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HS Code |
353129 |
| Compound Name | N-(4-Bromophenyl)-2-Chloroacetamide |
| Molecular Formula | C8H7BrClNO |
| Molecular Weight | 248.51 g/mol |
| Cas Number | 26443-05-8 |
| Appearance | White to off-white solid |
| Melting Point | 111-114°C |
| Solubility | Soluble in organic solvents such as DMSO and ethanol |
| Purity | Typically ≥98% |
| Storage Temperature | Store at 2-8°C |
| Smiles | ClCC(=O)Nc1ccc(Br)cc1 |
| Inchi | InChI=1S/C8H7BrClNO/c9-6-1-3-7(4-2-6)11-8(12)5-10/h1-4H,5H2,(H,11,12) |
As an accredited N-(4-Bromophenyl)-2-Chloroacetamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250g of N-(4-Bromophenyl)-2-Chloroacetamide, sealed in a labeled amber glass bottle with a screw cap, supplied in protective packaging. |
| Shipping | N-(4-Bromophenyl)-2-Chloroacetamide is shipped in tightly sealed containers, protected from light and moisture. It is classified as a chemical substance and should be handled according to local regulations, including appropriate labeling. During transit, temperature and physical protection are ensured to prevent degradation or accidental spillage. Safety data sheets are included. |
| Storage | N-(4-Bromophenyl)-2-Chloroacetamide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from light and incompatible substances such as strong oxidizers and acids. Store at room temperature and avoid exposure to moisture and heat. Ensure appropriate chemical labeling and keep out of reach of unauthorized personnel. Use proper protective equipment when handling. |
Applications of N-(4-Bromophenyl)-2-Chloroacetamide in Industrial ManufacturingN-(4-Bromophenyl)-2-Chloroacetamide serves as a functional intermediate in targeted chemical syntheses across multiple downstream sectors. We supply this material to help manufacturers achieve consistent batch quality in high-value, compliance-driven applications, particularly where halogenated acetanilide structures advance core production pathways. 1. Pharmaceutical Intermediate ProductionActive pharmaceutical ingredient (API) synthesis frequently requires halogenated acetamide derivatives for establishing key building blocks. This compound supports established chlorination and bromination patterns sought after in active drug molecules. Process chemists utilize it in the preparation of critical intermediates for antihypertensives and anticonvulsants, integrating within steps that decide molecular configuration and purity profiles. Manufacturers depend on batch reproducibility and alignment with regulatory registrations in regulated API assembly lines. Industry compliance standards
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2. Agrochemical SynthesisAgrochemical formulators employ this molecule as a fundamental intermediate when constructing brominated and chlorinated phenyl amides for crop protection agents. Its structural properties provide the necessary reactivity to prepare active materials used in fungicide and herbicide products. Agrochemical synthesis lines value its stability and compatibility with continuous flow and batch processing. Product technologists monitor chlorination selectivity and manage byproduct streams under established regulatory review. Industry compliance standards
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3. Specialty Dye and Pigment ManufactureSpecialty colorant manufacturers use the compound as a crucial halogen source in the synthesis of advanced dyes and pigments. The brominated structure enables reliable halogen incorporation, imparting specific hue and fastness properties in finished dye formulations. Its amide moiety enhances solubility and dye-bath compatibility, critical in textile and paper coloration. Manufacturers perform color matching and stability testing matched to global performance standards. Industry compliance standards
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4. Fine Chemical Synthesis—Custom IntermediatesCustom fine chemical producers use this compound to build niche intermediates in electronic chemical, photo-initiator, and advanced material workflows. The molecule brings halogen-selectivity within complex multi-step schemes, supporting proprietary additive development and research-scale synthesis. Production engineers control input purity and manage reaction throughput in highly controlled environments, focusing on micro-impurity limits and vertical integration with downstream polymer or specialty additive manufacturing. Industry compliance standards
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Manufacturing N-(4-Bromophenyl)-2-Chloroacetamide requires care and dedication, and these qualities reach every bag, drum, and pallet that leaves our doors. Our experience working this molecule over many years has taught us what matters: consistency, purity, and reliability. From the moment the raw halogenated intermediates reach our production line, we enforce rigorous checks and process controls. The industry expects these standards for a reason. Whether the batch is a hundred grams for R&D or several tons headed for a formulation facility, the demands for tight purity and defined particle profile never change. Even slight deviation in quality will echo through downstream syntheses or formulations which depend on this product.
N-(4-Bromophenyl)-2-Chloroacetamide carries the practical formula C8H7BrClNO. Its structure lends itself to utility across fine chemical and active pharmaceutical intermediate synthesis. The presence of both bromo and chloro functional groups enables unique substitution patterns, and our synthesis has evolved to maintain high selectivity without introducing unmanageable byproducts. Workers on our lines watch for moisture uptake, off-spec color, or faint odor shifts long before these could appear in a product analysis sheet. There’s a real focus behind the quality, built from knowing how a small error multiplies by the time someone further down the chain—perhaps in a pharmaceutical lab—unseals the barrel.
Chemists select N-(4-Bromophenyl)-2-Chloroacetamide not just because of what sits in the bottle, but for what it allows them to achieve beyond synthesis. In crop protection research, it often forms the backbone for next-generation herbicide and fungicide candidates. Where direct nucleophilic or palladium-catalyzed couplings are required, the clean reactivity of our product often outperforms alternatives. Across organic syntheses, this molecule’s dual halogen handle remains in demand because it brings a balance of reactivity and selectivity rarely matched by closely related chloroacetamide derivatives.
During conversations with clients, pharmaceutical process chemists return to this point time and again. They compare our product’s outcome in their reactions—ease of workup, side product profile, overall yield—with that from competing suppliers. Because our facility runs on a closed, controlled environment with precision analytical monitoring, users routinely see higher batch-to-batch consistency. Less rework and downstream trouble translates directly into lower operational costs and fewer headaches right down a project timeline.
Decades in aromatic halogenation and amide chemistry shape our approach. In the case of N-(4-Bromophenyl)-2-Chloroacetamide, the route from raw precursors to finished goods pulls on everything we’ve learned. For us, maintaining tight control through each step does not sit as marketing talk—it’s a matter of pride. Every step—from charging the reactor with 4-bromoaniline to the point of quenching and final filtration—receives attention. Margin for error sits small. Organic contaminants, metal residues, or uneven crystallization become root causes for later failure if overlooked. We do not accept a surface-level pass on HPLC or NMR; rather, we trace impurities, solvent residues, and polymorph behavior because we know users will feel even the smallest inconsistency where it matters, in the lab or on the pilot plant floor.
While many think of specifications in abstract numbers, on the manufacturer side, each technical parameter ties back to stories from practice. For instance, a minor uptick in particle size distribution can shift reaction rates for sulfonylation or coupling by surprising amounts. The tiniest wet cake moisture can invite caking in a storage drum. We learned the hard way, decades back, how underestimating these factors could cause downstream complications. Now, in our process lines, routine Karl Fischer titrations and real-time optical monitoring keep these parameters within strict limits. This constant feedback between our technical team and hands-on operators remains our strongest resource. Lot by lot, we feed this learning forward.
Several products compete with or sit adjacent to N-(4-Bromophenyl)-2-Chloroacetamide, and some chemists consider switching between them for process economics or patent circumvention. For direct process substitution, however, interchange rarely plays out simply. N-(4-Bromophenyl)-2-Chloroacetamide carries an ideal balance of solubility and reactivity—its bromo group acts as a gateway for Suzuki or Buchwald reactions, while the chloroacetamide moiety permits chemoselective alkylation, aminolysis, or cyclization. Competing molecules such as pure 2-chloroacetamide or unhalogenated acetamide derivatives fail to enable the same breadth of structural elaboration. Over enough runs, the efficiency gap grows wider, especially where chiral synthesis or regioselective pathways matter.
From our conversations with long-standing API developers, one point emerges: time spent troubleshooting avoidable impurities quickly overshadows modest cost savings from off-brand sources. We keep hearing stories of batches from bulk intermediates made under less strict controls leading to unexpected pink or yellow tints, faint but persistent odors, or slow dissolution when scaled up. In effect, the direct savings achieved by buying on price alone pale in comparison to the cleanup, scrapping, or delay costs when material does not perform. Our role as manufacturer gives us the real-world window into these headaches, and every time we revisit our process, it’s with the intent to preempt even the most obscure failure mode.
Anyone can read a specification sheet and see numeric targets: melting point, purity, assay, loss on drying. But anyone who has handled scale-up or formulation knows these numbers only begin to tell the story. In our lab, we routinely take N-(4-Bromophenyl)-2-Chloroacetamide through stress tests for thermal and photochemical stability. Many downstream applications generate heat, or expose intermediates to light inadvertently, so knowing precisely where our product could begin breaking down gives process chemists a leg up. We’ve seen cases where customer formulations held steady using our lots across multiple months, while comparison samples from bulk commodity sources failed under the same storage.
Purity standards too matter in ways not always caught on a certificate of analysis. For instance, small levels of mono- or di-substituted halogenated aniline impurities can poison metal-catalyzed cross-couplings. Amide hydrolysis products introduce downstream processing risks, especially if downstream steps involve base or transition metal catalysts. Through regular dialogue, our technical team and customer labs keep refining the most meaningful impurity thresholds, far beyond generic regulatory minimums. Again, the influence here runs both ways—our clients’ feedback shapes our in-process controls, and their production success creates room for trust and long-term partnership.
N-(4-Bromophenyl)-2-Chloroacetamide finds its home most often in research and industrial sectors where fine functional group transformation counts. Several families of agrochemical actives trace their lineage back to this amide core, selected not out of convenience, but because alternative building blocks either create side reactions or leave harder-to-remove residuals. In medicinal chemistry, the electrophilic chloroacetamide fragment offers access to selective arylation, amidation or ring closure, particularly in the design of new kinase inhibitors or CNS-active intermediates. Wherever our product appears on a synthetic route, it nearly always owes its place to strict reactivity and clean handling traits versus bulkier or less-homogeneous analogues.
In our day-to-day technical support, conversations rarely hinge on broad application categories. More often, process engineers come to us describing a stubborn bottleneck—maybe a precipitation issue during scale-up, maybe a low conversion rate paired with unusual tars in the vessel. In these moments, the real-world value of consistent physical and chemical form comes through. The clarity of our N-(4-Bromophenyl)-2-Chloroacetamide—measured by its off-white, near-crystalline appearance and rapid solubility in DCM, DMF, or acetonitrile—takes troubleshooting off the table. The downstream chemistry moves ahead as designed, and the focus returns to the product, not the problem.
A formula might look precise on paper, but as experienced hands know, true specification in the plant means more than ticking boxes on an analysis sheet. Our job as manufacturer demands we not only hit top-end purity, but also deliver a physical form suited to industrial handling: pourable, flowable, and free from dusting or caking. We’ve invested in closed-system drying and sieving, and the benefit shows up when a technician opens a drum and finds a consistent, easy-to-handle product, batch after batch. These steps come from listening to plant feedback—nobody wants to spend extra hours breaking up clumps or troubleshooting stuck hoppers.
Through the entire production line, our workers know their reputation depends on tactile, not abstract, results. They check for unexpected stickiness, odd odors that could signal solvent retention, and uniform instant appearance that matches strict photographic standards. Whether our lots go to a multinational pharmaceutical or an emerging biotech, we take pride in the consistency our process delivers. Within the manufacturing community, reputation travels through these real-world test cases much faster than any brochure could suggest.
Nothing in the world of intermediate chemicals stays still. New regulatory guidance on solvent residues, occupational exposure, or environmental contaminants keeps shifting the operational target. We make it a point to stay ahead, not simply reactive, by investing in greener solvents, selective purification resin beds, and new analytical methodologies. The move to comply with lower aromatic amine or halide residual levels challenged us to dig deeper—sometimes down to parts per million—well before official limits arrived in national or international frameworks. Years of hands-on manufacture have demonstrated that these habits never go wasted. Testing methods evolve, but the upsides of rigorous internal standards always pay dividends, both to us and our customers.
Open communication only strengthens these outcomes. Process teams at customer facilities share feedback that sharpens our specifications, our packaging choices, and our quality control. For example, a manufacturing partner pointed out the need for more robust humidity barriers during monsoon-season shipments; since then, our multi-layer packaging now reaches customers dry and shelf-stable, even after weeks in transit. This sort of information never appears on simple data sheets, but it drives real-world reliability and builds the kind of trust that endures price volatility or shifting supply chain conditions.
Market pressures get discussed plenty—from raw material cost spikes to disruptions in freight or trade. But the quiet truth in our experience as manufacturer is that long-standing relationships based on proven material reliability always carry more weight than a spot price quoted on a Tuesday morning call. N-(4-Bromophenyl)-2-Chloroacetamide lives in a supply chain where unpredictability threatens schedules at every link. By tightening our lot release times, deepening strategic storage, and training our logistics teams on proper product handling under challenging conditions, we keep delays and lost batches to an absolute minimum.
Security of quality matters just as much as quantity. In more than one case, new customers have turned to us after suffering through unpredictable runs powered by material sourced from low-bid suppliers. Consistency in this molecule, as with most fine intermediates, owes as much to daily discipline as it does to sophisticated equipment or sensor arrays. The spectral analysis and impurity profiling shape operational edge only when a team enforces that every last drum meets those marks—every shift, not just on random audit. Over time, returns from this discipline show not just in fewer quality claims, but in pragmatic wins: less production downtime, smoother equipment cleaning, and a record of trust that opens doors for new projects.
Our commitment to manufacturing N-(4-Bromophenyl)-2-Chloroacetamide is built not just on chemical expertise but on day-to-day diligence. Every operator, chemist, and technical support expert in our team feels a real stake; if the product leaves our plant with less than our true standard, everyone carries that outcome. We lead with in-process transparency, real-time monitoring, and a willingness to pause shipments whenever uncertainty clouds a batch’s record. This approach preserves not only brand reputation but safeguards the work of chemists around the globe who rely on our material to perform as intended.
The story of this product, from first blueprint to warehouse stock, reflects a community of practice that values hands-on improvement over slogans. We support each innovation through careful iteration, frequently building on feedback from chemists and plant managers out in the world. The real lessons, as every seasoned manufacturer knows, come from the day you resolve an off-spec lot at 3:00 a.m. or rebuild a reactor flange to spare a day’s lost output. Crafting a molecule as sensitive and multi-purpose as N-(4-Bromophenyl)-2-Chloroacetamide proves the value of this mindset over and over again.
Changes in the global regulatory climate and shifts in application areas keep us alert. Advances in agricultural and pharmaceutical sectors bring new demands for lower impurity thresholds, alternative grading, or custom processing. We invest in new process chemistry, continuous purification, and in-process analytics to not only match, but anticipate these requirements. Our manufacturing approach focuses on equipping processes to adapt fluidly, cutting down transition times and enabling prompt shifts to new customer specifications as project needs evolve.
Feedback from customers remains our most valuable input. Many of our improvements—from packaging innovation to real-time impurity reporting—stem from practical conversation with those who rely on our product. Every day, production supervisors and lab chemists bring us information no quality checklist could catch: how a new batch handled on their floor, how a change in crystallization solvent altered performance, or why a drum needed extra screening. These details help us strengthen both quality and reliability, translating technical data into productive outcomes for industry partners of every scale.
In the world of functional chemical intermediates, top-line numbers get the attention, but day-to-day manufacturing tells the true story. We focus on what matters: a product that ships on time, meets its mark every time, and performs as promised on production lines far from our site. N-(4-Bromophenyl)-2-Chloroacetamide stands as a reliable, versatile option because it emerges from a culture grounded in experience—not fleeting price signals or specification marketing. Our investment in skilled operators, constant equipment renewal, and active technical feedback ensures this value reaches every drum and every user, with every order.
It takes more than a formula to make a product that delivers. For us, commitment to quality, transparent communication, and technical mastery are not optional extras—they define what it means to work as a manufacturer, not just a supplier. Every challenge met, every specification sharpened, and every partnership built grows from that understanding. Our journey with N-(4-Bromophenyl)-2-Chloroacetamide stands as one more chapter in that ongoing story.