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4-Morpholinobenzylamine

    • Product Name 4-Morpholinobenzylamine
    • Alias 4-(Aminomethyl)phenyl morpholine
    • Einecs 629-679-4
    • 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

    131104

    Cas Number 60428-11-7
    Molecular Formula C11H16N2O
    Molecular Weight 192.26
    Iupac Name 4-(Morpholin-4-ylmethyl)aniline
    Appearance White to off-white solid
    Melting Point 77-79°C
    Solubility Soluble in polar solvents such as methanol and DMSO
    Purity Typically ≥98%
    Smiles C1COCCN1CC2=CC=C(C=C2)N
    Inchi InChI=1S/C11H16N2O/c12-10-2-4-11(5-3-10)9-13-6-1-7-14-8-13/h2-5H,1,6-9,12H2

    As an accredited 4-Morpholinobenzylamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A 100-gram amber glass bottle, securely sealed, labeled “4-Morpholinobenzylamine,” with hazard symbols and handling/storage instructions.
    Shipping 4-Morpholinobenzylamine is shipped in secure, chemical-resistant containers, clearly labeled according to regulatory standards. Packaging ensures protection from moisture and light. Shipments comply with local and international chemical transport regulations, including proper documentation and hazard labeling. Temperature-controlled transportation may be used if required. Handle and store with care upon receipt.
    Storage 4-Morpholinobenzylamine should be stored in a tightly closed container, away from direct sunlight, heat, and moisture, in a cool, dry, and well-ventilated area. Keep it separated from incompatible substances such as oxidizing agents and acids. Proper labeling and secure shelving are essential to prevent accidental spillage or exposure. Always follow relevant safety guidelines and local regulations for chemical storage.
    Application of 4-Morpholinobenzylamine

    Applications of 4-Morpholinobenzylamine in Industrial Manufacturing

    Our direct production of 4-Morpholinobenzylamine supports key sectors that demand consistent quality and proven integration methods. The following application scenarios highlight where manufacturers currently utilize this amine intermediate across regulated downstream industries, covering formulation specifics, compliance frameworks, and typical end goods produced.

    1. Synthesis of Pharmaceutical Intermediates

    4-Morpholinobenzylamine plays a critical role in the multi-step synthesis of various active pharmaceutical ingredient (API) intermediates, particularly in the development of antihypertensive and central nervous system medications. Pharmaceutical manufacturers introduce this amine structure during the condensation or reductive amination stages to achieve specific molecular frameworks required for regulatory-approved APIs. The material's performance under cGMP guidelines, as well as trace impurity control, is key in determining its suitability for finished medicinal products distributed to regulated markets.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • United States Pharmacopeia (USP) requirements for API intermediates
    • European Pharmacopoeia monographs
    • FDA 21 CFR Part 211 for finished pharmaceuticals

    Typical usage ratio

    • 0.5–3.0 molar equivalents relative to key carbonyl starting material; ratio adjusted for impurity profile and desired yield

    Downstream process integration

    • Introduced during the amide or amine building block formation via reductive amination or nucleophilic substitution in stepwise API synthesis

    Final product types

    • Antihypertensive drug intermediates
    • CNS-active pharmaceutical intermediates
    • Custom N-heterocyclic bulk API precursors

    2. Agrochemical Synthesis: Active Ingredient Manufacture

    Downstream agrochemical formulators use this amine derivative as a building block in the preparation of selective herbicides and fungicides. It serves as a nucleophilic source in the construction of substituted benzylamine cores which are further functionalized to afford active crop protection ingredients. Manufacturers precisely monitor input ratios to ensure safe and efficient conversion, as well as compliance with agricultural chemical quality standards for environmental and toxicological safety.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • REACH Regulation (EC) No 1907/2006 for chemical safety
    • ISO 9001:2015 certified quality management systems
    • EPA regulations for agrochemical actives (US)

    Typical usage ratio

    • 0.8–1.2 mole percentage relative to targeted acylating agent; adjusted based on target moiety conversion and purification parameters

    Downstream process integration

    • Added during key nucleophilic aromatic substitution or Mannich-type condensation in multi-stage synthesis

    Final product types

    • Selective herbicide technical concentrate
    • Triazole fungicide intermediates
    • Benzylamine-sourced pesticide actives

    3. Liquid Crystal Display (LCD) Intermediate Synthesis

    Major manufacturers of advanced display materials incorporate this compound to introduce morpholine-based structural elements into LCD intermediates, vital for tuning phase transition temperatures and improving voltage holding ratios. The purity and batch consistency directly affect the optoelectronic properties of the final liquid crystal mixtures, requiring close control in process and formulation.

    Industry compliance standards

    • RoHS Directive 2011/65/EU for hazardous substances restriction
    • ISO 14001:2015 for environmental management
    • JEITA Guidelines for Liquid Crystal Materials

    Typical usage ratio

    • 5–20% by molar fraction in the liquid crystal mixture precursor stage, optimized to blend compatibility and electro-optical response

    Downstream process integration

    • Reacted with halogenated or nitrile-functionalized aromatics to produce core LC intermediate structures before final mixture assembly

    Final product types

    • TN and IPS-mode LCD mixtures for panel manufacturers
    • Polymer-dispersed liquid crystals
    • Specialty LC blends for high-temperature displays

    4. Dye and Pigment Intermediate Production

    Industrial dye houses and pigment manufacturers rely on this benzylamine to introduce nitrogen-heterocyclic links in the synthesis of reactive, cationic, and disperse chromophores. Process chemists add it as a coupling partner at the diazotization or condensation stage, enabling chromogenic moieties with designated colorfastness profiles. Formulators must calibrate proportion and processing conditions to achieve specified intensity and application durability per global textile and ink standards.

    Industry compliance standards

    • OEKO-TEX® Standard 100 for textile chemical safety
    • REACH Annex XVII for restricted azo colorants
    • ISO 105 series for color fastness testing
    • ZDHC MRSL for input chemical management

    Typical usage ratio

    • 10–25% of total intermediate batch weight; value tuned for target chromophore yield and waste minimization in batch or continuous operation

    Downstream process integration

    • Employed during azo or anthraquinone dye coupling as an amine donor or functional fragment in pigment base manufacturing

    Final product types

    • Reactive textile dyes for cotton and cellulose
    • Disperse dyes for synthetic fibers
    • Printing ink intermediates
    • Cationic dyes for acrylic fibers

    5. Custom Polymer Modifier and Curing Agent Synthesis

    4-Morpholinobenzylamine is integrated by specialty polymer manufacturers to design amine-functional crosslinkers and chain modifiers, especially in high-performance epoxy and coating systems. Process engineers govern addition levels to achieve balance between mechanical resilience and workability, in compliance with coating and polymer chemical regulatory standards. The amine structure enters during oligomer or monomer pre-polymerization stages, influencing molecular weight distribution and cure characteristics suited for industrial coatings and adhesive applications.

    Industry compliance standards

    • ISO 9001:2015 for quality management in polymer processing
    • EU REACH Regulation for chemical safety documentation
    • ASTM D1763 for epoxy curing agent quality
    • EPA TSCA regulations for new additive introduction

    Typical usage ratio

    • 1–10% by weight in epoxy resin or polymerizable mixture; ratio set according to target glass transition temperature and crosslink density

    Downstream process integration

    • Incorporated at pre-polymer formulation as amine crosslinker or chain extender, followed by controlled thermal or UV-induced curing

    Final product types

    • Two-component industrial epoxy coatings
    • Specialty adhesives for electronics assembly
    • Modified polyurethanes for flooring and composites

    6. Fine Chemical Intermediates for Research and Specialty Synthesis

    Research-scale and specialty chemical producers employ this compound as a selectively reactive intermediate for constructing complex molecular scaffolds. Used in pilot and scale-up laboratories, the addition is carefully monitored to conform with analytical purity and reagents handling standards, and its reactivity patterns allow access to tailor-made aminated or heterocyclic molecules. Its value lies in fine-tuning outputs during medicinal chemistry or specialty additive pilot production.

    Industry compliance standards

    • ISO/IEC 17025 for laboratory quality assurance
    • Good Laboratory Practice (GLP) principles for specialty chemical synthesis
    • OECD guidelines for test chemical preparation

    Typical usage ratio

    • Variable: 0.1–1.0 equivalents depending on target molecule design and scale of operation; determined after route evaluation and optimization studies

    Downstream process integration

    • Used in controlled batch or microreactor conditions during nucleophilic additions, reductive aminations, or cyclization steps prior to purification

    Final product types

    • Specialty heterocycle intermediates
    • Molecular probes and reagents for R&D use
    • Custom synthetic building blocks
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    Certification & Compliance
    More Introduction

    Introducing 4-Morpholinobenzylamine: A Practical Approach from the Manufacturer

    Origins and Relevance

    In our labs, 4-Morpholinobenzylamine stands as a staple for downstream synthesis and chemical building block applications. For years, our team has refined this substance to address persistent needs across fine chemical, pharmaceutical, and material science circles. The core of this molecule, where the morpholine ring connects with a benzylamine backbone, allows it to play a supporting role in several complex processes.

    We draw on decades of hands-on manufacturing experience. Producing 4-Morpholinobenzylamine means controlling every detail from material sourcing to final purification. The steady feedback from our partners in process development and production scale-up keeps us vigilant. That feedback helped us identify methods to minimize residual solvent content and mitigate batch-to-batch variability.

    Synthetic chemists prize this compound for the way its structure opens up a range of transformations. The morpholine segment offers a balance of hydrophilicity and reactivity, enabling an easier path to derivatives requiring nitrogen substitution. The benzylamine portion, with its electron-rich character, makes it suitable for further functionalization. We've noticed that projects centered on kinase inhibitors and polymer intermediates especially depend on consistent quality.

    Specifications and Process Details

    Through the development pipeline, our technical teams work to maintain steady standards for purity, moisture content, and particle size distribution. Every batch is subject to comprehensive HPLC, NMR, and GC analyses, confirming a purity level above 99%. Moisture content is consistently held below 0.3%, and we enforce strict measures for the exclusion of secondary amines and aromatic impurities that complicate downstream use.

    Our knowledge extends to handling this compound at scale. Working with 4-Morpholinobenzylamine, especially above kilogram quantities, uncovers several practical issues—from temperature-sensitive crystallization to odor management in closed systems. We install dedicated storage tanks, and monitoring equipment to prevent cross-contamination with structurally similar amines. Drying protocol adjustments support both drum and bulk deliveries, keeping free-flowing powder properties intact.

    The product features a molecular formula of C11H16N2O and a molecular weight just above 192. Meticulous solvent recovery systems in our facility limit residual DCM or THF levels far below generally accepted thresholds. Such attention to solvent use addresses both regulatory compliance needs and operator safety.

    Usage in Synthesis and Industry

    4-Morpholinobenzylamine takes part in several kinds of bonds that shape the landscape of small-molecule drugs, specialty materials, and custom catalysts. The aminomethyl group lets synthetic chemists perform amide coupling in a more controlled fashion. We've seen it serve as a core fragment in early discovery work for central nervous system active compounds, as well as in the preparation of target molecules for fluorescent probes. At the pilot plant level, demand tends to rise for routes where the intermediate needs to withstand a range of pH conditions. The morpholine group meets those needs more comfortably than most open-chain amines.

    We've collaborated directly with startup teams and established multinationals developing active pharmaceutical ingredients. In those cases, reliability of the amine function and cleanliness of the parent aromatic ring come under scrutiny. Our QA staff recall interventions where slight variation in precursor aldehyde purity created downstream process delays. Each episode sharpened our focus on supply chain transparency and intra-lab communication.

    In crop protection, the same compound finds life as a scaffold for new herbicides and insecticides. Consistent quality allows formulation scientists to test analog series faster and move through lead optimization phases with fewer synthesis-related setbacks. In the field of epoxy resins and crosslinkers, the product’s primary amino group contributes to network rigidity while morpholine’s structure offers just enough flexibility to manage brittleness.

    Distinctions From Other Amines and Intermediates

    While the sector offers a series of benzylamines and N-alkylated morpholines, few match the specific blend available here. One noticeable difference we see—especially during purification—relates to stability in air and under mild bases. While other aromatic amines tend to discolor or degrade within days of exposing batches to open air, this compound shows more resistance. That extra stability translates to longer shelf life and lower risk in transport.

    Comparing 4-Morpholinobenzylamine to similar molecules, such as piperidinobenzylamines or N-methyl derivatives, unearths critical contrasts. The morpholine ring increases water solubility and decreases the tendency for non-specific binding; in ligand design, we learned that this reduces off-target interactions compared to other substituted benzylamines. On the process side, reduced volatility means we’re not chasing fugitive emissions during large-scale production or storage.

    In custom synthesis projects, we noticed collaborators achieve higher coupling yields with this material than with typical N-alkyl substituted benzylamines. That reproducibility matters when process transfers from lab to plant. The less polar substituents often lead to inconsistent recrystallization and purification, especially after column chromatography runs. Our team repeatedly documents that the morpholine variant delivers more predictable performance, which supports process validation and scale-up milestones.

    Environmental compatibility also sets this product apart. Waste handling benefits from morpholine’s relatively benign hydrolysis profile and less offensive odor than most aromatic amines. Our in-house environmental safety reports show easier compliance for air and aqueous waste discharge, especially relevant for facilities operating in regions with strict local ordinances.

    Rather than producing a commodity chemical with generic features, we commit to real traceability—from initial synthons through every finished drum. Every improvement we introduce stems from actual requests and pain points our partners face. Improvements in washing techniques, tighter SOPs, and additional analytical points now serve as standard, not exception.

    Supporting Advanced Research and Industrial Reliability

    Academic researchers, contract manufacturing organizations, and global pharmaceutical firms circle back to this product largely for three reasons: reliable batch quality, ongoing manufacturing support, and experience in navigating regulatory questions. We hear from our QA contacts that easy access to analytical data shortens client decision times. Our experience shows that early pre-shipment discussions flag up any out-of-spec issues well before delivery.

    Where research-grade quality isn’t enough, our process accommodates GMP-oriented controls. Technicians maintain detailed batch records, archived samples, and full trace reports. Full certificates of analysis come standard, including impurity profiles and custom analytical requests where those can aid internal project documentation.

    Flexible packaging options grew out of direct customer dialogue. Teams running parallel pilot plants need small drums with anti-static liners; those scaling up toward commercial production request multi-ton iso-tanks. We route each package for post-filling inspection, confirming tamper-resistance and batch number consistency. For pioneering projects in newer battery chemistries and advanced coatings, short lead times and responsive product support prove more useful than bulk discounts alone.

    In day-to-day operations, our work with material scientists also highlighted physical property improvements that upgrade both ease-of-handling and process control. By adjusting drying and sieving methods, we keep product flow steady in automated feed lines—cleaner runs, fewer blockages, less manual intervention. Every detail, from lot numbering to mixing order, reflects a lesson learned in-the-field, not pulled from a reference book or standards handbook.

    Addressing Quality and Process Challenges

    Quality doesn’t stay in place without careful ongoing attention. Our analytics team reviews process performance with each run. Over the years, we’ve made investments in in-process control instruments; real-time chromatographic feedback flags purity or impurity drifts that otherwise slip past final inspection.

    Variations in precursor supply proved disruptive early on, especially as the market saw spikes in key starting materials. Rather than relying on any single upstream partner, we diversify sources and continually qualify new vendors. Years spent troubleshooting off-odor and color changes inform our approach to these relationships. Pride comes less from running a large number of tons, and more from meeting stricter batch-to-batch consistency year after year.

    Regular technical audits and retraining sessions anchor our quality program. Operators rotate to maintain cross-trained teams familiar with both manual and automated reactor platforms. Equipment maintenance goes beyond checklists; we invite both engineering and QC staff to verify every step before moving raw materials between stages. In one particular case, missing a filtration parameter adjustment in a high-humidity period produced a batch outside specification. Internal corrections and detailed cause analysis stay with us as reminders to stay vigilant.

    For every larger project, we open up lines of communication—keeping partners in the loop on both expected delivery times and any potential issues. This transparency minimizes uncertainty and keeps decision-making informed at each step. Supporting documentation moves with the product from our QC lab straight to our logistics desk, and full analytical support remains available long after shipment.

    Moving Forward with Industry Partners

    Building reliable supply for 4-Morpholinobenzylamine means keeping ears open to the evolving landscape—emerging targets in drug research, regulatory updates, sustainability trends. Whether a partner works on pharma intermediates, agricultural actives, or performance materials, stability of supply stays front of mind. Substituting a critical intermediate mid-project throws off timelines and demands costly requalification; we’ve listened as clients describe lost months over unplanned shortages or inconsistent raw material quality.

    We don’t stop at producing drums of material and sending them out the door. Plant expansion plans focus on closed-loop production cells and additional purification capacity. Increasing the scale doesn’t undercut our control of quality checkpoints; instead, it pushes us to upgrade integration between process controls, analytics, and documentation. Our teams often join technical discussions directly with client chemists, troubleshooting process bottlenecks, mapping out impact of minor impurity classes on complex syntheses, and sharing practical advice earned in industrial settings.

    In one collaborative research project, our technical input around amine handling strategies contributed directly to scalable low-temperature coupling reactions—keeping reaction mixtures clear and minimizing byproduct formation. Notes from our own production logs, years of small adaptation and continuous learning, contribute to each new project conversation. Site visits and regular audits by partner teams keep us honest, transparent, and motivated.

    Recent customer requests reflect shifting priorities toward greener chemistry and compliance with tighter worker safety standards. Our response includes investments in ventilation systems, closed drum filling, and operator safety protocols. Project engineers continually tweak waste stream management, reviewing all cleaning solvent usage and capturing more of the process waste in reusable form. These aren’t trends we observe from a distance; they affect our everyday operations, from procurement to shipment.

    Looking Ahead

    We recognize that the needs and expectations of industrial partners will evolve with scientific progress, business demands, and changing regulations. Our team remains committed to continuous improvement in both product quality and technical service. Lessons drawn from decades of bench and plant experience guide every procedure and foster new ideas for energy use, waste reduction, and cross-team cooperation.

    Every shipment strengthens relationships built on trust, mutual learning, and performance in real-world scenarios. Chemical manufacturing, in practice, means adapting quickly and delivering reliability in the face of shifting complexity. 4-Morpholinobenzylamine serves as a solid example of how practical insight, investment in quality, and transparent cooperation help industry move forward—one batch, one challenge, and one new possibility at a time.