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2-Bromooctane

    • Product Name 2-Bromooctane
    • Alias n-Octyl bromide
    • Einecs 210-404-9
    • 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

    796715

    Cas Number 628-29-1
    Iupac Name 2-Bromooctane
    Molecular Formula C8H17Br
    Molar Mass 193.12 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 196-198°C
    Melting Point -55°C
    Density 1.100 g/cm³
    Refractive Index 1.445
    Flash Point 75°C
    Solubility In Water Insoluble
    Pubchem Cid 12314

    As an accredited 2-Bromooctane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 2-Bromooctane is supplied in a 100 mL amber glass bottle with a secure screw cap, labeled with hazard precautions and product details.
    Shipping 2-Bromooctane is shipped in tightly sealed containers, protected from light, heat, and moisture. It should be clearly labeled as a hazardous substance, with appropriate UN number and hazard class. Transport must comply with local, national, and international regulations, ensuring the prevention of leaks, spills, or accidental exposure during handling and transit.
    Storage 2-Bromooctane should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from sources of ignition. Keep it away from heat, flame, and incompatible substances such as strong oxidizers. Store at room temperature and protect from direct sunlight. Proper labeling and secondary containment are recommended to prevent leaks or spills.
    Application of 2-Bromooctane

    Applications of 2-Bromooctane in Industrial Manufacturing

    As a manufacturer focused on high-purity halogenated intermediates, we provide 2-Bromooctane for specific, validated industrial applications where its alkylating properties support various specialty chemical syntheses. Below is a detailed overview of real-world downstream applications across critical segments of the chemical industry, with clearly defined compliance requirements, formulation benchmarks, production process points, and finished goods types.

    1. Pharmaceutical Intermediate Synthesis

    2-Bromooctane features in the manufacture of select active pharmaceutical ingredient (API) intermediates, especially for custom alkyl-chain modification in molecule synthesis. Pharmaceutical producers adopt this raw material to introduce C8 alkyl chains during key alkylation steps in both small-molecule and some specialty drug development projects where side-chain engineering is essential for targeted bioactivity profiles. Chemical handling and traceability systems for all upstream raw inputs receive close regulatory scrutiny.

    Industry compliance standards

    • Current Good Manufacturing Practice (cGMP), US FDA 21 CFR Part 210/211
    • EU GMP Guidelines Part II for APIs
    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)

    Typical usage ratio

    • 0.7–1.5 molar equivalents per alkylation step, varying by API synthesis route and target yield optimization

    Downstream process integration

    • Added during the core alkylation or side-chain elongation step in the multi-step synthesis sequence, under inert atmosphere conditions, prior to purification and isolation of the intermediate

    Final product types

    • Custom API intermediates for antihypertensives, CNS agents, or antiviral compounds; specialty building blocks used in advanced medicinal chemistry

    2. Agrochemical Production (Herbicide and Pesticide Intermediates)

    Leading agrochemical companies employ 2-Bromooctane for the introduction of hydrophobic alkyl chains in the synthesis of long-chain aliphatic intermediates critical in modern herbicides and fungicides. Its use enables the modification of key precursor molecules, enhancing lipophilicity and environmental stability in the end-use products. Raw material source documentation and by-product control fall under mandatory audit, given regulatory safety demands in this field.

    Industry compliance standards

    • ISO 9001:2015 (Quality Management Systems)
    • FAO/WHO Specifications for Pesticides
    • REACH Regulation (EC) No 1907/2006 for European manufacture and import

    Typical usage ratio

    • 1.0–1.2 equivalents, calculated based on the stoichiometry of desired alkylation in each batch; adjusted to limit unreacted halide residuals

    Downstream process integration

    • Used in core alkylation stages during the synthesis of key intermediates, prior to cyclization or further functional group protection/deprotection steps

    Final product types

    • Herbicide intermediates for acetanilide and triazine-based molecules; aldehydo-octane derivatives for fungicidal agents

    3. Performance Surfactant and Specialty Chemical Manufacturing

    Performance chemical formulators utilize 2-Bromooctane to supply linear C8 chain precursors in the development of specialized surfactants and amphiphilic molecular building blocks. Its defined carbon length and bromine functionality suit etherification or amination processes, forming key intermediates for tailored emulsifying or dispersant agents in challenging industrial applications such as mining, textiles, or enhanced oil recovery.

    Industry compliance standards

    • OECD Guidelines for the Testing of Chemicals (for new surfactant ingredient safety)
    • ISO 14001:2015 (Environmental Management Systems)
    • US EPA TSCA Inventory (Toxic Substances Control Act)

    Typical usage ratio

    • Ranging from 0.6–1.3 mole per target surfactant synthesis batch, with actual dosing controlled by end-functionality and batch yield targets

    Downstream process integration

    • Introduced mid-synthesis for nucleophilic substitution reactions, typically after base-catalyzed etherification initiation, with downstream neutralization and purification steps

    Final product types

    • Industrial non-ionic surfactants, customized dispersants for pigment or mineral slurries, surface-active agents for textile finishing

    4. Oilfield Chemical Additive Synthesis

    In the upstream energy sector, 2-Bromooctane delivers C8 alkyl chains to quaternary ammonium or imidazoline surfactant precursors, serving as a raw input for oilfield corrosion inhibitors and demulsifiers. Operators demand stringent purity control due to potential downstream fouling or regulatory reporting requirements tied to produced water management and well-treatment chemical declarations.

    Industry compliance standards

    • API Q1 (Specification for Quality Management System Requirements)
    • ISO 45001 (Occupational Health and Safety Management)
    • US EPA 40 CFR Part 435 (Oil and Gas Extraction Effluent Guidelines)

    Typical usage ratio

    • 0.9–1.2 equivalents relative to amine/imidazoline group; modified by desired chain length for specific demulsifier efficiency targets

    Downstream process integration

    • Typically fed into alkylation reactors during the synthesis of amphiphilic oilfield additives, under nitrogen or argon protection to prevent oxidation

    Final product types

    • Corrosion inhibitors for downhole and pipeline protection, oil–water separation demulsifiers, antistatic agents for drilling fluids

    5. Synthesis of Flavors and Fragrance Intermediates

    Within the specialty aroma chemical sector, 2-Bromooctane is an established alkylating agent for preparing specific long-chain esters and aliphatic alcohol precursors that impart unique scent or flavor profiles. Stringent allergen and trace residue management practices apply in this field, paralleled by adherence to global food and cosmetic ingredient oversight bodies.

    Industry compliance standards

    • IFRA Code of Practice (International Fragrance Association)
    • US FDA Food Additive Regulations, 21 CFR (where flavor ingredients are intended for food use)
    • EU Regulation (EC) No 1334/2008 on Flavorings

    Typical usage ratio

    • 0.8–1.4 equivalents according to specific structure-activity requirements and final purity targets for the aroma intermediate synthesis

    Downstream process integration

    • Employed in Grignard or Williamson ether synthesis steps during proprietary blend precursor manufacturing, followed by fractional vacuum distillation to isolate desired notes

    Final product types

    • Alcohol and ester intermediates for fragrance bases, food-grade flavoring agents, aroma enhancers in perfumery formulations

    6. Polymer and Material Science Research Intermediates

    Research-driven polymer manufacturers incorporate 2-Bromooctane for designing long-chain functional monomers, enabling the production of specialized polymers with tunable physical properties. It acts as a chain transfer agent or structure modifier, often for hydrophobic or compatibilizer block incorporation, in laboratory or pilot-scale synthesis projects targeting niche performance plastics or elastomers.

    Industry compliance standards

    • ASTM E2609-15 (Standard Guide for Quality Planning in Polymer Manufacturing)
    • ISO 17025:2017 (General requirements for the competence of testing and calibration laboratories)
    • Chemical control compliance (TSCA, REACH, and local zoning for research chemicals)

    Typical usage ratio

    • 0.5–2.0 mol% per monomer, depending on desired hydrophobicity and molecular weight distribution of the resulting polymer architecture; experimentally determined for each new project

    Downstream process integration

    • Used during pre-polymerization modification or grafting steps, where free-radical or ionic initiators open up addition to the polymer backbone

    Final product types

    • Experimental block copolymers, surface modification reagents, hydrophobic elastomer blends, and advanced research-grade plastics
    Free Quote

    Competitive 2-Bromooctane prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    2-Bromooctane: Insights From the Production Floor

    Introducing 2-Bromooctane: What Sets It Apart

    Our work with 2-Bromooctane always brings out the value of precision and careful planning, right from the first raw material to the final loading of the drums. The product carries the molecular formula C8H17Br and brings together specific qualities required in both research and active synthesis. Over the years, we have seen plenty of requests for octyl bromide derivatives, but 2-Bromooctane earns its own recognition thanks to that two-position bromination on the octane backbone. Chemists favor it for reasons beyond simple chemical curiosity — it helps drive key steps in organic synthesis, especially where controlled reactivity matters more than broad generalization.

    Producing this compound demands unbroken attention to purity and isomer control. Unlike its straight-chain isomer, 1-Bromooctane, 2-Bromooctane features the bromine at a secondary carbon, which changes its reactivity and downstream behavior in every real application we see. Stirring up this kind of difference isn’t a laboratory fluke or just a structural shift on paper. The change influences the pathway and performance in reactions, whether the client’s work lies in pharmaceuticals, custom syntheses, or the research arena.

    2-Bromooctane Specifications: The Story Behind the Numbers

    We invest in instruments to track what’s in every batch, but numbers only tell part of the story. Every barrel leaving our plant shows a colorless to pale yellow liquid with a boiling point that settles around 201-204°C. Chemical purity for our standard offering almost always runs at 98% or higher by GC, and we keep water content below 0.3% by Karl Fischer. At production scale, these figures are not simple checkpoints — they protect against unwanted byproducts that could stall a customer’s work and ensure safety at every transfer, from synthesis halls to warehouse. For laboratories pushing for even tighter tolerances, we can draw on more intensive fractional distillation or custom analytic confirmation.

    Each drum receives a final odor test, a direct sniff from our technician — a simple step with surprising impact. Impurities, especially from side-chain oxidation or halogen exchange, never hide completely from a seasoned nose or a sharp GC or NMR trace. This is one reason our product finds steady demand from teams demanding high reliability batch to batch.

    Safety: What Years on the Plant Floor Teach

    Our hands-on experience reminds us constantly that every alkyl bromide, including 2-Bromooctane, asks for respect. Personnel always handle it inside ventilated enclosures. Contact with the skin — we never treat that risk lightly, and we maintain an ample supply of proper gloves and goggles, enforced by routine walkthroughs. Leaks and splashes receive immediate attention, not just at the lab bench but throughout blending, filling, and transfer. Our safety data sheets pull together information from many incidents, and every new hire learns from real-world examples, not just paperwork.

    Disposal routines reflect the broad experience we have gained working with halogenated organics. Down the drain disposal or uncontrolled incineration do not fit our philosophy. We coordinate closely with licensed waste handlers and document every shipment.

    Reliable Synthesis, Step by Step

    Making 2-Bromooctane at scale isn’t a question of cutting corners or running with average yields. We use carefully chosen starting alcohols, clean up the feedstock in-house, keep reactor temperatures close to optimum, and run breathing filters to keep halogen emissions low. Each coil, every clamp in our distillation and separation lines, gets a regular lookover. Techs spot-check for leaks, and each wash is documented. By working this way, we keep wastage and surprises to a minimum, so that the person on the receiving end isn’t left with a puzzle at the bench.

    It’s common to field questions about byproducts during scale-up or new requests for unfamiliar solvents. With some bromination reactions, tricky side materials can crop up, especially if conditions wander or the raw material isn’t perfectly dry. We document these measures, and every new employee learns from the archives of production hiccups, not only from operation manuals.

    2-Bromooctane vs. Its Counterparts: Everyday Distinctions

    Some buyers walk in asking for brominated octanes, without knowing which isomer gives the best performance for their project. From our side, the differences take real shape on the floor. 1-Bromooctane puts the bromine on the terminal carbon, which means its reactivity in nucleophilic substitutions is straightforward and often swifter. Out in production, we handle it more frequently for surfactant and textile chemical applications.

    2-Bromooctane, though, solves problems where chemists want the bromine to sit at a secondary site. This orientation gives slightly different physical properties but dramatically changes its chemical behavior. When it reacts, it often builds in more complexity or acts as a route for further branching in organic frameworks, necessary for specialty molecules or building blocks. With non-terminal halogens, there is less risk of forming symmetrical byproducts or over-alkylation, a fact proven repeatedly by customer feedback and our own benchmark reactions. The net result sees 2-Bromooctane fielded in special synthesis projects, often tied to pharmaceutical intermediates or custom flavors and fragrances, rather than basic commodity chemicals.

    Every operator in our plant learns to handle the different physical needs in purification, especially since 2-Bromooctane’s isomeric mixture is less forgiving to sloppy distillation or quick-and-dirty drying. We schedule routine reviews of the pressure, temperature, and separation steps to minimize the kind of variability that leads to customer rework or inconsistent downstream yield.

    Applications: Real Uses Beyond the Laboratory

    The requests for 2-Bromooctane star in multiple segments. In pharmaceutical research, it’s selected for intermediate steps, taking advantage of the secondary bromine’s reactivity for carrying out precise carbon extension or functional group transformations. Our team has seen growth in demand from fine chemical houses using it to prepare branched amino acids or specialty surfactants. For the flavor and fragrance industry, even a single brominated carbon can give certain aroma molecules a unique twist. Synthetic routes depend on not just the presence of bromine, but exactly where it sits, making it clear why we keep this product in tight stock rotation and hold direct transparency on our batch records.

    Many academic groups use 2-Bromooctane for methodological studies or as a model substrate for reaction development. We’ve worked directly with several university teams on projects involving cross-coupling, metal-catalyzed substitutions, and stereoselective functionalizations. Through these collaborations, we get feedback not found in trade reports — real stories about how a sloppily-prepared batch can halt an entire semester’s work, or how reliable halide placement can save weeks during new method development. These lessons get carried straight to production meetings and staff training.

    Traceability, Batch Integrity, and Our Commitment

    Ask anyone on the production or QA side about what keeps our product favored in repeated orders, and the answer circles back to traceability and batch integrity. Each lot receives a unique batch number; test results, instrument calibrations, operator initials — everything is logged. Only after all QA sign-offs does product move to the packaging line. We withstand audits from both multinational pharma clients and niche research houses, who frequently request years-old records or random sampling. Every time, we open the books without runaround.

    It’s not about perfection or trying to achieve a theoretical gold standard. Every plant faces hiccups — raw material delays, equipment maintenance, the occasional analyst calling in sick. The commitment arises from always logging issues, flagging variances, and holding weekly post-mortems so process drift never becomes the norm. This discipline feeds into our 2-Bromooctane output, reflected in both repeat business and troubleshooting calls that run to actionable detail.

    Packaging and Logistics: Details From Daily Experience

    One overlooked part of delivering 2-Bromooctane comes with packaging. The compound prefers storage in HDPE drums with tight, sealed bungs. Glass containers, while neat for the lab bench, create headaches during transit or when exposed to wide temperature swings. We wrap every drum in absorbent pads that handle minor leaks — an overcautious move, but it spares the receiving location from clean-up or insurance wrangling.

    Shipping halogenated hydrocarbons calls for spot-on paperwork and regulatory observance. Our team coordinates with hazardous materials experts to ensure that the shipment reflects every hazard, including the UN number and proper hazard pictograms. Regular drills keep the crew sharp on emergency response, and we keep partners notified at all stages — not just by regulation, but because years in the field show that clear communication solves more problems than any policy sheet.

    Quality Control: Lessons Learned Over the Long Haul

    Quality control with 2-Bromooctane moves far beyond a simple checklist approach. We commit to multiple checkpoints at various process stages. Our GC-MS instruments receive regular calibration against certified standards, and QA operators are encouraged to run duplicate samples when uncertainty arises. The biggest gain doesn’t come from beating the certification numbers — it arrives from preventing headaches for the next user, who can bank on a product that matches not only stated purity but also performance in their specific reactions.

    Our plant spends capital on new NMR and FTIR equipment because field experience demonstrated that the biggest risks lay in trace contaminants, which often slip past old-school titrations or simple melting-point checks. By investing in analytical precision, we build a product that stands up both to academic scrutiny and to the cost realities of large-scale synthesis. The feedback loops created through client reports and in-house cross-checks lead to process improvements that never appear in standard spec sheets.

    Addressing Challenges: Upscaling and Responding to Evolving Demands

    Production reality never sits still. We handle new regulatory requirements, occasional raw material shortfalls, and requests for ever-tighter impurity profiles. For 2-Bromooctane specifically, these challenges become chances for direct problem-solving. On occasion, we’ve shifted to greener solvents or adjusted purification cycles based on customer pushback about trace halogen contamination. These changes don’t arrive with memos or flashy banners — they arise from repeated, on-the-ground consultation with users who know the difference between a workable batch and one that can’t deliver results.

    Scalability pushes its own lessons. Increasing batch sizes adds not only volume, but also complexity, from stirring power to the speed of cooling cycles. Sudden heat spikes or sluggish phase separations never go ignored, and we treat every such experience as fuel for training younger operators, ensuring they catch the same early-warning signals that experienced hands trust.

    Engagement With Research and Development

    We don’t view 2-Bromooctane as simply another entry in a catalogue. By talking regularly with end-users, we learn which downstream reactions prove most sensitive. For instance, Suzuki-Miyaura and other cross-coupling protocols sometimes trip up over minor azeotropes or trace solvent remains. Instant feedback from university partners and fine chemical engineers lets us retool purification steps or tweak solvent matches. These improvements enter our documented SOPs, keeping the cycle of improvement alive and practical.

    New synthetic methodologies demand new thinking about halide purity and the removal of potential interfering species, especially in late-stage pharmaceutical synthesis. We answer these calls by validating our methods under the same conditions as those faced by clients. Through these hands-on experiments, we build evidence not from sales claims, but from solid, data-driven comparisons between different grades and lots.

    Supporting Environmental Responsibility

    From the production side, responsibility for environmental protection doesn’t stop at compliance. Brominated hydrocarbons pose real risks in waste streams or during incineration. Early on, we partnered with dedicated solvent re-refiners and certified halogen waste handlers. In-house scrubbing and vapour recovery chalk up investment, but we’ve seen real reductions in both odour incidents and offsite waste loads. Staff receive monthly refreshers on containment and spill protocols, reinforced by stories straight from our own archives. Our plant puts results ahead of PR — direct drops in complaint numbers and surprise inspections that confirm best-in-class practices guide us more than regulatory checklists.

    A Track Record for Reliability and Trust

    What underscores our approach to manufacturing 2-Bromooctane is a genuine focus on reliability. Whether it’s a small customer batch for academic work, or a large production run for pharmaceutical intermediates, the attention to detail stays consistent. The ongoing relationships we hold with regular buyers grow out of clear, consistent product that works for their intended reactions. Stories circulate through the team about batches caught by sharp-eyed QA hands, saving shipments from landing unusable in distant labs. These stories fuel our ongoing drive for improvement far more than paper protocols or external incentives.

    We have always valued transparency. Customers regularly audit records, walk through our plant, and request production logs stretching back years. We handle every such audit as a partnership, knowing full well trust is won not through promises, but through shared facts, direct dialogue, and proof on every invoice and certificate.

    Continuous Improvement: Listening and Acting on Feedback

    Every batch and every shipment brings an opportunity to learn. Whether the news arrives from a synthesis lab halfway across the globe or via a late-night call from a freight forwarder dealing with unexpected customs hurdles, our team pulls together and adapts. Lessons travel up and down the ranks and become part of the working knowledge bank, never left to collect dust. This flexibility, married to a no-shortcuts attitude, helps us continually raise the bar for 2-Bromooctane and every product that follows it out our doors.

    Opportunities for improvement never run dry. Through thousands of liters produced and shipped over years, small tweaks — an extra filter, a cooler storage bay, a shift in drying cycle — sum up to real, measurable quality gains. Our aim stays clear: deliver batches that help build trust, drive successful chemistry, and reduce guesswork for every customer looking for a reliable partner in 2-Bromooctane supply.