|
HS Code |
869481 |
| Chemical Name | 1-Methoxy-3-(2-Nitrovinyl)Benzene |
| Synonyms | m-Anisaldehyde β-nitroethylene, 3-Methoxy-β-nitrostyrene |
| Molecular Formula | C9H9NO3 |
| Molecular Weight | 179.17 g/mol |
| Cas Number | 22114-12-9 |
| Appearance | Yellow to orange crystalline solid |
| Melting Point | 55-58°C |
| Solubility | Slightly soluble in water; soluble in organic solvents |
| Density | 1.19 g/cm³ (approximate) |
| Smiles | COc1cccc(c1)C=CC[N+](=O)[O-] |
As an accredited 1-Methoxy-3-(2-Nitrovinyl)Benzene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Brown glass bottle with a secure cap, labeled "1-Methoxy-3-(2-Nitrovinyl)Benzene, 25g," hazard symbols and handling instructions displayed. |
| Shipping | 1-Methoxy-3-(2-Nitrovinyl)Benzene should be shipped in tightly sealed containers, protected from light and moisture. Transport in accordance with local, national, and international regulations for hazardous chemicals. Ensure proper labeling and documentation. Handle with care, avoiding direct contact, and store in a cool, dry, and ventilated area during transit. |
| Storage | **1-Methoxy-3-(2-nitrovinyl)benzene** should be stored in a tightly sealed container, away from light, heat, and sources of ignition. Store in a cool, dry, and well-ventilated area. Keep separate from strong oxidizing and reducing agents. Ensure the storage area is equipped with appropriate spill containment and fire suppression measures. Properly label the container with hazard warnings and chemical identity. |
Applications of 1-Methoxy-3-(2-Nitrovinyl)Benzene in Industrial ManufacturingAs an established manufacturer of 1-Methoxy-3-(2-Nitrovinyl)Benzene, we supply high-purity material directly supporting specialized industrial processes. Downstream sectors leverage its reactivity and substitution pattern to achieve precise modifications, especially in regulated and high-value product lines. 1. Synthesis of Pharmaceutical IntermediatesPharmaceutical manufacturers utilize this compound as a key intermediate in the production of active pharmaceutical ingredients, such as nitrostyrene and methoxy-phenyl core APIs. Its electron-rich aromatic system allows for controlled reduction and functional group transformation under mild conditions. Integrating this material into route design helps minimize impurities, maintain batch consistency, and support regulatory filing. Reproducibility in critical step conversion underpins its frequent adoption within cGMP-compliant synthetic facilities. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Advanced Agrochemical SynthesisAgrochemical formulators integrate this methoxy-nitrovinyl benzene derivative to construct active insecticides and fungicides with extended half-life and improved target affinity. It serves as a pivotal building block for the downstream assembly of nitroaromatic scaffolds found in specialty crop-protection agents. Compliance with agricultural residue standards and traceability of ingredient origin are maintained throughout the supply chain, ensuring product safety and regulatory acceptance. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Electronic Chemical ManufacturingThe compound offers a controlled nitrovinyl introduction within fine chemicals targeting high-purity electronic and optoelectronic applications. Semiconductor and display material producers rely on it to introduce precise electronic effects into advanced liquid crystal compounds, enhancing response time and temperature stability. Stringent process controls are necessary to meet electronic-grade material requirements and avoid contamination issues in sensitive fabrication lines. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Fine Fragrance and Aroma Material DevelopmentSpecialists in aroma chemical production use this nitrovinyl aromatic as a specialty intermediate for musk syntheses and complex floral note recreation. The material’s substitution pattern provides necessary reactivity for subsequent cyclization and partial reduction, allowing fragrance houses to achieve unique olfactory profiles difficult to synthesize via alternative routes. All blending and purification operations adhere to global safety and purity mandates applicable to consumer-facing fine fragrances. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
5. Specialty Dye and Pigment IntermediateProducers in the dye and pigment arena deploy this compound in the multi-step synthesis of advanced azo and nitro dyes for textile and technical applications. The electron-donating methoxy group and activated vinyl position facilitate targeted coupling and azo formation, supporting the development of stable, high-intensity colorants. Production follows applicable environmental and user-safety regulations regarding nitroaromatic intermediates. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive 1-Methoxy-3-(2-Nitrovinyl)Benzene prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.
We will respond to you as soon as possible.
Tel: +8615371019725
Email: admin@sinochem-nanjing.com
Flexible payment, competitive price, premium service - Inquire now!
Every batch of 1-Methoxy-3-(2-Nitrovinyl)Benzene we manufacture reflects years of targeted process improvement, a constant drive to minimize impurities, and direct conversations with downstream users. Guiding our practice is a simple philosophy: chemistry must work both in the lab and at the plant. As a manufacturer, we control every critical point in production. This control gives our customers consistency from order to order—a factor that makes long-term research and industrial scale-up practical and reliable.
This compound, which sometimes appears in literature as m-Anisyl nitroethylene, remains an important intermediate for both laboratory researchers and those running pilot or full-scale synthesis operations. The defining feature of this compound is its finely tuned electronic structure, with the methoxy group and nitrovinyl moiety on a benzene ring. The proper orientation of these groups increases reactivity in select transformations. Our chemists devote much of their effort not to just making the product, but making it with subtle but vital characteristics that seasoned users expect.
Process repeatability matters. Small shifts in feedstock ratios, moisture levels, or temperature profiles during the solvent-phase condensation often manifest in the finished product: hue, smell, or assay readings might change, all of which can affect reaction yield downstream. Our history in scaling up reactions, rather than just bench-scale prep, has taught us where flexibility increases cost or risk. We stick to a protocol that narrows specification bands, often tighter than those found in academic literature or third-party standards. Because our R&D, QA, and production teams interact daily, production learning curves flatten quickly and new variations are implemented only after rigorous pilot trials and select customer qualification.
Each bulk or high-purity lot is measured for key chemical benchmarks—purity by HPLC or GC-MS, water content by Karl Fischer titration, and visible residue inspection. Only fully qualified batches are forwarded for packing. Upon application, some users find that even minute residual solvents or byproducts, not flagged as regulated impurities, can create noise in downstream analytical processes. Shelf-stable, easily weighed, low-volatility 1-Methoxy-3-(2-Nitrovinyl)Benzene is the result of interventions first identified on the production floor, then codified in SOPs written by teams who work with actual product at hand.
Many companies talk about high purity, but in our experience, the real test comes in multi-step reaction sequences, where off-spec material can force costly rework or low yields. Our product meets purity benchmarks agreed upon with high-end users in pharmaceutical and specialty organic chemical research. Each shipment includes precise documentation—not just generic COAs, but tailored analytics honed through joint projects with process chemists and analysts. The unique reactivity from our production method often gains attention for C-C or C-N bond-forming steps that involve the nitrovinyl group, as certain synthetic strategies can be unworkable if nitrovinyl reactivity is compromised by impurities.
A common point of feedback from seasoned users is that our crystal morphology resists clumping and static, making it simpler to handle and measure out on lab benches. This small detail becomes a logistical advantage for daily use. For commercial-scale transformations, engineers appreciate that each delivery maintains expected melting behavior, odor profile, and absence of extraneous moisture—a sign that the closed-process system keeps environmental variables under control.
The market for 1-Methoxy-3-(2-Nitrovinyl)Benzene is marked by two extremes: commodity producers who rarely interact with actual end-users and small-scale traders rebranding generic material from overseas. Reviewing feedback from industry partners, we observe material from traders arriving with suspiciously wide assay values or poorly documented trace levels of byproducts. In contrast, our product is consistently received by pharmaceutical developers, cross-coupling specialists, and analytical labs alike, due to reproducibility in outcomes. This reputation does not happen by chance—our internal audit process uncover and address deviations long before they reach the market. While some resellers simply shift invoices, we actively maintain communication with researchers and production chemists to address their pain points, then guide our process development accordingly.
Material unfit for complex or multi-step synthesis often circulates at a lower price, but traps users in longer troubleshooting cycles. We make no compromises in raw material source verification. Atmospheric controls during final crystallization preserve both color and odor integrity, preventing the “off-smell” or yellowish cast that accumulates in loosely monitored warehouses.
Those who have dealt with off-spec shipments, unpredictable crystallinity, and lagging customer support recognize that source-to-site traceability sets true manufacturers apart from traders or opportunistic middlemen. By sharing not only product but also application data, tips for storage and usage, we serve as a resource rather than a faceless supplier.
In laboratories and commercial plants, this compound appears in key steps of photographic chemical production, specialty flavor and fragrance intermediates, as well as advanced pharmaceutical candidate synthesis. Demand for 1-Methoxy-3-(2-Nitrovinyl)Benzene is not driven by volume alone; projects often require kilogram-scale runs where quality must be proven with each delivery. In photochemistry, purity impacts both light absorption consistency and product yields. For flavor and fragrance, trace contaminants can mask or distort sensitive organoleptic characteristics. Our experience in managing these cross-industry demands, and trouble-shooting process anomalies side-by-side with application chemists has resulted in a product line trusted for both reliability and technical support.
Analytical teams appreciate the way product lots fall within narrow benchmarks: melting point, chromatographic purity, optical clarity under controlled lighting. Our technical advisors—former process chemists—frequently walk clients through the finer points of storage, moisture management, and use in scale-up. By encountering real process variables on the shop floor, rather than just in silico, we build a support network that covers product from drum to bench-top application.
Long experience teaches the value of safe, direct handling. Each drum, bottle, or custom-packed order passes through a cleaning process that eliminates cross-contamination risk. Our filling teams work in strictly controlled environments—temperature, humidity, and particulate count all monitored for every lot fill. Package labeling is redundant, making on-site trace-back possible even if outer packaging is damaged in transit. Batch numbers, test results, shelf-life data, and handling recommendations accompany each delivery, with our technical staff ready to provide real-world advice about storage intervention or incident response.
The way a chemical manufacturer approaches shipping reveals their commitment to both quality and user needs. Unlike traders, we do not rely on unknown intermediate storage, preventing unnecessary exposure to seasonal humidity swings or repackaging contamination. Our shipping specialists employ materials chosen for compatibility—no risk of in-package reactivity or vapor exchange tainting a sensitive product.
For users with unique storage requirements, such as low-temperature or inert atmosphere demands for research labs, our teams work to arrange compatible packaging and include nitrogen flush options upon request. Tracking use patterns and gathering anecdotal reports from chemists has led us to tweak not only packing protocols but also advice for reopening, resealing, and recalibration for analytical consistency.
Real learning takes place by hearing about results, not just on paper, but through the voices of chemists using this product daily. Our work with pharmaceutical developers, academic research groups, and specialty materials companies has sharpened our sense for what signals genuine value, and which “specs” serve only as marketing static. Some users confess past frustrations with inconsistent product from resellers—unexpected impurities, misleading melt behavior, inconsistent color—that derailed planned synthesis for weeks.
By approaching every lot as a custom job, we frequently discover small, cumulative improvements: a tighter tolerance in crystal size can cut waste; a modified solvent sequence reduces odor transfer during transfer into reactors. True feedback-driven manufacturing means our control protocols shift to meet factual, field-reported needs—not abstract, “market-driven” standardization.
Experience keeps us a step ahead of shifting compliance targets. As regulatory frameworks evolve, especially in pharmaceuticals and specialty chemicals, our compliance team updates testing protocols to cover new analytical or reporting rules. Our documentation includes relevant analytics, source declaration for all precursor batches, and full test method transparency. Chemists and procurement teams never struggle to prove product provenance or clarify analysis data for audits.
We keep clear separation between production lines intended for regulated (e.g. EU, US FDA-oriented) end-uses and those serving industrial or R&D markets. Critical documentation stays updated to satisfy even the most detail-oriented QA auditor—avoiding generic “global standard” shortcuts put forward by undifferentiated brokers. Fast response to documentation or regulatory questions isn’t outsourced; our technical and compliance specialists communicate directly with end-users.
Process chemists frequently describe small, cumulative problems—unpredictable residue formation, variable color development, difficult filtration, or fouling issues traced back to off-spec ingredients. Some of these headaches only emerge at larger scales, where deviations that seemed minor in the lab now generate substantial scrap or lost yield. Production chemists who have spent months optimizing complex, multi-step pathways soon learn that input quality can dominate both process stability and overall project economics.
With 1-Methoxy-3-(2-Nitrovinyl)Benzene, we have encountered—and overcome—most problems that plague rapid scale-up: unwanted polymerization, unwanted dimer formation, odd-melting point behavior, or entrance of unknown trace byproducts at the decagram or kilogram level. Manufacturing at scale differs from trading or small-lot synthesis, as batch-to-batch consistency and process repeatability define the line between commercial viability and project failure. By logging ring analysis data and comparing with long-term performance, our QA teams communicate process changes not only internally but also to trusted clientele, reducing regulatory risk and technical delay.
Trust comes from a track record, not prices or stock availability alone. Decades of manufacturing have taught us that those using this product in critical synthesis steps value rapid, skilled feedback more than just the product itself. From sharing NMR spectra, impurity profiles, to joint problem-solving when scale-up bottlenecks hit, we put technical transparency at the center of each transaction. This open channel gives both sides more tools to solve unplanned process or analytical issues, fostering development on both sides of the supply chain.
By involving senior technical staff in order review, critical feedback, or even plant troubleshooting, we integrate field experience directly into our production process. Our operations and R&D staff get involved in customer applications, learning the physics and chemistry in real-world use, not just as a manufacturing exercise. Such dialogue has led to line improvements—special filtration, alternate drying protocols, cleaner recoveries—that outperform standard methods found in secondary-source products.
Production expertise, detailed analytics, and open dialogue with end-users inform each decision we make when producing and shipping 1-Methoxy-3-(2-Nitrovinyl)Benzene. Our investment in quality isn’t abstract; it shows in compound reliability, batch-to-batch repeatability, and hand-over-hand technical support. Experts who trust their inputs trust us, knowing that each gram reflects hard-won lessons from years in the plant, not just a label on a drum.
This approach, relying on close feedback loops, flexible production strategy, and unwavering adherence to strict process controls, means real value arrives with every delivery. Our aim is not merely to supply, but to help progress every project from benchtop study to commercial realization—building lasting scientific and industrial partnerships based on capability, honesty, and hands-on support.