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1,3-Diethoxybenzene

    • Product Name 1,3-Diethoxybenzene
    • Alias m-Phenetole
    • Einecs 217-425-9
    • 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
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    Specifications

    HS Code

    386327

    Chemical Name 1,3-Diethoxybenzene
    Molecular Formula C10H14O2
    Molar Mass 166.22 g/mol
    Cas Number 136-28-7
    Appearance Colorless liquid
    Boiling Point 232-234 °C
    Melting Point -21 °C
    Density 1.01 g/cm³
    Refractive Index 1.499
    Flash Point 100 °C
    Structure Benzene ring with ethoxy groups at positions 1 and 3
    Solubility In Water Insoluble
    Pubchem Cid 12066

    As an accredited 1,3-Diethoxybenzene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 1,3-Diethoxybenzene, 100 g, supplied in an amber glass bottle with a secure screw cap, labeled with hazard information and purity.
    Shipping 1,3-Diethoxybenzene should be shipped in tightly sealed containers, properly labeled according to chemical regulations. It must be transported in accordance with local, national, and international guidelines for organic liquids, ensuring it is kept away from incompatible substances and sources of ignition. Handle with care to prevent leaks or spills during transit.
    Storage 1,3-Diethoxybenzene should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from direct sunlight, ignition sources, and incompatible substances such as oxidizing agents. Keep the storage area clearly labeled and restrict access to trained personnel. Follow all relevant safety and chemical hygiene procedures to minimize the risk of spills or exposure.
    Application of 1,3-Diethoxybenzene

    Applications of 1,3-Diethoxybenzene in Industrial Manufacturing

    As a specialized manufacturer, we supply 1,3-Diethoxybenzene to key sectors where its unique chemical profile supports high-value synthetic pathways. Our production quality and supply chain traceability ensure each shipment meets exact downstream technical and compliance needs. Explore below the principal industrial applications of this material across chemical manufacturing, highlighting specific formulation ratios, regulatory standards, process steps, and resulting products.

    1. Pharmaceutical Intermediate Synthesis

    The pharmaceutical sector utilizes 1,3-Diethoxybenzene as a valuable intermediate in the synthesis of select active pharmaceutical ingredients (APIs), particularly where aromatic ether groups are required to achieve specific pharmacological activity. Process chemists rely on its reactivity to introduce ethoxy functionalities in advanced intermediate stages, supporting the development of antihypertensives and other specialty compounds. This usage strictly follows cGMP environments, with the raw material entering the reaction sequence during etherification, Grignard, or Friedel–Crafts alkylation steps. Product-release testing ensures traceability and batch-to-batch consistency in every lot.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Part 210/211 (Finished Pharmaceuticals)
    • EU GMP Part II (APIs)
    • Pharmacopeias: USP, EP reference standards for related intermediates

    Typical usage ratio

    • Used at 1–5 mol% of total reaction mass depending on target API structure and process yield requirements; chemists adjust input based on desired substitution levels and downstream conversion efficiency.

    Downstream process integration

    • Introduced during intermediate synthesis steps: commonly as a key reactant in forming substituted aromatic ether moieties before final API crystallization or salt formation stages.

    Final product types

    • Advanced pharmaceutical intermediates (e.g., ethers for antihypertensive, antipsychotic, and other API classes)
    • Final APIs where the ethoxybenzene core is retained

    2. Agrochemical Active Ingredient Manufacturing

    Agrochemical manufacturers integrate 1,3-Diethoxybenzene to construct aromatic rings with tailored substitution patterns in select herbicides, fungicides, and insecticides. This material provides key aromatic ether structures that enhance biological uptake or stability under field conditions. Input ratios are closely matched to stoichiometric requirements in the synthesis of target actives, and application follows sector-specific manufacturing audits such as ISO 9001 and registration under regional pesticide authorities.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • REACH Regulation (EC) No. 1907/2006
    • ISO 9001:2015 Quality Management (site certification)
    • EPA Pesticide Registration (US) or China ICAMA registration

    Typical usage ratio

    • Input typically 3–8 wt% of total synthesis charge, varying with specific active ingredient and yield optimization studies in pilot plant trials.

    Downstream process integration

    • Added in early-stage condensation or electrophilic aromatic substitution steps to construct etherified pesticide backbones prior to formulation and granulation.

    Final product types

    • Active ingredients for selective herbicides
    • Key ether-based intermediates for fungicides and insecticides

    3. Liquid Crystal Material Production

    In advanced electronics manufacturing, 1,3-Diethoxybenzene acts as a specialist precursor in synthesizing mesogenic compounds for liquid crystal displays (LCDs). Its molecular structure contributes specific dielectric and alignment characteristics, essential in achieving high-performance screen modules. Strict electronics-sector quality standards apply, including trace impurities and isomer content, managed through analytical QC and cleanroom-compatible processes. Our product enters the process during the formation of ether-linked biphenyl structures needed for nematic or smectic liquid crystal mixtures.

    Industry compliance standards

    • IEC 61249–2 Electronic Material Standards
    • RoHS Directive (2011/65/EU)
    • ISO 9001:2015 Electronic Materials Manufacturing
    • Customer-specific cleanroom purity and low-metal specifications

    Typical usage ratio

    • Frequency of use ranges 0.5–2 wt% based on required optical birefringence and molecular mobility in commercial LC blend formulations.

    Downstream process integration

    • Introduced during precursor synthesis for biphenyl, dioxane, or similar ether core liquid crystal compounds, prior to final blending and quality testing.

    Final product types

    • High-purity mesogenic compounds for LCD manufacturers
    • Liquid crystal mixture components for consumer and industrial displays

    4. Specialty Monomer and Polymer Additive Preparation

    Polymer manufacturers employ 1,3-Diethoxybenzene in the synthesis of custom ether-functionalized monomers and as a co-monomer to modify glass transition temperatures and solubility profiles of specialty resins. The material integrates into polymerization sequences in engineered plastics, adhesives, and thermoset matrix systems. Sector standards related to food contact or electrical insulation apply, governed by region and final use. Dosage and workflow depend on targeted end-use performance, with this input often directly influencing the polymer’s molecular weight distribution and cross-linking characteristics.

    Industry compliance standards

    • FDA 21 CFR 177 (Indirect Food Additives: Polymers, US)
    • EU Regulation No 10/2011 (Plastic Materials and Articles)
    • UL 94 (Flammability for Plastics)
    • ISO 9001:2015 (Polymer Manufacturing)

    Typical usage ratio

    • Usage typically 0.5–2 mol% as a co-monomer or functional group modifier; formulation scientists adjust stoichiometry for required flexibility, solvent compatibility, or thermal behavior.

    Downstream process integration

    • Added at monomer charge stage during batch or continuous polymerization processes; may act as cross-linker component in resin formulation or engineered plastics compounding.

    Final product types

    • Customized polyether resins for adhesives and coatings
    • Engineering polymers with improved electrical or food-contact properties

    5. Dye and Fine Chemical Synthesis

    Producers of specialty dyes and fine chemicals employ 1,3-Diethoxybenzene to introduce selective etherification patterns that modify the chromophore’s optical properties or improve solubility in polar and nonpolar matrices. This material is widely used in steps where precise aromatic substitution supports the performance of high-value pigments or high-purity chemical intermediates for electronics or photochemistry. Compliance includes sectoral chemical safety, technical grade requirements, and traceability documentation.

    Industry compliance standards

    • OECD Guidelines for Testing of Chemicals
    • ISO 14001 (Environmental Management for Chemical Manufacturing)
    • EN 71-3 (Safety of Toys, for dyes in toy applications)
    • Product-specific technical grade purity specifications

    Typical usage ratio

    • Blends range from 0.8–4 wt% in colorant production depending on dye structure, desired hue intensity, and solubility target in finished application systems.

    Downstream process integration

    • Reacted in etherification or aromatic substitution steps in fine chemical synthesis before final isolation and purification of colorants or intermediates.

    Final product types

    • Solvent-soluble dyes for inks and coatings
    • Specialty pigments and intermediates for display technologies, sensors, or cosmetics
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    Certification & Compliance
    More Introduction

    1,3-Diethoxybenzene: A Direct Manufacturer’s Perspective

    Understanding 1,3-Diethoxybenzene

    As a company that synthesizes and purifies fine chemicals in-house, we have worked with 1,3-diethoxybenzene for years, watching its role expand in both research and industry. The molecule, identified by the structure C10H14O2, appears as a clear, colorless liquid under standard conditions. This chemical has grown into a cornerstone ingredient not just for advanced organic synthesis, but also for the crafting of specific polymers and pharmaceutical intermediates. Through every batch, our production lines focus on process control, achieving a high standard of purity—routinely above 99.5% as confirmed by GC.

    Why Precision Matters in Manufacturing

    Handling this compound ourselves provides a direct window into the challenges and requirements of chemical production. Minute impurities, sometimes almost undetectable, can compromise downstream synthesis. For customers in molecular electronics or drug discovery, reproducibility hinges on what we provide. Purity goes beyond the mass percentage. Water content, optical clarity, and consistency in its aromatic profile all factor into whether 1,3-diethoxybenzene performs as expected. Many times, laboratories have shared with us how side reactions diminished yield or changed end product color—all filtered back to trace contaminants not visible on standard paperwork.

    Maintaining control on every kilogram, we invest in both quality assurance and consistency. GC, NMR, and Karl Fischer titration aren’t just slogans in brochures. They remain a daily aspect of the job, so the product in the drum matches the predictions in the literature and our customer needs—not just by chemical name, but in function.

    Specifications: Beyond the Basics

    Listing the melting point, boiling point, or density makes little sense unless those numbers remain true, batch-to-batch. Raw material quality, distillation technique, and storage conditions all influence how much moisture or unintended methylation can creep in. On our lines, the key figures for 1,3-diethoxybenzene include boiling ranges, GC area purity, and water mark. There’s no shortcut around moisture scrubbing and inert atmosphere handling. Drums leave our plant only after three points of confirmation. Labs may focus on equation outputs; we focus equally on shipment checks, drum-to-drum comparison, and shelf stability over several months.

    These steps guarantee a consistency that smaller or trading brokers rarely match. As the ones operating the reactors, we engineer for industrial and research scale alike—150 gram bottles for high schoolers or 160 kg drums bound for corporate polymer research.

    Where 1,3-Diethoxybenzene Fits: Key Uses

    Every year, synthetic chemists share feedback, driving us to keep evolving. In dyes and pigments, it serves as a starting block for complex benzene derivatives—high color stability, controlled electrophilic substitution, and less risk of runaway side reactions. In medicinal chemistry, research benches use it to build out aryl ethers or serve as a masked diol, with electron-donating properties tuning aromatic nucleophilicity. Countless pathway papers cite this compound as a clean substrate or intermediate for drugs, especially nearing exploratory or pre-clinical scale.

    Battery materials developers use it in lithium-ion research, noting its impact on film properties once polymerized. It appears in advanced coatings, lending flexibility to custom resin design. The flavor and fragrance sector cherry-picks it as a controllable core, shaping subtle aromatic profiles for specialty scents. Over the years, as end-user requirements have changed, we have revised purification and packaging protocols more than once to fit.

    What Sets 1,3-Diethoxybenzene Apart from Similar Aromatics

    Much confusion still surrounds the subtle differences between isomers and similar benzenes. Plenty of labs mistakenly request 1,2-diethoxybenzene or 1,4-diethoxybenzene thinking all three act alike. Yet the electron distribution changes between these, shifting reactivity and solubility in unexpected ways. 1,3-diethoxybenzene, with its para- and meta- positions open, allows selective functionalization, which cannot always be achieved with 1,2- or 1,4- placement.

    We see requests sometimes switch mid-project when the initial isomer leads to poor yields or off-target products. Our team has guided researchers, before shipment, through the contrasts in reactivity, solvent interaction, and color profile post-functionalization. This depth of support only comes from producing the full suite ourselves, not just moving catalogue stock or relying on secondhand supply. For the growing number working on advanced polymers, only 1,3-diethoxybenzene covers the desired window of flexibility with minimal cross-reaction risk. Our experience as producers has often been the difference between a successful process scale-up and a puzzling series of failed pilot runs.

    Role of Experience in Meeting Evolving Demands

    The value of decades in production goes beyond technical capability; it creates a relationship with end users. We remember tough seasons—when supply chain snags have left markets short on quality aromatics. The temptation in those moments: shift to larger volume, lower check rates. From firsthand lessons, we learned this undermines both trust and experimental results across the supply chain. We maintain detailed logs of each step, so if a university or pharma client calls months later with a question about a specific batch, we can confidently outline what went into, and came out of, the reactor that day.

    Clients, especially newcomers, routinely ask if they can ‘get by’ with a lower-purity cut. From what we and many researchers have found, “good enough” often means more troubleshooting, more byproduct, more hours spent backtracking synthesis steps. We steer clients away from buying material declassified from reagent grade solely due to early color shift or water absorption. One recent example: an innovation-minded electronics manufacturer sought to cut costs by swapping to a lower grade of 1,3-diethoxybenzene. They encountered film inconsistencies traceable to nonvolatile residue—solved only by switching back to our higher standard batch.

    Sustainability and Safety: Front-Line Realities

    There’s more to manufacturing than producing high-purity chemicals. Safe handling practices and responsible waste minimization define the modern production floor. Solvent usage, vapor containment, and drum recycling all factor into our daily routines. We maintain sealed systems during both production and packaging, reducing emission risks to nearly zero for both staff and downstream users. All drums and bottles get nitrogen padding and full labeling. We work closely with logistics partners, not leaving drum storage to chance. Most importantly, we physically audit drum returns and recycle through specialized channels rather than relying on paperwork audits.

    Our buyers periodically ask about "greener" formulations. The reality is, for aromatic ethers like 1,3-diethoxybenzene, minimizing waste and reusing solvents remains one of the most impactful shifts a plant can make. Process improvements matter more than hollow “green” slogans, so we focus on engineering systems that cut total waste by 30% compared to earlier generations. Our approach meant new vent scrubbers, adaptive distillation columns, and subsidies for responsible solvent recovery. Sustainable chemistry has real, measurable impacts, but only when embedded in action rather than advertising copy.

    The Challenge of Purity: How We Control It

    To those outside the synthesis world, purity figures might sound easy to deliver. Drilling down, there’s unavoidable complexity. Any variation in feedstock—sometimes from a new lot of ethanol, sometimes a benzene precursor—can shift the impurity profile. It takes hands-on monitoring, not just automated readings, to catch subtle out-of-spec batches. We match every GC run against historical spectra, charting even low Signal-to-Noise traces. Color tests alone only tell part of the story in aromatic chemistry. Even after modernizing, veteran chemists still do a final sniff check of every run, ensuring it matches the clean, lightly floral-sweet odor profile described in literature.

    What has made the biggest difference for our long-term buyers boils down to communication. Counterparts often call before scaling up, worried about peculiarities a spec sheet will never capture—they want supplier recommendations before risking full-batch disaster. We regularly help translate the jargon of NMR/IR/MS to practical advice: how shelf life compares between bottle and bulk, how previous customers solved issues with water sensitivity, how batch viscosity shifts with light exposure. End users count on us not just for the drum in front of them, but for coaching that reflects years of firsthand troubleshooting—because we’ve fixed these problems at lab scale, pilot scale, and commercial scale.

    Logistics: How a Manufacturer Bridges the Gap

    Shipping hazardous materials requires more than ticking off transport codes. We spend as much time on the packaging and movement as on the original production. If a lab specifies glass bottles, that’s a sign they’re chasing maximum purity or working at low scale. For truckload buyers, steel drums with vapor-tight seals remain standard. Warehouse storage isn’t a checklist—temperature, sunlight, and stacking height all affect ultimate performance. Overpacked or under-protected shipments risk not just leaks, but instability and costly waste.

    Repeatedly, we have seen researchers blame product variation for failed reactions, only to find the shipping chain—boxes left out in a hot trailer for hours—altered the original material. As a direct manufacturer, we see logistics and storage as direct extensions of our quality guarantee. Every product has a data trail back to the batch, and we train our shipping partners in why details matter. More than once, we’ve paused orders and flagged a drum for re-blending after a warehouse audit indicated metal trace pickup. These interventions bridge the gap between plant and laboratory, so by the time a package arrives, it still matches what left our reactor.

    Supporting Innovation on the Ground

    The strongest partnerships don’t begin and end with a shipment. Large buyers and academic labs have looped us in as part of their process development feedback chain—sometimes as early as the grant-writing stage. Often, an innovation fails on scale-up not from a chemistry problem, but because the commercial grade material behaves differently than catalog references suggested. By bringing our own process notebooks and technical staff to the discussion, we close that gap and tailor recommendations to real conditions encountered in the field.

    For instance, electronics developers needed higher conductivity films that relied on completely water-free aromatics. By catching subtle batch-to-batch differences and adjusting drying protocols, we supported their exacting needs—spin-coating applications, thin-film procedures, and even exceptional shelf life under laboratory ventilation. On the medical chemistry front, universities have approached us for milligram-to-multigram scale, requiring custom packing to minimize exposure and maximize recovery in challenging workflows. Coordinating these efforts is only possible as a manufacturer; a third-party trader simply lacks the technical context or authority to adjust process parameters or rerun a distillation at a crucial moment.

    Common Use-Cases and Direct Lessons Learned

    In aroma compounds development, sourcing the exact isomer matters. We’ve seen costly reruns traced to mismatched catalog numbers, particularly for teams working off outdated references. Pharmaceutical projects, especially those targeting benzene-based prodrugs, cite 1,3-diethoxybenzene as an intermediate in both early synthesis and late-stage functionalization. In polymer labs, our clients manipulate film flexibility and stability through controlled inclusion of this aromatic ether, seeking both the reactivity and emission profile not found in similar benzenes.

    One recurring lesson: purity in the initial kilo—no matter the price tag—saves weeks of costly rework at scale. For those new to process chemistry, bench-top successes mean little if the first 100 kg deliver unexpected haze or off-odors when mixed in formulation tanks. Year after year, clients who take time to consult us and dig into logistics enjoy higher success rates and fewer procurement disasters.

    Solutions to Ongoing User Challenges

    Contaminant control remains the single biggest challenge for innovators using 1,3-diethoxybenzene. Simple filtration won’t address the trace metallics, alkali carryover, or high-boiler residues. Labs often overlook the impact of vessel cleanliness, atmospheric exposure, and improper storage. We tackle this by offering training for our largest research clients, outlining practical ways to minimize contamination during storage and use. Our engineers also advise on inert transfer techniques—especially critical during winter months, where condensation can lead to sudden water pickup.

    Process troubleshooting and batch-scale technical support draw on real plant experience, not just reference books. If a reaction fails to launch or an unexpected byproduct appears, our staff digs in with users, running parallel tests in our own development facility. We have, in some cases, reformulated an entire batch process to adapt to specific catalytic or process needs found in customer applications. This saves R&D programs both time and money, while increasing the yield and clarity of finished products.

    As consumer expectations for transparency increase, our response isn’t to drown buyers in paperwork but to open up dialogue. Whether addressing a polymer scientist’s need for a unique viscosity range, or helping a synthetic chemist understand the quirks of aromatic substitution reactivity, our aim is always to translate production know-how into usable insights for every scale and sector.

    The Path Forward: Direct Supply, Direct Support

    Market trends show growing demand for uniquely pure, application-specific aromatic compounds like 1,3-diethoxybenzene. The shift toward advanced electronics, precision pharmaceuticals, and specialty materials places increasing pressure on supply integrity. As direct producers, we see challenges ahead: unpredictable raw material shifts, evolving regulatory mandates, and supply chain volatility. Our answer is to double down on technical adaptation and real transparency.

    Strong roots in synthesis and packaging matter now more than ever. A decade ago, clients might have accepted whatever arrived from a generic catalog. Today’s buyers want not just proof of quality, but the ability to communicate with those who actually engineered, distilled, and tested the batch at hand. We make every effort to document, adapt, and troubleshoot collaboratively, viewing each order as an extension of our reputation.

    Technical excellence means understanding the limits of automation and the necessity of human oversight. No batch runs without human review, and no shipment leaves without thorough documentation—the kind based on daily plant practice, not boilerplate assurance statements. As use-cases expand and the next generation of innovators set new benchmarks for performance, the value of a strong, experienced supplier relationship grows. Our commitment remains: keep learning, keep improving, and keep the lines open, from the reactor floor to the destination flask.

    Final Thoughts

    From a creator’s standpoint, 1,3-diethoxybenzene is more than a line item or CAS number. It sits as a living record of chemistry and communication, proof of what experienced production and open partnership can achieve. As direct manufacturers, we have witnessed how even small changes—in process, handling, or feedback—transform user results across chemistry, materials science, and applied technology. For every kilo we ship, there’s a story of collaboration and challenge behind it. That hands-on knowledge gives our customers more than a specification—it gives real, usable certainty.