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2-(2-Pyridyl)Benzimidazole

    • Product Name 2-(2-Pyridyl)Benzimidazole
    • Alias PBZI
    • Einecs 215-787-4
    • 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

    179504

    Chemical Name 2-(2-Pyridyl)Benzimidazole
    Molecular Formula C12H9N3
    Molecular Weight 195.22 g/mol
    Cas Number 1806-34-4
    Appearance White to off-white solid
    Melting Point 241-244 °C
    Solubility Slightly soluble in water; soluble in organic solvents
    Smiles c1ccc2nc([nH]2)c1-c3ccccn3
    Purity Typically ≥98%
    Storage Conditions Store at room temperature, away from light
    Synonyms 2-(Pyridin-2-yl)-1H-benzimidazole
    Ec Number 217-294-7

    As an accredited 2-(2-Pyridyl)Benzimidazole factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 25g bottle of 2-(2-Pyridyl)Benzimidazole is supplied in a clear, tightly sealed amber glass container with secure labeling.
    Shipping 2-(2-Pyridyl)Benzimidazole should be shipped in tightly sealed containers, protected from moisture, light, and extreme temperatures. It must comply with relevant chemical transport regulations and be clearly labeled. During transit, secondary containment and cushioning are recommended to prevent leaks or damage. Ensure documentation of chemical identity and hazard information accompanies the shipment.
    Storage 2-(2-Pyridyl)Benzimidazole should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from direct sunlight and moisture. Keep it separated from incompatible substances such as strong oxidizers and acids. Use in accordance with good laboratory practices, and store at room temperature unless otherwise specified by the manufacturer’s guidelines.
    Application of 2-(2-Pyridyl)Benzimidazole

    Applications of 2-(2-Pyridyl)Benzimidazole in Industrial Manufacturing

    2-(2-Pyridyl)Benzimidazole provides effective chelation, catalytic, and functional moieties for complex synthesis, functional polymer modification, advanced materials production, electronics intermediates, and select pharmaceutical projects. As a direct manufacturer, we supply this intermediate for integration at precise points in downstream workflows requiring proven reliability and documentation for end-use in regulated environments.

    1. Coordination Ligand for Homogeneous Catalysis

    Industrial chemical plants and contract manufacturers employ 2-(2-Pyridyl)Benzimidazole as a mono- or bidentate ligand for forming transition metal complexes. These complexes enable C–C and C–N coupling (Suzuki, Heck, Buchwald–Hartwig) in fine chemical and agrochemical production. Chemists use this ligand in catalyst systems to achieve selectivity and control. Reliable documentation and consistent purity are required for process validation and continuous operation in large synthesis reactors.

    Industry compliance standards

    • ISO 9001:2015 Quality Management
    • REACH Registered for chemical intermediates
    • 21 CFR 211 (GMP) for catalyst intermediates in pharma synthesis
    • Responsible Care and GHS/CLP safety standards

    Typical usage ratio

    • 0.5–5 mol% relative to metal complex, adjusted by substrate load and process throughput

    Downstream process integration

    • Pre-complexation with Pd, Ni, or Cu salts in stirred reactor or continuous flow setup
    • Introduction at batch startup or in-line stream with base and solvent
    • Solution phase purification prior to catalyst deployment

    Final product types

    • Aromatic pharmaceuticals (API intermediates, e.g., arylamines, heterocycles)
    • Advanced agrochemical actives (pyridine and benzimidazole derivatives)
    • Fine chemical intermediates for subsequent functionalization

    2. Functional Additive in Optoelectronic Materials

    Manufacturers of OLEDs and organic semiconductors use this compound as an electron-transport or hole-blocking modifier in device stack engineering. Its molecular architecture provides stability and selectivity for charge transfer layers in low-voltage and flexible electronics. Precise specification and batch record traceability are mandatory during scaling up and transferring formulations into production lines for lighting and display modules.

    Industry compliance standards

    • RoHS Directive (EU) 2011/65/EU for electronic materials
    • UL 94 (plastics flammability standards)
    • IEC 62471 photobiological safety regulations
    • Factory audits under ISO 14001 for environmental controls

    Typical usage ratio

    • 0.1–2 wt% in emitting or transport layers; varies by layer thickness and target device architecture

    Downstream process integration

    • Solution blending with polymer or small-molecule host materials in glovebox or dry room
    • Spin-coating or vacuum deposition onto patterned substrates
    • Layer inspection and quality control before encapsulation

    Final product types

    • Organic light-emitting diode (OLED) display panels
    • Wearable flexible screens
    • Low-energy lighting modules for signage and automotive interiors

    3. Chelating Agent in Metal Surface Treatment

    Surface finishing factories apply 2-(2-Pyridyl)Benzimidazole as a targeted chelating agent for passivation baths and corrosion inhibitor formulations. This function is critical in aerospace and precision machining where controlled complexation with iron, copper, or nickel ions provides uniform protective layers. QC tracking and compliance with effluent management protocols govern deployment at scale.

    Industry compliance standards

    • ASTM B912 Passivation of stainless steels
    • ISO 9227: Corrosion tests in artificial atmospheres
    • REACH Annex XVII for restricted substances in surface treatment
    • NADCAP AC7108 for chemical processing in aerospace

    Typical usage ratio

    • 0.1–1.5 g/L in aqueous passivation baths; dosage calibrated to bath volume and residual metal contaminant

    Downstream process integration

    • Dosed into continuous or batch passivation tanks after acid cleaning
    • Process analytical control (PAC) for concentration and pH
    • Filtration and monitoring for spent solution recycling

    Final product types

    • Precision engine parts and aerospace fasteners
    • Medical implant components
    • Corrosion-protected frames and panels for transport equipment

    4. Intermediate for API and Veterinary Drug Synthesis

    Pharmaceutical manufacturers and veterinary drug suppliers utilize 2-(2-Pyridyl)Benzimidazole as a building block in the synthesis of certain anthelmintic and antiparasitic APIs. Its molecular structure enables construction of bioactive heterocyclic frameworks through multi-step synthesis operations. Documentation and traceability under strict GMP conditions are essential during pilot scale-up to full commercial production.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • Ph. Eur. and USP monographs for API intermediates (where applicable)
    • 21 CFR Part 210/211 for production records
    • Veterinary Drug Good Manufacturing Practices (China, EU, US FDA)

    Typical usage ratio

    • 0.8–1.2 mol equivalent per target intermediate; stages and loading depend on API target and patent-protected route

    Downstream process integration

    • Added to multi-step glass-lined or stainless reactors for nucleophilic substitution, cyclization, or coupling reactions
    • Product isolation followed by in-process control testing (HPLC, NMR, MS)
    • Intermediary intermediate purification or conversion to next synthesis step

    Final product types

    • Benzimidazole-based veterinary anthelmintics (e.g., albendazole analogues, custom APIs)
    • Bioactive drug intermediates for research and pilot batches
    • Generic and branded finished APIs packaged for formulation
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    Certification & Compliance
    More Introduction

    2-(2-Pyridyl)Benzimidazole: A Closer Look from the Chemical Manufacturer’s Bench

    What 2-(2-Pyridyl)Benzimidazole Offers to Industry and Research

    Stepping into production of 2-(2-Pyridyl)Benzimidazole means constant engagement with demand from diverse corners of the chemical sector. From experience on the manufacturing floor, this compound’s value doesn’t come from theoretical potential—it roots in how well it stands up to real laboratory needs and industrial application. Customers arrive looking for something that answers tricky requirements: purity for demanding synthesis, precise control of particle size, and dependability batch after batch. In our facility, every batch tells a story of why this molecule draws steady attention from chemists and formulators.

    Product Overview and Key Properties

    2-(2-Pyridyl)Benzimidazole, with a molecular formula of C12H9N3, features fused aromatic rings and a pyridyl substituent. This structure enables coordination with metal ions, resilience under multiple reaction conditions, and suitability across both laboratory-scale research and industrial throughput. During production, we focus on controlling impurities and residual solvents, monitoring crystalline habit, and verifying melting point for every lot. Careful process control means the product reaches researchers in forms that suit both analytical and preparative work. Color and form always draw questions—ours appears as off-white to pale yellow powder under careful storage, with stable solubility in polar organics. This profile means scientists spend less time on reprocessing or post-purification and more time running the actual experiment or formulating end-use goods.

    Applications Where We See Real-World Impact

    Conversations with customers highlight how different industries leverage 2-(2-Pyridyl)Benzimidazole. In our experience, coordination chemistry labs run through kilograms, using it to create metal-organic complexes for electroluminescent devices and catalytic reactions. Material scientists incorporate related scaffolds into supramolecular assemblies or luminescent probes. Pharmaceutical research turns to its scaffold, seeking structures that mimic or block biological sites in drug discovery programs. In practice, these uses all demand reproducible performance—every slight change in process conditions or reagent quality can send project timelines sideways. By sticking close to the production process and maintaining traceability on raw materials, we help end users avoid surprises in their analytical or preparative runs.

    Standing Apart from Similar Building Blocks

    Actual lab chemists know the field offers related benzimidazoles and pyridyl-functionalized aromatics that target overlapping niches. The difference comes down to the consistent coupling of the pyridyl and benzimidazole groups in the same molecule. This particular structure shows greater versatility in chelating transition metals, giving it advantages in homogeneous catalysis and complexation chemistry over separate pyridyl or benzimidazole molecules. Bench experience shows that, for certain catalytic or material design projects, alternative ligands necessitate additional synthetic steps, higher costs, or sacrifices in ligand stability. By offering the fused motif directly, 2-(2-Pyridyl)Benzimidazole reduces the synthetic burden and opens new design territory for the researcher. The physical properties we control—consistent melting point, narrow impurity profile, and clean spectral data—ensure users spend less time troubleshooting unexpected reactivity or purification headaches.

    On Purity and Batch Quality: Why Precision Is Essential

    Making 2-(2-Pyridyl)Benzimidazole isn’t about hitting a single number for purity on a certificate of analysis. True value comes from achieving, and then proving, lot-to-lot reproducibility in key parameters like HPLC purity (often exceeding 98%), single-digit moisture levels, and the absence of colored contaminants. End users in analytical or pharmaceutical research comment frequently on how small deviations throw off chromatography results or generate interference peaks in spectroscopy. Running our own in-house LC-MS and NMR on each batch lets us take corrective steps early rather than rushing to troubleshoot at the customer’s lab bench. This level of vigilance grows out of practical necessity. Over the years, small lapses in monitoring have led to reprocessing headaches, which reminds us never to take the basics for granted. Labs depend on knowing that the benzimidazole scaffold in their synthesis or drug screen responds the same way every time. Our in-process checks and open communication with application chemists inform how we’ve tightened specification ranges year by year.

    Practical Handling: What Matters Most in the Field

    Regular feedback from university and industrial staff underlines the everyday challenges of storage, weighing, and formulation. The benzimidazole core holds up to moisture and air reasonably well, but absorbs water given enough exposure. Small changes in handling—like switching to glass containers or adding inert gas flushing on packaging lines—have reduced caking and maintained powder flow. One lesson: real-world usability trumps cosmetic improvements. No one wants powders jamming in formulation hoppers or clumping in storage. By refining drying protocols and sealing lots before shipment, we minimize such challenges. Users also push for easy dissolution in common solvents, especially DMF, DMSO, or acetonitrile, to streamline reaction set-up. Our batches reflect this, consistently dissolving in polar organics without excessive filtration or sonication. These tweaks arise from open-ended user reports rather than textbook recommendations, reinforcing that lab practicality should always guide small manufacturing improvements.

    Solving Scalability: Supporting Both Research and Industry

    Production demand for 2-(2-Pyridyl)Benzimidazole rarely stays static. Academic and pharmaceutical requests tend toward gram or hundred-gram scale, whereas material manufacturers or catalyst developers may require tens to hundreds of kilos. Scaling up without introducing batch variability or driving up impurity loads represents constant technical challenge. We tackled this with modular reactor systems and by qualifying raw recrystallization solvents from vetted suppliers. Time and error taught us bulk batches risk retaining traces of mother liquor or tramp ions, which then propagate downstream problems in analytical methods or process chemistry. Qualifying every input, automating solvent addition, and deploying continuous solid–liquid separation gave us reliability not only in yield but also in purity. Our operational goal mirrored real lab needs: supporting pilot projects, then rapidly scaling to kiloton capacities without sacrificing quality seen at bench scale. This responsiveness has proven key for innovation pipelines, where delays kill project momentum.

    Environmental and Safety Priorities in the Plant

    Nothing matters more in fine chemical production than consistent safety and responsibility for environmental impact. 2-(2-Pyridyl)Benzimidazole production presents unique challenges in terms of safe handling of reaction intermediates and solvent emissions. Based on hands-on experience, tighter controls on batch exotherms and automated venting systems lowered risk profiles for plant staff. Dedicated fume venting, solvent recovery, and in-process thermal monitoring carry over to every lot we produce. Waste management is another area where reality on the ground resists shortcuts. Teams sort and neutralize waste at the point of origin—even when this means longer shifts or delayed shipments—knowing the downstream environmental benefits far outweigh logistical inconvenience. Over years of operation, investing in closed-loop emissions systems has directly limited solvent loss and reduced costs, allowing us to balance efficiency with real regulatory compliance.

    Regulatory Context: Meeting User Requirements for Certification

    Chemists and procurement officers now place growing pressure on documentation and compliance. The regulatory landscape for specialty chemicals has grown far more complex. For 2-(2-Pyridyl)Benzimidazole, users increasingly request confirmation on absence of restricted substances, alignment with REACH or other frameworks, and detailed impurity profiles. Our in-house compliance team pushes for routine updates, drawing on real audit experiences rather than just reading new guidance. Certification isn’t a paperwork exercise; customers share stories about projects delayed by unclear regulatory status or inconsistent MSDS backup. We’ve learned that clarity and willingness to walk users through documentation—either for local regulatory filing or internal review—directly supports their project targets. Custom statements on residual solvents and trace elements are now routine parts of our support, guided by actual regulatory audits and technical exchanges rather than generic templates.

    Supporting Research and Discovery: Technical Partnerships

    Researchers often need more than just a bottle of 2-(2-Pyridyl)Benzimidazole—they need active support in troubleshooting, formulating, and optimizing their use case. Over years, the back-and-forth between our technical department and customers has uncovered unexpected reactivity, rare polymorph issues, and hints for alternative purification. Chemists working with metal complexation or photophysical studies provide feedback on what works at milligram scale, what fails on first scale-up, and what tricks keep synthetic routes viable. We document not just success stories but failures: how minor side-products shuffled NMR assignments, or how a formulation crashed out because of overlooked salt counterions. These exchanges strengthen our internal know-how and filter back to process refinement and customer tipsheets. The value here doesn’t come from marketing theory—it comes from problem-solving beside real researchers, taking time to learn where sticking points arise, and folding those lessons into new lots and batches.

    Insights on Downstream Innovation: How Our Compound Becomes More

    Direct dialogue with end users reveals how 2-(2-Pyridyl)Benzimidazole, though appearing as a simple powder, forms the DNA of more advanced molecules, devices, and catalytic systems. We’ve watched the molecule play a central role in OLED development pipelines, help researchers screen new corrosion-resistant coatings, and serve as a cornerstone in discovery of enzyme inhibitors. We also take part in long-term development projects where functionalization of the parent benzimidazole, either on the pyridine ring or benzimidazole core, feeds new candidate molecules to the frontiers of pharmaceutical screening. One outcome from working as a direct manufacturer: by listening carefully to how clients push the bounds of reactivity, we’ve forecasted shifts in future demand before wider publication. Our process innovations often arise not from internal brainstorming but from the tactical questions researchers bring to us. Addressing those requirements—higher purity, custom particle size, dedicated packaging options—feeds directly back into future production cycles and R&D direction.

    Quality Control: Beyond the Specification Sheet

    Quality doesn’t just mean checking numbers on a final report. Daily routines include running thin layer chromatography, checking for orange or brown impurities with each run, and comparing our product against international standards. Customers call out if melting points stray a degree or two, so we focus on tight temperature profiles and batch logs. Residual solvents mingle subtly in complex matrices, which makes routine GC-MS analysis a must. Inconsistent drying manifests itself as stickiness or clumping, and quality managers learn to watch for the earliest signs. Small feedback loops between plant operators and QC chemists drive improvement — not theoretical best practice, but the nuts and bolts of getting each batch to hit the endpoint consistently. Mistakes, when they occur, seldom repeat once the lesson gets absorbed at the line level.

    Feedback in Product Development: Letting Practice Guide Change

    Product development only succeeds when end users see improvements where it actually matters. We don’t send improvement notices until the change solves an issue reported by a real chemist or formulator: a shortage in solubility, a recurring trace impurity, or a packaging weak spot that led to material loss. As a result, our upgrades in process flow, final drying, and post-synthesis clean-up pipelines emerge from real issues, documented and reported back by users. Adjustments lead to concrete time savings, cost reductions, or fewer questions about reprocessing material. Practical field trials reveal more than extended literature reviews. We welcome data from partner labs, which shows how our latest lots perform on metal complexation or as organocatalytic ligands, keeping development grounded in genuine needs. This pragmatic approach builds trust and avoids abstract promises.

    Evaluating Risks and Charting Solutions in Production

    Long-term success in manufacturing 2-(2-Pyridyl)Benzimidazole means anticipating risks, not just reacting to issues as they arise. Over time, the most pressing problems turn out to be inconsistent feedstock quality, contamination during blending or drying, and unexpected reactivity from trace byproducts. By investing in raw material supplier audits and installing in-line impurity monitors, we can intercept quality deviations before they multiply. Opting for dedicated plant lines for this product, instead of sharing plant space, has removed cross-contamination almost entirely. Supporting staff with training in both safe handling and material recognition reinforces our culture of responsibility. Engaged operators contribute tips and field observations that shape ongoing improvement. In chemical manufacturing, practical solutions often surface from staff closest to the floor rather than distant managers or consultants, reflecting a bottom-up commitment to reliability.

    Looking Ahead: The Role of 2-(2-Pyridyl)Benzimidazole in Future Markets

    We see a rising trend in demand as synthetic chemistry pivots toward complex, multifunctional ligands and building blocks. 2-(2-Pyridyl)Benzimidazole increasingly forms the backbone of next-generation catalysts and optoelectronic materials, a transition noted by both procurement specialists and research leads. Emerging fields, such as molecular electronics and advanced drug discovery, look to this molecule for its unique scaffold and the range of modifications it enables. Responding to these shifts means investing in new synthesis pathways, automating packaging, and registering with expanding sets of regulatory authorities. Technical and scientific staff track published data, but just as importantly, they listen to real feedback through our support platforms and partnership dialogues. Ongoing sharing and openness to adjustment will ensure that each production run remains tuned to the subtle but critical shifts in market and research priorities.

    Choosing a Manufacturing Partner: Value in Experience and Transparency

    Real partnership between manufacturer and customer grows from experience and open dialogue, not just from delivery metrics or datasheet claims. Our success with 2-(2-Pyridyl)Benzimidazole results from years spent adapting process lines to practical hurdles reported by chemists, responding to issues before they become crises, and implementing changes rooted in the realities of day-to-day research. Transparency on raw materials, production changes, and analytical backing sets real producers apart from simple traders or relabelers. We’ve built systems to share both big-picture trends and small operational tweaks, ensuring that realization of customer goals supports broader advances in science and technology. As new projects emerge and specifications grow tighter, our commitment remains: stay close to the science, solve problems with practicality, and keep every batch ready for the friction and complexity of the real world.