Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt

    • Product Name 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt
    • Alias BENZYL ETHYL DIAZO SALT
    • Einecs 629-418-2
    • 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

    650315

    Product_Name 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt
    Molecular_Formula C17H22Cl2N3OZn
    Molecular_Weight 417.6 g/mol
    Appearance Off-white to pale yellow powder
    Solubility Soluble in water and polar organic solvents
    CAS_Number N/A
    Purity Typically ≥ 98%
    Storage_Conditions Store at 2-8°C, protected from light
    Stability Stable under recommended storage conditions; sensitive to light and heat
    Usage Intermediate in organic synthesis and diazo coupling reactions
    Hazard_Statements May cause skin and eye irritation
    Synonyms Benzenediazonium, 4-[benzyl(ethyl)amino]-3-ethoxy-, zinc chloride double salt

    As an accredited 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, 10 grams, with tamper-evident seal and desiccant; labeled with chemical name, hazard pictograms, and batch details.
    Shipping The chemical **4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt** should be shipped in tightly sealed, chemically compatible containers, protected from light, moisture, and heat. It must be clearly labeled, handled as a potential hazardous material, and transported in accordance with all relevant local, national, and international shipping regulations for diazonium compounds.
    Storage 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt should be stored in a cool, dry, and well-ventilated area, away from direct sunlight and sources of heat. Keep the container tightly closed, protected from moisture and incompatible substances (e.g., strong bases or reducing agents). Store under inert atmosphere if possible, and avoid friction, shock, and contamination due to the compound's potential instability.
    Application of 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt

    Applications of 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt in Industrial Manufacturing

    As a direct manufacturer of 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt, we support diverse sectors with this advanced diazonium compound. Production batches meet stringent technical requirements for downstream integration. The following sections detail core applications in the chemical, specialty colorant, pharmaceutical intermediate, and advanced material domains, each with specific compliance, ratio, process, and final product considerations.

    1. Azo Pigment Production for Specialty Ink Manufacturing

    This material serves as a key diazo component in the synthesis of complex azo pigments used in high-performance printing inks. Our customers prioritize batch-to-batch color consistency, purity, and efficient coupling reactions during ink pigment formulation, especially for digital, flexographic, and security printing applications. Analytical controls target trace metallic impurities and confirm high purity diazo generation.

    Industry compliance standards

    • ISO 2834 for printing ink manufacturing
    • EN 71-3 for toy safety pigments (where applicable)
    • REACH Annex XVII restrictions for colorant components in the EU
    • ASTM D5067-13 for industrial printing ink pigment assessment

    Typical usage ratio

    • Diazonium component is used at 0.5–5% by weight of pigment batch, adjusted according to molar ratio with the chosen coupling component for targeted shade intensity, transparency, and dispersibility requirements.

    Downstream process integration

    • Introduced in aqueous or alcoholic solution during the diazotization stage, directly followed by coupling with aromatic amines or phenolic substrates. Controls focus on temperature regulation and pH adjustment to minimize side reactions and optimize chromophore formation in pigment particles.

    Final product types

    • Solvent-based and water-based digital printing inks
    • Industrial flexographic and gravure printing inks
    • Security inks for banknote and identity document printing
    • Special effect colorants for specialty paper coatings

    2. Pharmaceutical Intermediates for Active Compound Synthesis

    The compound functions as a controlled building block in advanced synthesis schemes for certain pharmaceutical actives, especially those containing azo linkages or aryl-amine motifs. Pharmaceutical producers demand high material consistency, documentation tracing, and full GMP batch records to ensure reliability during scale-up of the synthesis route.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice Guide for Active Pharmaceutical Ingredients
    • 21 CFR Part 211 Current Good Manufacturing Practice for Finished Pharmaceuticals
    • USP-NF monographs for starting materials where applicable
    • European Pharmacopoeia (Ph. Eur.) general purity and impurity thresholds

    Typical usage ratio

    • Used typically at 1–2 molar equivalents relative to coupling agent in multi-step synthesis, with stoichiometry adjusted for targeted yield and minimal by-product formation, based on route selection and impurity profile tolerance.

    Downstream process integration

    • Dosed at diazotization or coupling step under strictly controlled temperature (0–10°C) and pH. Process includes in-process controls for residual diazonium and by-product monitoring. Material introduction is sequenced to accommodate downstream purification requirements.

    Final product types

    • Azo drug precursors (antibacterial, antineoplastic intermediates)
    • Aniline derivative intermediates for final API production
    • Bulk intermediates for anti-tuberculosis agents
    • Reference substances for chemical standardization

    3. Synthesis of Functional Dyes for Microelectronic Photoresist Production

    Leading microelectronics and packaging suppliers use this diazonium salt as a photoactive generator in the formulation of photoresist dyes. The compound enables fine-line patterning for semiconductor wafer and PCB fabrication. Buyers require tightly specified particle size distribution, trace ion content, and reliable solubility as part of their own internal QC and ISO certification audits.

    Industry compliance standards

    • JEITA ET-7304 standard for photoresist material purity
    • RoHS (2011/65/EU) limits on hazardous substances in electronics
    • IEC 62474 declaration for substances in electronic equipment
    • ISO 14644 cleanroom integration for resist chemical introduction

    Typical usage ratio

    • Employed at 0.1–1% by weight of the total photoresist formulation. Ratio is specified by downstream resist system formulation and light sensitivity target, with adjustment based on exposure wavelength and matrix compatibility.

    Downstream process integration

    • Dispersed during the formation of the pre-polymer resin blend, followed by controlled mixing under anhydrous conditions to avoid premature decomposition. In-line particle sizing and filtration precede final casting onto wafer or substrate.

    Final product types

    • Positive and negative photoresist films for semiconductor device etching
    • Photoimageable solder mask inks for advanced PCB manufacture
    • MEMS fabrication resists for microdevice patterning
    • Microelectronic dye concentrates for wafer-level packaging

    4. Intermediate for High-Solids Polymeric Colorant Formulation

    Manufacturers of high-solids polymeric dispersions use this chemical as an intermediate in in-situ colorant synthesis. These dispersions require stable chromophore integration for high-performance applications, especially in industrial coatings and engineered plastics. Formulation teams focus on strict control of moisture, zinc content, and residual alkali profiles to ensure downstream polymer compatibility and storage stability.

    Industry compliance standards

    • ISO 9001:2015 certified manufacturing management for pigment synthesis
    • GHS compliant labelling and handling procedures
    • ASTM D3134 for colorant compatibility testing
    • REACH registration for use in polymer applications in Europe

    Typical usage ratio

    • Loaded at 0.3–2% by weight based on total monomer or resin content. Dosage varies with intended shade depth and stability requirements, with pilot scale tests guiding adjustments for dispersion shear and UV resistance targets.

    Downstream process integration

    • Fed continuously into the colorant synthesis tank at early polymerization or copolymerization stage. Subsequent heating and mixing complete chromophore anchoring, followed by phase separation and solid pigment dispersion as required by application end-use.

    Final product types

    • Industrial coatings and protective paints with tailored color properties
    • Plastic masterbatches for automotive and consumer goods
    • High-durability flooring and construction polymer products
    • Specialty textile pigment dispersion concentrates
    Free Quote

    Competitive 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt 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

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt: Experience, Application, and Distinction

    Our Perspective on Manufacturing Diazonium Compounds

    Years of hands-on production have taught us that not all diazonium salts play by the same rules. Each one brings its own tendency for stability, reactivity, and suitability depending on its use. We've spent extensive hours in our labs troubleshooting synthesis and scaling up 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt – a mouthful for sure, but those who rely on its chemistry know the importance behind each part of this name. As a manufacturer, there's no shortcut on quality or purity—one off-batch can disrupt downstream processes for users, waste resources, and cause far-reaching frustrations.

    Why We Focused on 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt

    After working with classic diazonium salts, patterns in feedback and application challenges appeared. Many users found previous compounds too temperamental in sensitive syntheses or too harsh when paired with specific coupling reactions. This compound, with its unique pattern of functional groups and the stabilizing presence of zinc chloride, offered new possibilities. It’s not just about introducing another color developer or intermediary—it's about providing a solution for synthesis steps where side-reactions or decompositions would have previously pulled the plug on research or process yields.

    The need for careful design drives us every production cycle. Every benzyl, ethyl, and ethoxy group controls electron density and reaction pathway. Zinc chloride salts, compared to other diazonium stabilizers, bring a blend of solubility shift and stabilization that many researchers and manufacturers appreciate during large-scale coupling. We manufacture 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt because it fills practical gaps that matter day-to-day for those building complex molecules.

    The Compound in Action: Usage and Function

    The real value of a reagent shows up in the lab or plant. Our salt finds work in azo coupling to form a broad array of dye and pigment precursors. The aromatic ring structure is fully substituted, which tunes its selectivity. These tweaks in electronics steer coupling partners toward higher efficiency and brighter colors, and limit byproduct formation. Across our own applications and collaboration with clients, this compound has shown smoother integration into color-imparting reactions even where less optimized diazonium salts once gave disappointing or inconsistent shades.

    Beyond dyes, specialty intermediates in pharmaceuticals and fine chemicals have seen improvement through selective arylation with this salt. Lesser hydrolysis and controlled decomposition extend the operational life of the material both in cold-room storage and at the bench. We take pride in producing a salt that doesn’t demand a stop-and-go pace for technicians, but rather supports more continuous flow—whether under batch, semi-batch, or even continuous operations.

    Specification-Driven Manufacturing, but Pragmatic

    Technicians and researchers care about purity not for paperwork, but for reaction predictability. Batches that stray by even half a percent on impurity content bring headaches. From our standpoint, the most common issues come from underestimating the need for drying protocols, the moisture-sensitivity of diazonium chemistry, and the sensitivity to light and metals. We have fine-tuned our process to achieve a reproducible crystalline product with consistent solubility and minimal side-residue. Our drying and storage techniques avoid introducing contaminants that would lead to premature decomposition—and that means fewer lost runs and fewer troubleshooting calls from chemists.

    Particle size can matter for scale-up. Large batches run more smoothly when caking or bridging is avoided. We achieve a loose, free-flowing solid that feeds uniformly into process vessels without the need for additional pre-treatment or extensive sieving. These operational details affect the cost per kilo and satisfaction of everyone down the line, from R&D to commercial plant managers.

    How We Compare to Conventional Options

    The classic diazonium salts—such as benzene diazonium chloride or toluene-derivatives—are often chosen for basic azo-coupling, with widespread availability at lower price points. Looking beyond price, the reactivity and selectivity often don’t match what new synthesis protocols require. We saw this firsthand, with customers coming to us after struggling to control unwanted side reactions or seeing low reproducibility between lots. Changing ring substitution patterns on the amine and using a zinc chloride counterion allowed much higher control over color output and a more robust shelf-life for the end reagent.

    Stability sets our salt apart. Simple sodium and potassium counterions provide less stabilization for the diazonium moiety—batch-to-batch variance in decomposition rates often goes unnoticed until disaster strikes at commercial scale. By anchoring with zinc, our compound keeps the diazonium group intact longer, both in solid storage and under reaction conditions. This translates to more adaptable process windows and less emergency waste treatment, a concern that grows with the scale of operation.

    The Real-World Concerns: Safety, Handling, and Reliability

    Handling diazonium salts always demands respect, not just because of sensitivity but also due to the potential for hazardous decomposition. We've gone through countless site audits and safety drills, always working with the goal to ensure that hazard controls match the real risks involved, not the outdated dogma about all diazonium salts behaving identically. Staff work in dedicated lines with controlled humidity and light exposure; packaging follows protocols honed through experience, aimed at limiting risk during shipping and storage at customer sites. There’s no substitute for active handling precautions—labeling, secondary containment, and clear user education change the outcome on the busiest production days.

    Our salt bridges the gap between demanding laboratory procedures and production-scale requirements. You can tell when a compound has been designed with the manufacturer’s needs in mind—a usable product can take a punch and keep delivering without spontaneous breakdown or unpredictable byproduct bursts. Facility teams report fewer emergency interventions, and waste handlers find more manageable profiles during disposal; we see this as a direct result of the salt’s stability and cleaner decomposition path. Putting safer, more robust chemicals into the hands of users at every level is both a responsibility and a satisfaction that comes from getting things right at the molecular level.

    Relentless Optimization in Production Practice

    Chemical manufacturing doesn’t stand still. Process innovations and troubleshooting keep us sharp, driving improvements in both efficiency and consistency. For 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt, every manufacturing run gets reviewed for deviations, equipment wear, or feedback from user experience. It means more than just meeting a specification. We chase improvements not on a checklist, but with an eye toward how a slight increase in purity or a tweak in drying protocols raises product confidence for everyone relying on us.

    Advice from users—sometimes blunt, sometimes subtle—proves invaluable. Operators have highlighted how temperature control during transport or warehouse storage plays into shelf life and usability. We’ve integrated more robust packaging materials and double-checked our humidity control zones downstream of production, because every failed reaction caused by poor stability brings extra shipping, material waste, and delays. Experience running continuous feedback loops between production and application teams has shaped this compound's edge in the field.

    Environmental, Regulatory, and Transparency Commitments

    Diazonium chemistry attracts regulatory scrutiny for good reason. Environmental controls matter as much to us as end-user satisfaction does. Water streams from our processes move through multi-stage treatment, removing any decomposed diazonium fragments before release. We invest in containment programs and emission tracking—not as a checkbox, but because long-term business depends on responsible citizenship. Our plant reports hazardous material volumes and disposal practices according to the strictest regional standards, and we believe that avoiding shortcuts pays dividends in trust and reputation far beyond regulatory compliance.

    Transparency doesn’t just show up in paperwork or audit trails. Customers want to know about process safety, waste handling, even supply-chain ethics. We welcome direct questions about our sourcing of raw aromatics and our approaches to waste minimization. Some clients come on-site to audit themselves, and we invite this level of transparency because our daily operations back up what we say. Certificates, testing data, and even batch records remain available for partners who require detailed traceability for their own quality and compliance reporting.

    Continuous Learning from Downstream Users

    We manufacture for researchers, process chemists, and commercial producers—each group brings their reality check. Laboratory scientists value minute consistency and across-batch reproducibility. Production specialists focus on throughput, storage lifetime, and ease-of-use. End-users in the textile, pigment, or pharmaceutical industries want assurance on color clarity, coupling selectivity, and regulatory documentation. Listening to all three groups leads us to test beyond internal controls—running real-life application tests, color projections, and decomposition stress-tests, all based on user input.

    Direct laboratory visits tell us how our chemicals behave outside our friendly, controlled environment. Surprises often emerge in these field applications—humidity deviations, unexpected local contaminants, transport-induced degradation. Each round of feedback returns to our process chemistry team, where protocol changes hit the next production run. One correction, like changing the atmosphere during drying, gave a remarkable boost in shelf life for overseas distributors. Another, involving crystal habit control, improved solubility in solvents used by dye-makers in regions with harder or more saline water.

    The Compound’s Strategic Role in Synthesis: What Sets It Apart

    Not every diazonium salt earns a place at the core of complex syntheses. 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt holds its position because of several hard-earned advantages. Its electronics, shaped by a triad of substituents, moderate the reaction pace, allowing for more forgiving process windows. Many users have reported cleaner endpoint detection in their coupling reactions—meaning visual clarity and analytical tracking improve, which cuts down on troubleshooting, purification costs, and waste volume.

    Side reactions pose a constant threat in fine chemical synthesis. Older, cruder diazonium salts tend to produce more azoxy or tar-type byproducts under imperfect temperature or pH control. Our compound shows an impressive resilience against this, attributed to both its molecular structure and the use of the zinc chloride counterion. Robustness in the synthetic setup saves hours per batch and reduces solvent use in post-reaction clean-ups. Any reduction in hazardous waste has a clear effect on the bottom line and operator satisfaction.

    Responding to Evolving Lab and Market Needs

    Market needs shift rapidly. Decades in manufacturing have shown us that the chemistry which worked in legacy systems often doesn’t fit new formulations, green chemistry demands, or automated process equipment. We refine our approach each year, responding to customer suggestions—whether for smaller, more frequent batch sizes or tailored handling instructions for specific national requirements. Modern researchers often ask for clear residue profiles, purity trails with every lot, and full transparency on hazardous content, especially as regulations vary widely between regions. We design every production run to respond, not just to what the market wants today, but to anticipated changes in process and compliance expectations.

    This salt came from repeated rounds of joint development with end-users. That design perspective, focusing both on what the chemistry does in the flask and on how it functions at scale, underpins every lot we ship. Lab scale results don’t always guarantee full-scale performance—our experience adjusting process parameters during real-world ramp-ups shapes what we send out the door. Every kilogram comes backed not by abstract promises, but by a process hardened through practical insight and long-term learning.

    The Takeaway: Depth, Detail, and Directness Matter

    As a manufacturer, attention to every reaction step, every packaging detail, and every operational variable marks the difference between success and disappointed users. Our 4-[Benzyl(Ethyl)Amino]-3-Ethoxybenzenediazonium Zinc Chloride Salt holds a clear record across color chemistry, fine chemical synthesis, and specialty manufacturing because of constant, experience-driven improvement. Anyone can offer technical sheets and purity metrics; we deliver a material whose performance stands tested where it counts—at customer benches and in the heart of busy production floors.

    By building on our own practical lessons, working closely with downstream teams, and refusing to cut corners on environmental or safety fronts, we back every batch with both real technical authority and grounded reliability. Raw production numbers tell only part of the story. Only through attention to detail in both chemistry and customer partnership do lasting, solution-driven products continue to earn their stripes.