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HS Code |
422551 |
| Chemicalname | 2,4-Dimethoxy-1-Nitrobenzene |
| Molecularformula | C8H9NO4 |
| Molecularweight | 183.16 g/mol |
| Casnumber | 2260-05-5 |
| Appearance | Yellow to orange solid |
| Meltingpoint | 52-54 °C |
| Boilingpoint | 310-312 °C |
| Density | 1.30 g/cm3 |
| Solubility | Soluble in organic solvents such as ethanol, ether, and chloroform |
| Smiles | COC1=CC(=C(C=C1N(=O)=O)OC)H |
| Inchi | InChI=1S/C8H9NO4/c1-12-6-3-4-7(13-2)8(5-6)9(10)11/h3-5H,1-2H3 |
| Refractiveindex | 1.577 (predicted) |
| Synonyms | 2,4-Dimethoxy-nitrobenzene |
| Storagetemperature | Store at room temperature |
As an accredited 2,4-Dimethoxy-1-Nitrobenzene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The chemical is packaged in a sealed amber glass bottle, labeled “2,4-Dimethoxy-1-Nitrobenzene, 25 grams,” with safety and hazard information. |
| Shipping | 2,4-Dimethoxy-1-Nitrobenzene should be shipped in tightly sealed containers, protected from light and moisture. It must be clearly labeled and handled as a hazardous material. Ship via ground or approved courier, complying with relevant chemical transport regulations (such as DOT or IATA), and include proper documentation. Avoid extreme temperatures and physical damage. |
| Storage | 2,4-Dimethoxy-1-Nitrobenzene should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from sources of ignition, heat, and direct sunlight. Keep it separate from incompatible substances such as strong oxidizing or reducing agents. Ensure that the storage area is equipped for spill containment and clearly labeled for hazardous chemicals. |
Applications of 2,4-Dimethoxy-1-Nitrobenzene in Industrial Manufacturing2,4-Dimethoxy-1-Nitrobenzene serves as a stable intermediate for various chemical syntheses. We supply this compound to downstream manufacturers in multiple precision-driven industrial sectors, where process safety, regulatory alignment, and performance consistency remain critical throughout production. 1. Pharmaceutical Intermediate SynthesisThis compound frequently enters the synthetic route for specialty pharmaceuticals, especially in the production of active pharmaceutical ingredients (APIs) and advanced intermediates. Chemical manufacturers employ it during multi-step reactions, including nucleophilic substitution and reduction, to introduce methoxy and nitro group functionalities relevant to target molecules. Production demands highly controlled batch conditions and validated in-process QC, as the purity and precise molar feed impact downstream molecule characteristics and regulatory submission data. Industry compliance standards
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2. Agrochemical Active Ingredient ProductionDownstream agrochemical manufacturers utilize this raw material for the synthesis of nitroaromatic pesticide precursors. Its controlled reactivity ensures selectivity during coupling and esterification, critical for meeting residue limits and environmental regulations. Production lines must balance cost and impurity formation as part of scaling protocols. Handling necessitates dedicated storage and dispensing according to safety data parameters due to raw material toxicity and environmental classification. Industry compliance standards
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3. Dye and Pigment ManufacturingPigment and specialty dye producers employ this compound as a building block for synthesizing azo and methoxy-substituted dye classes. The chemistry exploits selective aromatic substitution, affording target chromophores with enhanced solubility and shade characteristics. Plant engineers design closed-loop production lines that minimize batch-to-batch variation and ensure complete conversion to desired dye intermediates. Stringent wastewater handling and VOC abatement form part of regular plant QA/QC routines. Industry compliance standards
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4. Electronic Chemical SynthesisIn printed electronics and high-purity materials manufacturing, this compound functions as a precursor for custom molecular semiconductors and dielectric films. Applications include functional materials where specific aromatic substitution patterns enable fine-tuning of optical and electronic properties. Strict impurity control and trace-metals screening govern procurement and lot acceptance, supporting downstream wafer and substrate fabrication. Environmental and occupational safety protocols warrant isolated handling cells and continuous emissions tracking. Industry compliance standards
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5. Photographic Chemical ProductionThis compound enters downstream supply chains for manufacturing specialty photographic developers and chemicals for silver halide systems. Its aromatic structure plays a role in the synthesis of redox-active developer agents. Production batches must avoid contamination and guarantee consistent reactivity to ensure print quality and shelf stability of photo-chemistry kits used in industry processing labs. Industry compliance standards
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We’ve spent years getting familiar with 2,4-Dimethoxy-1-Nitrobenzene, not just in the books but through every batch we've produced and delivered. This compound stands out with a straightforward molecular structure: a benzene ring bonded to two methoxy groups at the 2- and 4-positions and a nitro group at the 1-position. In practical terms, what shows up in the factory as pale yellow crystals holds substantial value for those engaged in organic synthesis, pharmaceuticals, dyes, and the development of more complex intermediates. We work at a scale that keeps our material consistent, every lot checked and double-checked against agreed specifications.
The difference between overseeing production directly and dealing with finishers down the line is full control over reaction conditions and purification steps. The end result shows up in physical properties: clear melting range, consistent particle size, and predictable solubility. We see recurring emphasis from our customers on low impurity content—especially important in complex downstream chemistry, where one unpredictable contaminant can mean hours or days of troubleshooting. Our teams measure main assay by HPLC and confirm structure by NMR on every batch, ensuring clarity from paperwork to glassware. We've learned to dial in bulk density and flow to suit charged hopper feeds or hand-weighed bench work.
Over the years, feedback from partners has shaped our approach to producing this compound. Many come to us after struggle with color impurities, off-odors, or excessive moisture that complicate handling and measurement. Our drying steps and sealed-packing solutions cut out much of the water pick-up, and we avoid materials that degrade into smelly byproducts under mild conditions. Reports from the field confirm our attention to odor and appearance helps screening teams speed up their formulations: nobody wants doubts about the starting material before synthesis even begins.
We’ve handled thousands of kilos for contract manufacturing, and over time we’ve witnessed the effects of variable crystallinity and flow behavior during scaling. We pay attention to bulk material handling properties—for instance, clumping or caking can be reduced by managing particle size distribution and controlling moisture rates throughout packing. On a pilot scale, these tweaks can eliminate the need for unnecessary mechanical intervention downstream.
Our plant technicians are vigilant about purity. Regular batches offer assay greater than 99 percent by HPLC, keeping residual solvents and metals in check. For specialized applications—like sensory tests in fragrance precursor chemistry or high-sensitivity pharmaceutical starting point—we run additional cleaning cycles, tracking each with detailed batch records. Direct conversations with users in colorants and dye industries have taught our teams how even low levels of metal or sulfur contaminants can skew color performance in fine fabric applications.
Most of the demand for 2,4-Dimethoxy-1-Nitrobenzene comes from synthetic laboratories, pharmaceutical developers, and materials scientists. One common use is as a precursor to 2,4-dimethoxyaniline derivatives—needed in coloring agents, dye intermediates, and several pharmaceutical compounds. Pharmaceutical manufacturing process design often starts with molecules like this, thanks to predictable behavior under reduction, methylation, and substitution conditions. Even slight off-ratio production of side-products forces recalibration or purification in later steps, so reliable starting point quality saves both time and raw material wastage.
Some groups prefer to stick with a single manufacturer because of these advantages—we’ve heard countless stories about variable performance between lots bought from brokers or jobbers. Our consistency allows multi-year research programs to proceed without shifting basic parameters halfway through. This reassurance comes from history, not paperwork. Most repeat customers discovered us after running quality side-by-side and seeing one batch after another hold up under scrutiny, then proceeding to trial scale and larger production demands without pause.
In dye chemistry, there’s little tolerance for out-of-spec material. Color consistency rides on pure starting material, especially when scaling from lab to pilot lines. We keep track of possible interfering substances using both UV-vis and HPLC monitoring, in addition to more general structural confirmation by NMR. By prioritizing transparent reporting—lot number traceability, linked COAs, and full impurity breakdown—teams in industries that demand absolute transparency have kept us on record as a trusted vendor.
Researchers sometimes ask why we recommend 2,4-Dimethoxy-1-Nitrobenzene over related nitrobenzenes. Our experience shows several advantages in structure-activity relationships and downstream chemical performance. The twin methoxy groups alter both reactivity and solubility, allowing finer control in multi-step synthesis. They provide electron-donating capacity, lowering the activation energy required for selective reductions or substitutions. This trait comes into play when synthesizing high-value intermediates—a feature often missing in mono-methoxy or unsubstituted nitrobenzenes.
Substituting methoxy at both the 2 and 4 locations changes the molecule’s solubility in polar and nonpolar solvents, which can simplify purification and recovery. This performance edge has direct consequences on time spent post-reaction—our customers see improved yields and simplified workup, especially in standard crystallization and extraction processes. By contrast, 2-methoxy- or 4-methoxy-1-nitrobenzene often require extra solvent or multi-step extraction.
Some nitrobenzenes pose more risk during production and downstream use. We’ve engineered our process to reduce free nitrous acid and nitrate byproducts, lowering the risk profile for both workers and researchers. Safety managers on our site and at customer facilities give regular feedback about hazard assessment and reduced incident risk thanks to tighter process controls. The more stable melting point and reliable handling reduce unplanned remediation steps.
With decades on the manufacturing floor, we’ve seen the difference between goods made under direct technical oversight and material repackaged upstream by brokers. Handling the reactions ourselves lets us tune not only the yield but also subtle process points that impact downstream users. While traders and resellers can move product across borders or regions, the folks making high-performance materials need steady supply chains, accurate documentation, and open lines of technical discussion. We're often the ones troubleshooting right alongside the user’s lab team, referencing actual batch records instead of guessing about parameters.
We can step into the lab to run real-world tests with each lot, exposing our material to the same conditions our clients use—thermal cycling, solubility trials, compatibility checks in new reactions or new solvents. These results shape real modifications in next-batch production. By sharing analytical data, we build trust—the generated spectra, impurity breakdowns, and long-term stability checkups all result from actually making and owning the chemistry.
Batch consistency depends on reaction design and controls—parameters we establish based on our years of working hands-on with both equipment and teams. Some labs receive small containers for bench scale; others get drums for pilot or commercial use. Because we're on hand during every stage, it’s significantly easier for customers to raise questions or discuss new requirements directly. Our records can confirm everything from origin of starting materials to testing method differences over time.
Dialogue with process chemists working on scale-up projects regularly shapes how we manage our runs. Sometimes, challenges arise with unexpected side reactions during nitration or methylation. We tackle these through methodical review after every deviation, working alongside customer teams to dissect the analytical data—not just relying on default paperwork but stepping back into the plant to re-run the critical steps, if necessary. This level of transparency builds bridges between supplier and user, creating a feedback loop that delivers more than just bottles and paperwork.
We noticed a strong push from pharmaceutical groups for broader impurity profiling. As a result, our team went beyond minimal compliance, employing extended-stability studies and tracking secondary degradation paths. These insights have helped our clients avoid troublesome surprises at late regulatory stages, reducing both cost and lab time.
Process engineers have worked with us to adjust physical parameters too, focusing on flow and packing for automated dispensing lines. We don’t just read off specs and ship standard formulations—we dive into the line, observing operational issues, and modifying our crystallization steps to better fit real-world factory flows. The lessons from daily plant life feed directly into our next run, limiting off-spec generation and returning tangible value to customers on tight timelines.
Meeting modern demands for traceability, safety, and environmental care takes more than statutory notices. We’ve invested in containment, ventilation, and solvent recycling operations. Worker exposure stays well below permissible limits, not simply because the guidance says so, but because our plant teams spend their days near these materials and deserve the best practical safeguards.
We train every operator not just to follow protocols, but to spot emerging concerns and intervene proactively. A healthy workplace, from fume extraction to protective gear, forms the backbone of our operation. Routinely, our in-house safety review panels pull feedback from staff and users alike—identifying opportunities for hazard reduction, handling improvements, or alternative solvent systems. We share these lessons openly because the community thrives on best practices, not closed-door discussions.
We remain attentive to regulatory requirements across all markets we supply. Every change, whether it’s a new solvent rule, stricter emissions standard, or transport safety update, leads to updates in our workflow and documentation. Pharmaceutical and electronic customers, in particular, demand more than compliance—they look for partners willing to publish process details and supply chain records without hedging. Our reputation for detailed, honest reporting stands on these demands.
Our plant is more than a row of reactors or a set of certifications. Workers offer process suggestions almost every week, and those closest to the equipment spot patterns before they become problems. It's not uncommon for a suggestion about a filter material, a heat-transfer tweak, or a small recipe amendment to show up in the next batch record. These small shifts help reduce byproducts, tighten the assay window, and make material handling smoother for everyone along the chain.
We've collaborated with customers developing new processes by adapting purity, solvent carryover, or blending ratios. Often, R&D groups share their evolving application needs, and we develop experimental samples for next-generation chemistry. Within our team, incentive comes from solving problems, not just filling orders. Success follows from meeting actual demands—proved by equipment downtime shrinking, fewer customer complaints, and tighter batch yield tracking.
We've learned that a product's reputation builds in hundreds of small choices—deviations corrected, specs exceeded, and open questions answered in real time. Our goals at the factory are simple: keep lines open to our partners, monitor every lot, and constantly seek ways to reduce waste and risk without shifting burden downstream to the user.
Users working with challenging synthetic sequences—be they in pharma, dye production, or advanced materials—need more than catalog listings or theoretical spec sheets. Our role, as the direct manufacturer, is to make the route from raw material to finished product more predictable, more transparent, and less risky. We see every step, from sourcing to final inspection. Many clients value prompt, honest communication about deviations, next-batch plans, or changes in feedstocks—even if those changes lie months out. These connections beat guessing games and keep promise and performance aligned.
We don't chase uniformity through bland compromise. Instead, we've learned to adapt—sometimes supporting custom runs with special impurity specs, or isolating samples that save months as research projects pivot in new directions. Each new user inquiry leads to fresh production reviews, run tests, and data sharing. Those relationships, made possible by direct manufacturing, channel real improvements into every lot shipped.
As leaders on the production floor, trust and transparency come from work put in—measured by satisfied repeat business, honest reviews, and day-to-day feedback from those whose results depend on starting with reliable 2,4-Dimethoxy-1-Nitrobenzene. By owning both chemistry and process, we deliver more than a product: we share our experience, problem-solving, and manufacturing pride in every shipment.