at lower temperatures compared to established solvents. Spinners use tailored formulations to enhance fiber formation and minimize residual solvent content in the final textile products. Industry compliance standards
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4. Phase Transfer Agent in Pharmaceutical API ManufacturingAPI manufacturers utilize this compound as a phase transfer catalyst in specific multi-phase syntheses, notably for nitrogen-containing heterocycles and quaternary amines. Its structure increases mass transfer between aqueous and organic layers, resulting in higher yields and reduced reaction times for regulated pharmaceutical routes. Industry compliance standards
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5. Antistatic Additive for Engineering Polymer CompoundsThermoplastic compounders and engineering resin producers employ the material as an antistatic agent for improving surface conductivity in specialty plastics. Its ionic character enables permanent static dissipation without migration, which is critical for electronics and precision packaging applications requiring consistent electrical performance. Industry compliance standards
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6. Supported Ionic Liquid Phase (SILP) for Heterogeneous CatalystsCatalyst manufacturers leverage the liquid to impregnate silicas or metal oxides, creating supported ionic liquid phases (SILPs) for selective gas-phase transformations. The immobilization improves catalyst lifetime and selectivity, supporting processes like hydroformylation and carbonylation with fast catalyst separation and streamlined product extraction. Industry compliance standards
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Every successful application in advanced chemical synthesis starts with consistent materials. As the direct manufacturer, our experience with 1,3-Dimethylimidazolium Propane Bromide spans not just tens of lab-scale batches, but the thousands of kilograms demanded by real-world process chemists and R&D teams. We have been refining the production, monitoring for every impurity, and making sure the physical characteristics match customer expectations from year to year.
Our 1,3-Dimethylimidazolium Propane Bromide, commonly referenced by the model DMIM-3C-Br, flows from our reactors as a white to slightly off-white crystalline powder. Over repeated production runs, we perfected a workflow to keep water content low, thereby ensuring longer shelf life and minimal influence on sensitive catalytic cycles. Residual solvents can disrupt many ionic liquid media and phase-transfer experiments; with direct control over our purification, we consistently meet trace control standards for critical research and scale-up environments.
Years spent scaling up from pilot plant glassware to tonne-scale reactors taught us that small impurities, often overlooked in sourcing from brokers or small-batch suppliers, wreck process consistency. Chemists turning to 1,3-Dimethylimidazolium Propane Bromide often do so for its salt-stable attributes, strong polarity, and the flexibility of the imidazolium ring — all of which open unique pathways in catalysis, solvent extraction, and organic synthesis. In our hands, this compound played a core role in research projects ranging from carbon dioxide capture to design of recyclable solvent systems for pharmaceutical purification. These are not simply catalog applications; we’ve partnered on production runs where synthesis windows closed tightly, and only a product with the right water profile, absence of stabilizer contaminants, or tight particle size made the difference between a failed or successful run.
Our typical specification — which developed over years and many customer audits — centers on high purity, minimal chloride or non-target anion contamination, and reliable melting point values. Industrial users rarely ask for “commodity grade” in our business since a batch off-spec on residual bromide or over-crystallized from the wrong solvent can stall whole campaigns. In our own hands, we've seen how critical it is to match the specific application — for example, optimizing conditions for ionic liquid chromatography or running advanced separation processes.
As more research institutions and process developers push toward sustainable and efficient chemical technologies, our team noticed increasing confusion between various classes of ionic liquids and quaternary ammonium products. Direct production experience gives clarity here: 1,3-Dimethylimidazolium Propane Bromide doesn’t behave like triethylammonium or pyridinium salts.
The imidazolium cation present in our product stabilizes a broader range of reaction intermediates and allows for higher thermal endurance in many applications. That’s not simply chemistry theory from a brochure — in comparative test runs, the thermal stability window proved wider than with classic ammonium bromides under similar operating conditions. For instance, customers synthesizing fine chemicals or engaging in phase-transfer catalysis point to a reduced risk of decomposition and unwanted byproduct release.
In everyday terminology, our DMIM-3C-Br brings strong ionic conductivity, miscibility in polar solvents, and minimal impact on environmentally sensitive processes. We have seen how research carried out with lower-tier products tends to encounter mysterious reaction stalls or downstream color contamination, which can trace back to sub-grade raw materials, off-spec crystal batches, or generic polymeric binders used to push yields in quick-run manufacturing. Having our own reactors and purification trains means we set precise benchmarks on starting materials, handling, and lot-control that generic packagers or traders simply can’t verify or replicate.
Every kilogram leaving our warehouse travels with a production history that’s traceable back to the very start. During scale-up, we learned that even small changes in temperature ramp or solvent switch affected the physical form — from needle- to plate-like crystals — and ultimately changed how the substance dissolved in various test matrices. Such process knowledge, accumulated during batch trials and on-site troubleshooting, feeds back into our routine manufacturing.
Users depend on consistency and documentation. That’s why, over years, we moved from basic documentation to full batch history control, GMP-aligned tracking, and after-shipment technical support when used in critical applications such as electrochemical devices, catalysts recycling, or rare earth separations. Several partners use our 1,3-Dimethylimidazolium Propane Bromide in multi-stage processing, where even slight differences in counter-ion purity — or uncontrolled humidity during drying — would cause failures in yields or separation efficacy.
Maintaining tight specifications means that we analyze each batch not only by standard titration or HPLC but by checking key properties, such as melting point consistency, water content by Karl Fischer, and even post-crystallization residual solvent traces. Such extra steps don’t always show up on certificates, but experience tells us that process surprises usually emerge from what wasn’t measured.
1,3-Dimethylimidazolium Propane Bromide holds a strong place in applied chemistry. In catalyst research, this compound serves both as a media and as part of a ligand system for transition metals — we saw one collaboration pioneer a more robust cross-coupling technique using our product, which brought about not only better conversion rates but a smoother workup. In battery research — particularly next-gen lithium and sodium chemistries — our experience with water-free production meant product could be shipped safely without risk of degrading sensitive anodes.
We track feedback aggressively. Electrochemical process developers pointed to improvements in cycle durability when shifting to our DMIM-3C-Br from mixed-source imidazolium salts, and academic collaborators achieved sharper selectivity in carbon-carbon coupling reactions. Over the years, hundreds of small and industrial-scale projects provided feedback for incremental improvements. When a batch fell outside acceptable moisture thresholds, it triggered root-cause analysis and workflow revision.
Some teams use 1,3-Dimethylimidazolium Propane Bromide to extract rare metals from electronic waste. Here, the high selectivity and ability to operate at moderate temperature make it attractive — but not every batch suits this application. Only consistent production offers the selectivity that industrial hydrometallurgists demand; we know, because during years of direct shipments, side-by-side tests against off-the-shelf analogues showed measurable differences in extraction kinetics based on minor impurities.
Supply chain transparency only comes with direct manufacturing. Too often, buyers encounter variable quality — with rough, off-color powder and pockets of tritiated by-products — from aggregated blends or generic repackaging. For those who rely on process certification, or are targeting approval with industry regulators, such small but unpredictable variations threaten project success.
Because we run the reactors ourselves, scheduling and turnaround align with customer timelines; no need to balance against secondary supplier queues or shipment confusion. If you need lot-to-lot performance checks, or require tailored drying protocols for exotic catalysis, we implement these within our established process, instead of applying a generic after-the-fact adjustment.
Repeatedly, industrial clients cite the difference between direct manufacturer product and generic alternatives. Whether purifying intermediates for pharmaceutical synthesis or loading electrolytes for pilot battery programs, trust in every package has tangible value. The on-site ability to run quick re-crystallization or handle urgent custom orders sets us apart from agents or stockists dealing in half-complete paperwork and disconnected warehousing.
Even stable ionic liquids benefit from correct handling. Our time spent shipping to high-humidity environments taught us to package with failsafe seals and include real-time monitoring when needed — not as a theoretical improvement, but to avoid actual batch degradation from atmospheric uptake during transport. On more than one occasion, rapid response to logistics concerns meant researchers could finish work without costly project overruns caused by chemical instability.
On-site, where conditions avoid prolonged exposure to moisture and sunlight, 1,3-Dimethylimidazolium Propane Bromide retains its structure and performance for the long term. We train technical partners on correct opening, resealing, and sampling procedures. Unlike a broker, we stay engaged after delivery, updating on best practices and integrating customer process feedback directly into material handling guides. There were times, working with users in regions with wild weather swings, where packaging tweaks minimized clumping and extended usable shelf life past original design.
Innovation does not slow down. As green chemistry and cleaner energy draw more R&D dollars, we see our 1,3-Dimethylimidazolium Propane Bromide powering new ideas every year. Researchers aiming for higher recycling ratios or safer catalysis platforms turn to trusted materials with a history of robust supply and technical support. Our participation in consortia and active partnerships with university groups pay dividends—sharing process tweaks, troubleshooting tough reactions, and developing fully recyclable solvent systems.
Development cycles benefit from transparent, responsive production. Instead of sending intermediaries or canned technical answers, production experts review requests, tweak settings, and optimize the final product directly. This direct channel avoids information lag, miscommunication, or delays in deploying new applications. As a manufacturer with its own labs, we understand the stakes and the details that decide whether a new material achieves scale, secures funding, or enters the market.
We have built this expertise batch by batch, rolling improvements from customer suggestions into both chemical quality and logistics. Whether testing for new polymerizations, exploring phase-transfer agents for waste treatment, or engineering solvents for critical separations, the starting point stays the same: materials that do what the paperwork claims, measured and confirmed by those who make it themselves.
Over years, direct feedback loops and our own hands-on trials have refined each step. From raw feedstock to crystallization conditions, every parameter shapes performance in the field. Often, researchers switching from indirect supply gain both better results and greater confidence—not just on paper, but through measurably smoother scale-up, streamlined troubleshooting, and a tighter fit to real-world conditions.
Our team prefers to engage technically—lab-to-lab, engineer-to-chemist, not through indirect sales. This attitude, coupled with disciplined process control, means new challenges are welcomed as opportunities to advance both our product and our understanding of the field. As chemistry pushes further into green processes, advanced separation, and next-generation catalysis, 1,3-Dimethylimidazolium Propane Bromide produced by hands-on manufacturers remains not just the safest bet but the most forward-looking choice.
Only direct production can claim true oversight at every step—procurement, reaction, crystallization, and packaging. Every innovation, process correction, and product improvement comes from field experience, not abstract guidelines or empty assurances. Our DMIM-3C-Br has supported teams from process engineering through regulatory clearance, and rolled through continuous quality audits without hiding behind third-party paperwork or complicated logistics.
For projects demanding both high-performance chemistry and unwavering reliability, the experience of making, not merely selling, sets superior producers apart. Our work continues in refining both the material and the support infrastructure, guided by evolving safety regulations, ambitious client projects, and the real-world lessons learned when theory meets practice. The pathway from bench to bulk becomes straightforward—because the maker stands behind every batch.