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2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole

    • Product Name 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole
    • Alias MDPIM
    • Einecs 680-108-1
    • 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

    532140

    Iupac Name 2-(2-Methoxyphenyl)-4,5-diphenyl-1H-imidazole
    Molecular Formula C22H18N2O
    Molecular Weight 326.39 g/mol
    Appearance Solid (typically crystalline powder)
    Melting Point Estimated 170-175 °C
    Solubility Soluble in organic solvents like DMSO and DMF
    Boiling Point Decomposes before boiling
    Structure Type Imidazole derivative with diphenyl and anisole substituents
    Smiles COC1=CC=CC=C1C2=NC(=C(N2)C3=CC=CC=C3)C4=CC=CC=C4
    Inchi 1S/C22H18N2O/c1-25-18-13-9-8-12-17(18)22-23-20(16-10-4-2-5-11-16)21(24-22)19-14-6-3-7-15-19
    Purity Typically >98% (if obtained from chemical suppliers)
    Storage Conditions Store in a cool, dry place, away from light

    As an accredited 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, sealed cap, white label detailing chemical name (2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole), CAS, and quantity: 5 grams.
    Shipping **Shipping Description for 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole:** This chemical will be shipped in a tightly sealed container, cushioned within appropriate packaging to prevent breakage or leakage. It is transported according to standard regulations for laboratory chemicals, avoiding extreme temperatures, moisture, and direct sunlight. Suitable for ground or air freight, depending on recipient location and urgency.
    Storage Store **2-(2-Methoxyphenyl)-4,5-diphenyl-1H-imidazole** in a tightly sealed container, protected from light and moisture. Keep at room temperature (15–25°C) in a dry, well-ventilated area away from incompatible substances such as strong oxidizers. Avoid exposure to heat and direct sunlight. Clearly label the container and follow standard laboratory chemical storage guidelines to ensure safety and chemical stability.
    Application of 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole

    Applications of 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole in Industrial Manufacturing

    As a direct producer of 2-(2-methoxyphenyl)-4,5-diphenyl-1H-imidazole, we support industrial partners in sectors where advanced organic intermediates drive critical synthesis routes. Our product plays a key role in multiple technical applications, delivering reliable performance under stringent manufacturing conditions.

    1. Organic Photoconductors in Imaging and Printing Industries

    Downstream manufacturers use this compound as a hole-transport agent in the formulation of organic photoconductor (OPC) layers for electrophotographic drums and imaging units. The compound ensures high charge mobility and extended drum life, complying with imaging system reliability targets. Its integration requires precise dosing during the dispersal-in-polymer step, directly impacting charge retention and print fidelity in laser printers and digital copiers. The compound’s consistent batch quality supports scale-up for high-throughput production of OPC drums.

    Industry compliance standards

    • RoHS Directive 2011/65/EU (for electrical/electronic equipment)
    • REACH Regulation (EC) No 1907/2006
    • UL 94 HB/V-0 Flame Retardancy (for imaging devices)
    • ISO 14001 Environmental Management System Certification

    Typical usage ratio

    • 2–8 wt% based on total solid content of the photoconductor layer; adjusted for drum geometry and required surface sensitivity

    Downstream process integration

    • Added during solution blending phase with binder resin and pigments, followed by solvent evaporation and drum coating under controlled atmosphere

    Final product types

    • Electrophotographic OPC drums
    • Laser printer photoreceptors
    • Copier imaging units

    2. Intermediate for Pharmaceutical API Synthesis

    API manufacturers deploy this imidazole derivative as a core intermediate during multi-step synthesis pathways for specific imidazole-based drug candidates. Its structurally defined methoxy and diphenyl moieties enable regioselective functionalization, especially in anti-fungal and anti-inflammatory target molecules. Process control ensures low residual levels of the intermediate, complying with international pharmacopeial standards for APIs and intermediates.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice (GMP) for Active Pharmaceutical Ingredients
    • USP General Chapter <1058> Analytical Instrument Qualification
    • EU GMP EudraLex Vol. 4, Part II
    • FDA 21 CFR 211 for finished pharmaceuticals

    Typical usage ratio

    • 0.2–1.5 molar equivalents as dictated by process stoichiometry; optimized according to yield and impurity profile of the API target

    Downstream process integration

    • Charged during controlled reflux in key condensation or cyclization steps; followed by purification and subsequent conversion into final API structure

    Final product types

    • Imidazole-based pharmaceutical intermediates
    • Active pharmaceutical ingredients for antifungal and anti-inflammatory drugs

    3. Specialty Polymer Additive in High-Performance Plastics

    Polymer compounders apply the material as a functional additive to enhance thermal stability and electrical insulation in engineering plastics. The imidazole structure elevates glass transition temperature and processability of polymers such as polyimides and aromatic polyesters. The compound disperses uniformly during melt compounding, supporting consistent product properties across different production batches and end-use environments.

    Industry compliance standards

    • UL 746B Standard for Polymeric Materials
    • ISO 11357-1 Differential Scanning Calorimetry (for polymers)
    • REACH Annex XVII (regulation of substances in plastics)
    • TSCA Inventory Listing for raw materials (US)

    Typical usage ratio

    • 0.5–3 phr (parts per hundred resin) based on polymer weight; adjusted according to flame retardancy and dielectric property requirements

    Downstream process integration

    • Added to polymer melt during twin-screw extrusion; followed by pelletizing and downstream molding into final components

    Final product types

    • Polyimide films and sheets
    • High-temperature resistant connectors
    • Electrically insulated components for automotive and electronics

    4. Synthesis of High-Performance Organic Light Emitting Diode (OLED) Materials

    OLED material producers incorporate this compound as a key hole-transport precursor in the design of advanced emitting layer materials. Its electronic properties enable improved charge injection and transport, supporting the development of low-voltage, high-brightness OLED devices. Precise control during precursor handling and coupling reactions ensures lot-to-lot reproducibility, critical for display uniformity and device longevity.

    Industry compliance standards

    • IEC 62341-5-1 OLED Display Safety
    • RoHS Directive 2011/65/EU for restrictng hazardous substances
    • ISO 9001:2015 Quality Management in Electronic Materials
    • GRS (Global Recycle Standard) for OLED material chain-of-custody

    Typical usage ratio

    • 0.1–0.7 mmol in the precursor mixture, tuned for target layer thickness and optoelectronic performance

    Downstream process integration

    • Introduced during synthesis of small-molecule or polymeric hole-transport materials, followed by purification and deposition via spin-coating or vacuum evaporation in OLED stack fabrication

    Final product types

    • OLED display panels
    • Lighting modules
    • Wearable device screens
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    Certification & Compliance
    More Introduction

    Introducing 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole: A Reliable Choice for Modern Synthesis

    Standing on Solid Chemistry: Our Experience with 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole

    At our facility, we’ve spent years working with heterocyclic compounds, and among the range, 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole stands out. Chemists in our team have watched demand rise as research and industry lean into more complex molecular architectures. We know every batch by its character—sharp, crystalline, and reliable. Specificity starts from the raw materials: we source starting phenyl and methoxy compounds with rigorous trace impurity controls, aiming to minimize variables that cause downstream headaches.

    Experience teaches what matters most isn’t how many laboratory techniques a material might suit, but how reproducible every synthesis run turns out under hundreds of kilos. This imidazole earns its place through consistent structure confirmation in our quality control—proton and carbon NMR, verified GC-MS, and HPLC purity profiles. Academic groups often look for a reagent-grade powder, while scale-up chemists demand more: uniform flow, low dust, and minimum batch-to-batch drift.

    Practical Aspects: What Sets this Compound Apart

    Our production processes benefit from decades at reacting, crystallizing, and isolating heterocycles, so we don’t just offer this compound by rote. Not every batch makes it to the packaging line. Purity checks go deep. Each lot must reach above 98% by area with a moisture content below 0.5%, tested by Karl Fischer titration. Chemists on our floors keep a close eye on melting point ranges, because subtle shifts signal process drift. You find the expected melting profile sharp, between 185°C and 190°C, signaling tight control over structural isomers.

    A sheer visual difference tells a story: our 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole crystallizes into bright, off-white plates, avoiding the darker tint seen with lower grade sources. This clarity matters in analytical applications. Customers in photophysical research often need minimum background autofluorescence—a poor sample clouds spectrometric readings. Our chemists stress-test each lot with UV-Vis and fluorescence to flag unwanted signal. Clean background, sharp absorption, and reliable response each time.

    Where Uses Meet Precision

    Many research groups explore this molecule for optoelectronic, photonic, and advanced organic synthesis work. The compound finds wide interest in construction of material intermediates, especially in studies of charge transport and photoluminescence. Some labs bring it in for its role in cross-coupling chemistry, using the methoxy functionality to tune reactivity or anchor molecular tags.
    We’ve watched requests grow from pure chemical synthesis to emerging applications. Scientists investigating organic light-emitting diodes (OLEDs) and nonlinear optical materials want a supplier keen on more than just minimum specs—they ask about photostability, reproducibility, and aging effects. Here, every lot stays traceable to original synthesis logs, and our archives retain analytics for years.

    One benefit we often highlight to collaborative partners: by optimizing our synthetic route, there’s no leftover heavy-metal contamination. That avoids dead ends for researchers exploring bioactive testing or catalysis, where even low metal traces can skew results. The final product delivers a crisp NMR, with expected signals for each aromatic and heteroatom position—verified directly on-site. Chemists who care about side chain regiochemistry find reassurance in this confirmable identity.

    Reliable Specifications: No Room for Surprise

    Each bottle carries a clear batch code linking all the way back to raw material inspection. Packing lines keep humidity under tight control, never exceeding 40%. Every fill takes place under filtered air to avoid dust pick-up. Some researchers choose to further dry and grind the compound for custom format needs; we offer guidance from our technical team, based on direct lab experience with re-crystallization and solvent removal conditions.

    Through the years, our feedback loop with customers has pushed us to refine every detail. Chemists contact us for advice on dissolving this mid-polar compound; we provide direct solubility data from water, acetone, DMF, DCM, and toluene. No guesswork, just straightforward results from hands-on testing. We see frequent interest in particle size—labs in microfabrication or thin-film deposition often request <150 micron sieve cuts. By maintaining separate grinding and sifting stages, we deliver this specialized material with no cross-contamination risk.

    Looking at Other Brands: Not All Imidazoles Run the Same

    Some market sources trade on price alone, moving lots without full documentation. We see the fallout: batches from elsewhere that fail on color purity, trail with non-identified peaks, or give inconsistent results when analyzed under UV. Our team fields calls from frustrated chemists every year, seeking advice or help after a purchase proved unreliable. Once, a client ran into trouble when a competitor’s material left residue during a key palladium-catalyzed coupling, traced later to halide impurities ignored during scale-up.

    Long-standing partners know our chemical isn’t just a number and a catalog page; it shows in the difference between a reaction that stalls and one that yields. Our experience with NMR, IR, HPLC, and trace metals testing pays dividends for customers who don’t want to risk core experiments on guesswork. Recurrent orders typically come from those who’ve tried other suppliers, run comparative analytics, and found one route delivers fewer surprises in the lab.

    Supporting Consistency at Every Step

    We don’t just batch and ship; we track stability beyond the standard shelf life. Accelerated aging tests pull data for real-world storage scenarios, measuring subtle shifts over time under variable humidity and temperature. This record-keeping lets us recommend packaging options based on shipping route, climate, and anticipated storage length. Shipping to tropical climates? We add moisture barriers and desiccant packs. Partners in continental climates get different insulation. All batch records, including synthesis route, solvents, and purification details, stay open for audit by request.

    Many users worry about handling: is the product a skin or eye irritant? We share our long-term in-house handling notes, based on controlled exposure cases. Our safety documentation matches lived experience, not just literature values. Regular training for pack and lab staff keeps awareness high. PPE use isn’t a legal checkbox but a part of daily work; our training program has evolved as new data emerges from real-life incidents.

    Why This Molecule Matters

    2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole earns attention in part because its three-ring motif lets chemists tap into unique reactivity—a combination of steric bulk, methoxy tuning, and an imidazole core. We’ve supported projects from university spinouts screening new antibacterial scaffolds to industrial R&D teams crafting new light-emitting devices. Each sets a different benchmark: purity at medicinal scale, or batch-to-batch performance for photonics. Our technical team receives feedback and troubleshoots issues, so knowledge circulates between our plant and users’ benches worldwide.

    Unexpected applications arise with each new research wave. We remain flexible, keeping stock tailored for both gram-scale pilot projects and multi-kilo industrial needs. Tight integration between production and support teams helps us anticipate shifts—if regulatory requirements constrain an additive, we rework the process ahead of time. If a new use case demands tighter purity or different physical form, in-house technical developers talk with our chefs in synthesis, so feedback translates into real improvements.

    Pushing Forward: Optimizing Every Run

    Continuous process improvement sits at the core of our plant. We re-calibrate reactors to reduce impurities early in production rather than at the end. Chromatographic analyses don’t stop at purity—they check for co-elutants, solvent residues, and polymeric byproducts. Our focus isn’t making the same product repeatedly, it’s making each batch better than the last. Technicians on the plant floor share insight with new team members, reducing errors and catching issues early.

    Energy use and waste minimization draw attention as customers ask for greener chemistry options. We track solvent recycling rates, cut water use with advanced filtration, and benchmark energy loads versus international best practice. Chemists designing scale-up syntheses benefit from our willingness to share lifecycle data. Every bottle from our line represents not just chemical content, but an accumulation of lessons learned, failures overcome, and an ongoing drive to reduce environmental impact.

    Supporting Innovation: Working Alongside the Chemists

    In technical support calls, we often troubleshoot beyond our own product. Chemists ring up for suggestions on compatible solvents, post-reaction purifications, or stability under light or air exposure. We’ve built up an in-house database of field reports, providing insight on solution behavior, interaction with common coupling reagents, and compatibility in various reaction types—often years before such data appears in formal literature.

    Feedback from customers drives change in both production and logistics. If a client finds a unique application, we relay those results back to the team to explore improvements in processing or packaging. Keeping lines of communication open means continual evolution in product quality. Instead of one-size-fits-all approaches, our experience lets us answer real-world questions with evidence.

    Why We Focus on This Category

    The value of 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole comes down to more than just chemical structure. In hands-on research projects where time, custom reactivity, and reliability matter, researchers need suppliers who appreciate the nuances of scale and purity. Each year brings fresh challenges: more complex regulatory hurdles, rapidly shifting market needs, and tighter controls on trace contaminants.

    Providing this compound directly, not through resellers, gives us a front-row seat to the realities of high-stakes experimental work. We hear about problems—clogged reactors, ambiguous analytic results, ruined coupling reactions. That feedback drives investment in tighter quality systems, fresher packaging methods, and faster tech support. We see our relationship with each lab as a partnership, not just another sale. Reliability, transparency, and deep technical expertise remain our touchstones.

    Preparing for What's Next

    The chemical manufacturing landscape never stands still. As new research emerges, synthesizing analogs of 2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole continues in our labs, aiming for even cleaner production, less waste, or new function. Customer demand shapes this innovation. Small labs may need a few grams for screening while commercial partners request metric tons for material fabrication—each scenario influences our planning.

    If you need thorough documentation, reproducible results, and direct support from chemists who handle and produce every batch, our door stays open. Every experience feeds the next improvement. There’s no secret formula—just a network of real scientists, solving practical problems with every synthesis run.

    Summary: Real Chemistry, Real Results

    2-(2-Methoxyphenyl)-4,5-Diphenyl-1H-Imidazole earned its reputation in our lines over years of hard-earned experience. High purity, well-documented origins, and a track record of success in organic synthesis and materials innovation set this compound apart. Rigorous process control, responsive technical support, and willingness to adapt built the trust customers put in each bottle we ship out. Researchers worldwide count on real performance, grounded in knowledge that only comes from manufacturing for scientists, by scientists.