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2-Amino-3-Benzyloxypyridine

    • Product Name 2-Amino-3-Benzyloxypyridine
    • Alias 2-(Benzyloxy)-3-pyridinamine
    • Einecs 629-820-1
    • 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
    VTB
    Specifications

    HS Code

    441087

    Cas Number 144282-27-1
    Molecular Formula C12H12N2O
    Molecular Weight 200.24
    Appearance White to off-white solid
    Melting Point 85-89°C
    Purity Typically ≥98%
    Solubility Soluble in organic solvents like DMSO and methanol
    Smiles NC1=C(C=CC=N1)OCC2=CC=CC=C2
    Inchi InChI=1S/C12H12N2O/c13-12-10(7-8-14-12)15-9-11-5-3-2-4-6-11/h2-8H,9H2,13H2
    Storage Conditions Store at room temperature, keep dry and away from light
    Synonyms 2-Amino-3-(benzyloxy)pyridine

    As an accredited 2-Amino-3-Benzyloxypyridine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 2-Amino-3-Benzyloxypyridine is supplied in a 5g amber glass bottle with a tamper-evident cap and clear labeling.
    Shipping 2-Amino-3-Benzyloxypyridine is shipped in sealed containers to prevent moisture and contamination. It is packaged according to standard chemical safety regulations, with clear labeling and documentation. The shipment typically requires protection from light and temperature extremes, and compliance with all relevant transport and handling guidelines for laboratory chemicals.
    Storage 2-Amino-3-Benzyloxypyridine should be stored in a tightly sealed container, protected from light and moisture. Keep it in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizers and acids. Ensure the storage area is appropriately labeled and access is restricted to trained personnel. Handle under a fume hood and use appropriate personal protective equipment.
    Application of 2-Amino-3-Benzyloxypyridine

    Applications of 2-Amino-3-Benzyloxypyridine in Industrial Manufacturing

    As a direct chemical raw material producer, we focus on validated industrial applications of 2-Amino-3-Benzyloxypyridine across regulated chemical sectors. Below, we detail integration into key downstream manufacturing processes with sector-specific compliance, formulation guidance, process stages, and end products for each scenario.

    1. Pharmaceutical Intermediates for Pyridine-based APIs

    Major API manufacturers specify 2-Amino-3-Benzyloxypyridine as a building block in synthesis of targeted anti-infective and CNS-active compounds. The molecule enters amidation and cyclization steps to introduce nitrogen heterocycles critical for biological activity. End quality and impurity levels must meet stringent API specifications. Procurements cite batch documentation and traceability for full regulatory inspection readiness.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice (GMP) for Active Pharmaceutical Ingredients
    • U.S. Pharmacopeia (USP) API monograph guidelines
    • European Pharmacopoeia (Ph. Eur.) quality specifications
    • China Pharmacopoeia standards for chemical raw material inputs

    Typical usage ratio

    • Used at 0.2–0.5 molar equivalents per target API framework
    • Adjusted depending on required yield and target molecule structure
    • Process-specific optimization to minimize byproduct formation
    • Batch records align with target specification sheets

    Downstream process integration

    • Introduced in early amidation or condensation synthesis step
    • Subjected to reflux and subsequent cyclization, often under inert atmosphere
    • Purification via chromatography or selective crystallization
    • Residuals monitored and removed to satisfy impurity profiles

    Final product types

    • Intermediates for antibacterial quinolones
    • Key substrates for CNS-active pyridine derivatives
    • Precursors for antitubercular agents
    • Advanced building blocks for specialty generic APIs

    2. Agrochemical Synthesis for Pyridine-based Herbicides

    Formulators in the crop protection sector utilize this raw material to introduce nitrogen functionality in herbicidal actives. The compound participates in nucleophilic substitution and heterocycle extension steps during technical-grade herbicide manufacture. End-users demand traceable sourcing and full documentation to meet environmental and residue limitations during compliance audits.

    Industry compliance standards

    • FAO/WHO Specifications and Evaluations for Agricultural Pesticides
    • Regulation (EC) No 1107/2009 on placing plant protection products on the market (EU)
    • U.S. EPA guidelines for inert ingredients and technical-grade actives
    • ISO 9001 quality management for agrochemical manufacturing sites

    Typical usage ratio

    • 0.15–0.4 weight fraction relevant to total batch input
    • Scaled according to target molecule and formulation scale
    • Adjusted for reaction efficiency with monitored in-process GC/HPLC
    • Batch to batch variation minimized through validated SOPs

    Downstream process integration

    • Reaction as a nucleophile with halogenated intermediates
    • Control reactor temperature (80–120°C) for optimal yield
    • Pilot runs determine purification needs at technical product stage
    • Residual analysis performed before product isolation

    Final product types

    • Active herbicidal substances
    • Intermediate pyridine scaffolds for selective weed control agents
    • Precursor blends for broadleaf herbicide formulations
    • Registered technical material for formulation in liquid or granulated pesticides

    3. Dye and Pigment Intermediate Manufacture

    Specialty dye and pigment producers employ this compound for constructing azo and anthraquinone pigment precursors. Entry into electrophilic aromatic substitution and functionalization reactions facilitates precise color tuning demanded by coatings and plastics sectors. Volume orders require assessment of heavy metal and amine content in line with dye sector environmental practices.

    Industry compliance standards

    • OEKO-TEX Standard 100 for input material safety
    • REACH registration for colorant chemical use (EU)
    • Toy Safety Directive EN 71-3 for heavy metal and aromatic amine restrictions
    • ISO 14001 for plant environmental controls

    Typical usage ratio

    • 5–15% weight by weight relative to pigment yield
    • Altered for depth of tone, chroma, or colorfastness requirements
    • Formulation guided by spectrophotometric color targets
    • Quality assurance tests performed on synthesized batch

    Downstream process integration

    • Nitration, diazotization, or coupling stage intermediacy
    • Used in closed-system vessels to ensure safety
    • Postreaction filtration and drying determine final purity level
    • Tracked for amine migration in downstream blending

    Final product types

    • Azo dye precursors for textiles and coatings
    • Modified anthraquinone pigments for plastics coloring
    • UV-resistant pigments for outdoor use
    • Specialty blend intermediates for high-fastness applications

    4. Fine Chemicals for Specialty Electronic Materials

    The electronics chemicals sector adopts 2-Amino-3-Benzyloxypyridine in production of advanced pyridine-based ligands and complexes essential for OLEDs and semiconductors. Its role is to introduce targeted electron-donating or -withdrawing groups during ligand manufacture. Producers must validate absence of ionic contamination and ensure high lot-to-lot reproducibility for device performance stability.

    Industry compliance standards

    • IEC 60749 for semiconductor device processing
    • IEC 62471 for photobiological safety of lamps and lamp systems
    • RoHS Directive 2011/65/EU for hazardous substance limitation
    • ISO 9001:2015 for fine chemical production QC

    Typical usage ratio

    • Used at 1–3 molar equivalents relative to metal salt or carrier reactant
    • Marker for control of optical and thermal properties
    • Adjusted depending on device emission wavelength requirements
    • Final trace impurity threshold below 100 ppm

    Downstream process integration

    • Ligand assembly via catalytic coupling or complexation
    • Solvent phase reactions in high-purity vessels
    • Final product passes through ultrafiltration and controlled drying
    • Screened for trace metals and chloride content

    Final product types

    • Pyridine-based ligands for OLED emitting layers
    • Precursors for metal-organic frameworks in sensors
    • Complexes used in semiconductor passivation
    • Specialty electronic-grade intermediates
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    Certification & Compliance
    More Introduction

    Introducing 2-Amino-3-Benzyloxypyridine: Reliable Precision from the Manufacturer’s Floor

    If there’s one thing that seasoned chemists and R&D managers learn early, it’s that the backbone of modern pharmaceutical and agrochemical innovation is found in the careful selection of building blocks. 2-Amino-3-Benzyloxypyridine often sits in the center of this selection process. Our experience manufacturing this compound stretches back through countless batches, feedback loops with real-world research teams, and investigation into process optimization—not for a catalogue, but for real chemists behind real projects, aiming for purity, yield, and reliable end points each time. Here’s a view on 2-Amino-3-Benzyloxypyridine from a manufacturer’s workbench, shaped not only by tally marks but also by the needs of hands-on chemical synthesis.

    What We Know: Product Overview

    In the heart of our production cycle, 2-Amino-3-Benzyloxypyridine, chemical formula C12H12N2O, CAS Number 28783-41-1, steps out as a robust, versatile intermediate. What sets this chemical apart stems from its balanced structure: the amino group at the second position, paired with a benzyloxy group at the third, creates a unique reactivity profile. Through iterative process monitoring and direct work with intermediates, we’ve observed its stability under routine handling and seen why so many teams come back to this particular scaffold for synthesis development. A fresh batch brings with it a pale solid—stringent control over crystallinity, particle size distribution, and appearance aligns with frequent requests from formulation scientists. Batch-to-batch consistency remains crucial because deviations put development timelines, and ultimately product launches, at risk.

    Specifications Shaped by Daily Production

    Specifications for 2-Amino-3-Benzyloxypyridine often center around purity, moisture content, and freedom from residual solvents. From our own lines, the typical output consistently shows assay values exceeding 98 percent by HPLC, with water content below 0.5 percent when maintained in standard packaging formats. These numbers don’t arise from wishful thinking—control begins at sequencing raw material selection, tracked rigorously by a qualified QC team on our premises. Texture matters: off-white to faintly beige, free-flowing, and without agglomeration. This profile matches precisely what our downstream partners—innovators in fine chemicals and specialty syntheses—seek. They do not ask for generalities, but for uninterrupted performance in their screens or pilot runs. As a production team, spotting and resolving issues such as trace benzyl chloride residuals or pyridine side products has shaped both our in-line checks and our willingness to adjust upstream processes based on a customer’s feedback from the bench.

    How R&D Teams Put It to Work

    Back in early collaborations, discussions with organic chemists taught us that 2-Amino-3-Benzyloxypyridine is valued for routes toward heterocyclic compounds. Its combination of functional groups offers an efficient handle for substituent introduction on the pyridine core—no need for elaborate protecting group strategies. Selective derivatization, cross-coupling, acylation, or even simple N-alkylations become straightforward. In the pharmaceutical sector, we’ve followed batches through to API candidates after initial SAR studies flagged pyridine analogs for further development. In agrochemical research, the compound carves a path to new candidates for crop protection, where performance hinges on molecular subtlety rather than sheer activity. Feedback points to ease of deprotection at the benzyloxy group, a welcome benefit in multistep syntheses where each transformation must deliver consistently. This reliability shortens cycle times, moves projects off the whiteboard and into advanced testing, and turns months of work into achieved timelines.

    Learning from Use: Why Consistency Outweighs Catalog Claims

    At its core, the difference between a catalog description and real production lies in repeatability. Our batches of 2-Amino-3-Benzyloxypyridine don’t leave the plant unless they match a strict set of quality attributes, not just an outline on a data sheet. We’ve shipped to research divisions racing on tight timelines who cannot afford rework due to indifferent supply. Problems like off-odors or particulate contamination—often an afterthought in generic supply—show up quickly on long synthetic routes. We’ve overhauled filtration and drying stages based on direct discussions with researchers who hit snags in previously undocumented trace impurity profiles. Environmental controls for solvent residues, trace metals, and water are not arbitrary—they result directly from R&D teams flagging sources of unpredictable chemistry. Over time, this approach has paid off in fewer complaints, more successful runs, and repeat business from those who see the difference between mass supply and quality-driven manufacture.

    Comparing with Other Substituted Pyridines

    Working with a range of pyridine derivatives over years has taught us to look at the finer details that set one product apart from another. 2-Amino-3-Benzyloxypyridine does not simply fit into the mold of standard aminopyridines or substituted pyridines. Its specific substitution pattern brings selectivity in downstream functionalizations. For example, introducing the benzyloxy group at the meta position—rather than ortho or para—balances electron distribution and favors targeted coupling reactions. This matters in fields like medicinal chemistry, where regioselectivity defines the difference between a viable drug lead and a failed candidate. Other aminopyridines, lacking the benzyloxy motif, display a much broader and less controllable reactivity, leading to more byproducts or less efficient routes. We’ve seen researchers struggle with off-the-shelf analogs from traders that fail in practical application, then switch to our material with improved synthetic outcomes. Such differences may look small on a page; in the lab, they spell success or setback.

    Quality, Safety, and Scalability—from the Viewpoint of Our Plant

    Teams procuring from us ask about quality control and scale-up, often after prior experience with irregular supply chains. By anchoring analytical equipment—HPLC, GC, NMR—on the same production floor as our operators, rapid testing and feedback become standard. A typical batch size can start at lab scale, then ramp to tens of kilograms based on customer projection and availability of verified starting materials. Tight control over thermal history and impurity hold-up lets us guarantee that each consignment delivers the same outcome as the last. This culture of hands-on oversight did not arrive overnight. Years ago, a spike in impurity levels forced a root-cause investigation that led to investment in better powder-transfer systems and more robust drying infrastructure. Not just for compliance, but to protect the viability of every end-user’s working day. Safety protocols span beyond routine inspections, as teams internalize the best practices for handling aromatic amines—not just for operator protection, but because even small lapses ripple out to the end-user’s application performance.

    Understanding Downstream Needs: Support beyond Dispatch

    Providing 2-Amino-3-Benzyloxypyridine to a research or production facility does not end at freight dispatch. We insist on feedback—good, bad, or unexpected—and keep records that connect production batches to user experiences. Real-world data lets us fine-tune packaging (from foil bags to HDPE drums) for moisture and oxygen tolerance, depending on how long a synthesis campaign may last. We’ve altered labeling and batch documentation details after R&D users, not intermediaries, explained how information breakdowns hindered traceability. Cross-functional teams that straddle both production and technical support bridge the gaps between production imperatives and bench-top realities. In one instance, direct lab troubleshooting following a question about solvent remnants led to a tweak in final wash solvents, sharply reducing issues in downstream chromatography. These changes speak for themselves—in safe isolation, solid handling protocols, and steady downstream yields.

    Feedback-driven Innovation: Responding to Challenges

    Every facility faces setbacks, and ours is no exception. Keeping 2-Amino-3-Benzyloxypyridine free of contaminants, for example, sometimes means intervening before cutoff points typically set by bulk manufacturers. Early on, we encountered issues with byproducts arising from incomplete benzylation. Analysis with end-users led to a revision of catalyst loading and purification steps. The result was a cleaner compound that gave sharper NMR and HPLC profiles, making analytical documentation not just more precise but also more immediately useful. Problems also crop up in logistics and storage conditions—texture changes, shifting moisture profiles in transit during humid seasons, or occasional clumping. Addressing these is not about writing new sections into compliance files; it’s about keeping the loop open. Direct contact between our technical staff and in-house users lead to small packaging tweaks and process flow modifications that benefit every subsequent customer.

    Tangible Differences: Manufacturer-Driven Advantages

    Real-world performance, not just chemical structure, distinguishes our 2-Amino-3-Benzyloxypyridine. Long-term shelf life arises from direct attention to clean-room standards and oxygen barrier packaging. Each shipment leaves our facility with a clear documentation trail, linking each lot to synthetic procedure steps and QA data. Because many of our customers use this compound for structure-activity investigations where trace impurities destroy value, we support custom analytical verification against user-specified standards. This is not a luxury—rapid verification has solved more pre-pilot bottlenecks than months of troubleshooting ever could. Where some suppliers regard batches as raw material numbers, we look for feedback on solubility, melting point consistency, and ease of handling, because chemists in the field often share data that angles out new, unanticipated performance benchmarks. That collaborative thread, running through bulk shipments down to a single gram, has grown the reputation of our output far more than any distribution agreement ever could.

    Scalable Solutions: From Bench to Kilo Lab

    The jump from discovery chemistry to pilot-scale synthesis often exposes weaknesses in supply and material quality. We equip our facility to handle both small-batch research orders and scaling up to tens of kilograms without sacrificing analytical verification or ease of paperwork traceability. Early stage feedback from biotech and pharma customers highlighted that small changes in material properties—especially in sensitive benzyloxy deprotection steps—could lead to either successful scale-up or compounded failure costs. Internal teams drive investments in crystallization equipment, temperature monitoring, and high-resolution analytical gear after reviewing customer pilot reports, not generic industry demands. Grain size modification, tighter screening against polymorphic shifts, and direct consultation with formulation labs shape our ongoing process improvements. Each line on a COA comes from direct measurement, verified not because of regulations alone but because the stakes—a missed milestone, a failed validation—mean more down the chain than an unused tag in a warehouse.

    Sustainability and Process Safety in Production

    Manufacturing 2-Amino-3-Benzyloxypyridine at scale asks more than yield optimization. Responsible sourcing of solvents and thorough waste stream monitoring form the basis for each production run. Over time, direct audits and investment in solvent reclamation units have cut hazardous waste output without compromising on product quality. Operators trained in the specifics of handling aromatic amines contribute process observations that feed back into more practical guidelines. Rather than relying on generalized environmental targets, each improvement traces back to measured outcomes—safer workspaces, lower emissions, a smaller footprint for each kilo delivered to research partners developing the next generation of pharmaceuticals, agrochemicals, and specialty materials. Customers ask, and rightly so, about exposure controls and environmental responsibility; our answers are grounded in floor-level tracking of solvent use, in-process controls, and follow-up on the fate of every outgoing shipment.

    Continuous Improvement—Rooted in Practice

    Every production season, new insights reshape how we approach manufacturing. Unplanned downtime or QA flags lead to cross-team reviews—not only to restore compliance, but to uncover root causes and install preventative measures. For 2-Amino-3-Benzyloxypyridine, past years have seen better filtration selection, more accurate process logging, and closer relationships with raw material suppliers, based on lessons learned the hard way. The process of improvement never follows a checklist but instead follows the unpredictable feedback of both chemistry and customers. Plant operators know that minor changes—flow rate, agitation, pH tweaks—can mean a big difference in how this pyridine derivative crystallizes and stores. Diligent note keeping and follow-up run through every department, from order entry to dispatch. As trends evolve towards greener chemistry or digital batch tracking, we adapt methods that align with real-world project constraints, resulting in fewer surprises for every downstream user counting on reliable input.

    Conclusion: Manufacturer Perspective as the Basis of Trust

    Supplying 2-Amino-3-Benzyloxypyridine daily creates a living library of know-how, challenges, and successes. The combination of tightly managed process chemistry, operator experience, user-driven improvement, and transparent information exchange marks the difference between a material sourced from the edges of a product catalogue and a compound produced with intent and care. Every action on our line, from raw material check-in to final consignment confirmation, shapes the quality seen at the bench and in the results of every subsequent synthesis. It’s not just a molecule—it’s years of incremental refinement, hands-on troubleshooting, and careful listening to the realities of chemical innovation. This perspective, built from daily practicalities and sustained through every customer collaboration, defines both the promise and delivery of what we manufacture.