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1-(2-Methylphenyl)Piperazine

    • Product Name 1-(2-Methylphenyl)Piperazine
    • Alias oMPP
    • Einecs 629-813-6
    • 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

    355250

    Chemical Name 1-(2-Methylphenyl)piperazine
    Synonyms o-Tolylpiperazine, 2-Methylphenylpiperazine
    Molecular Formula C11H16N2
    Cas Number 57897-96-4
    Appearance Colorless to pale yellow liquid
    Boiling Point 143-145°C at 15 mmHg
    Density 1.01 g/cm³ (approximate)
    Solubility Soluble in organic solvents (e.g., ethanol, chloroform)
    Smiles CC1=CC=CC=C1N2CCNCC2
    Purity Typically >98%
    Storage Conditions Store at room temperature, tightly closed, in a dry place

    As an accredited 1-(2-Methylphenyl)Piperazine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 1-(2-Methylphenyl)piperazine is packaged in a 25g amber glass bottle with a secure screw cap and clear hazard labeling.
    Shipping 1-(2-Methylphenyl)piperazine is shipped in tightly sealed containers, compliant with chemical safety regulations. Packaging prevents leaks and exposure to air or moisture. Proper labeling and documentation are included for safe handling. The chemical is shipped via licensed carriers, following all hazardous material transport protocols to ensure safety during transit.
    Storage Store **1-(2-Methylphenyl)Piperazine** in a tightly closed container, in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers. Protect it from moisture, direct sunlight, and excessive heat. Ensure the storage area is secure and clearly labeled, and follow all local regulations regarding chemical storage.
    Application of 1-(2-Methylphenyl)Piperazine

    Applications of 1-(2-Methylphenyl)Piperazine in Industrial Manufacturing

    As a direct manufacturer with long-term engagement in organic synthesis, we supply 1-(2-Methylphenyl)Piperazine primarily to specialty chemical producers, advanced pharmaceutical intermediates manufacturers, agrochemical formulators, and fine chemical innovators. Each application sector integrates this raw material at a unique production stage and under a strict compliance framework to achieve specific functional or chemical transformation outcomes.

    1. Pharmaceutical Intermediate for Central Nervous System (CNS) Actives

    Many manufacturers of CNS drugs and psychiatric treatments introduce 1-(2-Methylphenyl)Piperazine early in multi-stage active ingredient synthesis, particularly for crafting key intermediates in atypical antipsychotic and antidepressant product lines. Its unique aromatic piperazine structure functions as a structural core in several drug molecules, and it must meet rigorous analytical and impurity specifications before batch scale-up.

    Industry compliance standards

    • Good Manufacturing Practice (GMP, ICH Q7)
    • Pharmacopoeia Monographs (USP, Ph. Eur.) where applicable
    • FDA 21 CFR Part 210/211 regulations (for US market production)
    • REACH registration confirmation (for EU supply)

    Typical usage ratio

    • 0.2–0.35 molar equivalents relative to target active compound; formulators adjust based on reaction yield and process validation data.

    Downstream process integration

    • Introduced during initial or secondary condensation/methylation steps of CNS pharmaceutical intermediate synthesis following raw material quality control.

    Final product types

    • API intermediates for antipsychotic agents
    • Building blocks for selective serotonin receptor modulators
    • Piperazine-derived antidepressants
    • Custom CNS research molecules for medicinal chemistry

    2. Agrochemical Intermediate in Fungicide and Insecticide Synthesis

    Producers in the agrochemicals sector employ this compound as a key fragment for constructing heterocyclic scaffolds of advanced fungicidal and insecticidal actives. It offers both chemical reactivity and fine-tunable selectivity in downstream coupling reactions, essential for cost-effective scaling and product innovation in the crop protection field.

    Industry compliance standards

    • ISO 9001:2015-certified manufacturing process controls
    • FIFRA (EPA, US Environmental Protection Agency) for pesticide actives
    • EU Regulation (EC) No 1107/2009 for plant protection products
    • China National Standard GB/T 1604-2019 for agrochemical intermediates

    Typical usage ratio

    • 5–12% by weight of batch substrate for coupling or ring-closure steps; percentages adapted for specific molecule design and scale-up batch size.

    Downstream process integration

    • Charged prior to cyclization, forming the piperazine backbone in fungicide and insecticide intermediates; also used as a nucleophile during specific N-arylation protocols.

    Final product types

    • Fungicide intermediate compounds
    • Insecticide precursor molecules
    • Finished crop-treatment active ingredients containing piperazine scaffolds
    • Fine agrochemical R&D screening libraries

    3. Intermediate in Synthesis of Specialty Dyes and Optical Brighteners

    Chemical suppliers to the textile, paper, and plastics industries incorporate 1-(2-Methylphenyl)Piperazine into their workflow as a nucleophilic amine for creating chromophore-modified intermediates. By facilitating targeted substitution and ring closure, the material contributes to performance differentiation in end-use optical and colorant products under industry-specific color fastness and emission safety standards.

    Industry compliance standards

    • OEKO-TEX® Standard 100 for restricted substances
    • EU REACH Annex XVII & SVHC compliance
    • ISO 9001 quality systems for specialty dye intermediates
    • ISO 18314-1:2015 for color measurement protocols (end products)

    Typical usage ratio

    • Typically introduced at 1–4% of total formulation mass; the load varies by chromophore design to achieve desired absorption/emission characteristics and application concentration in final goods.

    Downstream process integration

    • Added at the amination or nucleophilic substitution stage during intermediate dye or brightener core synthesis, followed by purification and color property analysis.

    Final product types

    • Optical brighteners for textile finishes and paper
    • Specialty azo or anthraquinone dyes
    • Fluorescent tag intermediates for plastics
    • Customized colorants for ink and coating production

    4. Fine Chemicals for Polymer Additive and Performance Modifier Synthesis

    Manufacturers of polymer processing aids and additive blends utilize this material as a functionalizing agent, introducing its aromatic-piperazine motif for reactivity enhancement and physical property modification in specialty polymer matrices. Its inclusion ensures specific molecular characteristics in end-use masterbatches or performance-enhancing formulations across high-spec plastics and elastomers.

    Industry compliance standards

    • RoHS (Restriction of Hazardous Substances, for electronics-related polymers)
    • ISO 14001:2015 (Environmental Management for chemical processing)
    • EN 71-3:2019 for toys and consumer safety (when used in colorants or functionalizers with exposure risk)
    • FDA 21 CFR 177 (for certain polymer applications involving food contact)

    Typical usage ratio

    • 0.1–0.5% by total polymer matrix mass; final content modulated according to compatibility tests, targeted reactivity, and regulatory maximums.

    Downstream process integration

    • Integrated at pre-polymerization or in reactive extrusion stages, predominantly for modifying additive molecules later dispersed throughout engineered polymers.

    Final product types

    • Functional masterbatches
    • Reactive polymer performance additives
    • Impact-modified plastics for electronics and automotive use
    • Color-stable engineering resins
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    Certification & Compliance
    More Introduction

    Introducing 1-(2-Methylphenyl)Piperazine: Reliability and Precision from a Dedicated Manufacturer

    Within the world of chemical innovation, a compound’s impact often goes beyond its molecular structure. Our experience manufacturing 1-(2-Methylphenyl)Piperazine has underlined this point. As specialists who handle both small-batch research scale and ton-scale production, we understand what this product can bring to the table for our partners in the pharmaceutical, agrochemical, and research communities. Every step, from raw material selection to controlled crystallization, shapes the difference between material that simply meets an assay number and one that enables confident, reproducible R&D and manufacturing outcomes.

    A Closer Look at 1-(2-Methylphenyl)Piperazine

    Chemists looking to build nitrogen- and aromatic-rich scaffolds know the value of a versatile starting material. 1-(2-Methylphenyl)Piperazine fits this description. It combines a methyl-substituted phenyl ring with a secondary piperazine nitrogen base, offering reactivity at both the aromatic system and the piperazine core. In our own labs, the material often serves as a convenient intermediate, helping biologists and synthetic organic teams access target molecules such as psychiatric and neurological scaffolds, specialty pigments, and advanced intermediates for crop protection.

    Assessment and adjustment of purity matter at every step. Over the years, we have refined methods for purification, using technologies such as vacuum distillation and preparative chromatography, to push typical purity above 98% by HPLC. Consistency is not a marketing word here. Our chemists track every lot, checking for subtle variations in melting point and impurity profile, learned from the experience of seeing how trace byproducts influence sensitive downstream steps.

    Experience-Driven Production Standards

    A compound with a basic piperazine core and a methylated aromatic ring sometimes appears simple to make on paper. Our team knows that in the reactor, things change quickly. We control temperature profiles, stoichiometry, and mixing times—not because the book says so, but because we’ve seen what happens otherwise. Moisture during alkylation? You might see side reaction byproducts bleed in. Overheating during crystallization may nudge yields lower or, worse, leave persistent residuals that elude easy removal.

    Multiple customers have sent us samples produced elsewhere, curious why their assays fail to match expectations. Beyond the standard purity metrics, we look for telltale signs: dimethylated impurities, oxidized aromatic fragments, or N-dealkylation. We understand, from repeated analysis, that spectroscopic clarity on NMR and HPLC signals reliable process control upstream. That direct interaction with the chemistry—rather than translating someone else’s API spec sheet—shapes both our technical problem-solving and how we support partners during scale-up or troubleshooting.

    Technical Details That Matter on the Lab Bench and in Production

    Quality in our experience doesn’t just mean hitting a number on an assay report. It means a compound behaves as it should through manipulations: weighing, dissolution, reaction, and isolation. 1-(2-Methylphenyl)Piperazine can appear as a pale solid or oil depending on storage and batch specifics. Variability in melting range, even if within a degree or two, may say more than just the comfort of an analytical spec—it often informs our views on residual solvents and minor byproducts.

    This compound’s modest water solubility and good compatibility with polar organic solvents, especially acetonitrile, DMF, and ethanol, mean chemists enjoy flexibility with reaction conditions. We consider attention to solvent purity and drying agents just as critical here. Observing unintended color development in solution can point to oxidation. Adjusting purification steps based on years of hands-on pilot work, we’ve learned to spot and resolve these issues before they reach customers.

    Comparing with Other Piperazine Derivatives

    Years working at the reactor have repeatedly shown us why not every phenylpiperazine is interchangeable. For synthetic strategies requiring nucleophilic aromatic substitution, the 2-methyl group here blocks ortho positions, steering reactivity and affecting product selectivity. Colleagues attempting to use unsubstituted phenylpiperazine often report uncontrolled side reaction pathways or lack the desired regioselectivity, forcing rework or recalculation. Electronically, the methyl group adds slightly to the electron-donating character, offering a subtle shift in downstream reaction kinetics.

    Reaction scale-ups with related compounds, such as 1-phenylpiperazine or para-methyl isomers, reveal real differences in solubility and crystallization behavior. We’ve seen how solvent choice must sometimes shift, or temperature ramps adapt, to coax similar yields and purities from each variant. Having manufactured all these derivatives at scale, we do not treat them as “plug-and-play.” Customers designing new routes often consult us for practical solubility data and impurity profiles, because literature alone does not always predict the hurdles a chemist finds in a real-world batch.

    Downstream Uses: Practical Lessons from the Field

    1-(2-Methylphenyl)Piperazine finds its most frequent uses as a building block in API research, fine chemicals, and intermediate development. During recent collaborations, pharmaceutical teams shared with us the sensitivity of their downstream reactions to trace amines and other nitrogenous residuals. In response, we didn’t just refer to a spec sheet. We sampled from multiple points in the final lot and tailored drying protocols, pushing residual moisture below 0.1%, just to take that margin of risk out for our partners.

    Agrochemical teams working on seed treatment molecules have also turned to this compound. Their feedback prompted specialized stability studies. We tracked batch aging under warehouse conditions, adjusting packaging for light protection to reduce minor degradation. These real-world adjustments don’t show up in catalog listings but emerge through partnerships—and years in the industry forge that habit.

    Handling, Safety, and Worker Experience

    No catalogue number or specification makes up for boots-on-the-ground familiarity with safe handling. Over the course of hundreds of batch runs, we’ve seen where risks emerge, such as higher vapor pressure at elevated process temperatures or skin sensitivity among operators who handle open material on humid days. By investing in robust training, double-layer gloves, and closed-transfer systems, our workers avoid common exposure incidents. In turn, our customers receive advice grounded in direct experience, not just standard operating procedures pulled from a regulatory binder.

    Storage conditions influence both material stability and safe use. Our own process improvements over the years reflect practical learning—materials stored in standard drums can sometimes degrade if not tightly sealed, especially in warm, humid warehouses. We shifted to lined containers and introduced periodic monitoring of long-stored material, making sure product delivered months after manufacture behaves just as it did on day one. Customers working in hot or variable climates have appreciated these details when assessing their own logistics.

    Traceability and Batch-to-Batch Consistency

    Traceability remains one of the defining features separating experienced manufacturers from resellers. Our systems do more than assign a batch number. Every lot carries a production journal capturing dates, equipment, operator, and process notes, cross-referenced with analytical records. When colleagues from other labs query about a minor variance in a recent sample, we can draw on these records to diagnose root causes and provide a level of support that speeds their projects forward.

    Regular QC comparisons between pilot, scale-up, and routine runs keep our product within a narrow window of specification. Our chemists watch for early signs of drift—be it in melting point, color, or trace impurity detected by GC-MS. This approach reflects years of learning that, for demanding synthesis work, predictability matters as much as headline purity numbers.

    Regulatory Awareness and Documentation

    Unlike some intermediates that fly under the radar, 1-(2-Methylphenyl)Piperazine sometimes draws scrutiny for its use in pharmaceutical research. Regulatory authorities in some regions ask traceability and end-use declarations. Our documentation takes these needs seriously. Having participated in audits and regulatory review processes, we provide comprehensive certificates containing not just purity but lot-specific analysis (including GC/LC chromatograms and, on request, impurity characterization).

    Our team understands how regulatory frameworks shift and occasionally tighten. Instead of viewing such changes as a burden, we treat these as opportunities to demonstrate our material’s reliability and our process transparency. Whether a customer is preparing for DMF filing, export documentation, or just strict in-house compliance, we stand ready to support them with first-hand, audit-proven records—not only printed reports, but files that match each drum and delivery with its complete background.

    Environmental Responsibility and Waste Management

    Our production philosophy places equal emphasis on high-quality output and responsible environmental practice. Piperazine chemistry generates residual amines and aromatic fragments; experience has taught us that unchecked, these can represent hazards both in the plant and during disposal. In the last five years, we invested in custom reclaim and scrubbing systems—lessons from early issues with odor emissions and local wastewater challenges convinced us to act proactively, not reactively.

    Every kilogram of usable product means a fraction of residue left behind. By closing loop cycles on solvents, reclaiming side products where feasible, and carefully segregating halogenated streams, we have cut raw waste output by more than a quarter. This effort is not just good citizenship; it cuts logistic headaches for our own teams, lowers cumulative costs, and syncs with evolving expectations from our global partners. Many customers now ask after green chemistry initiatives as part of sourcing, so sharing this learning makes sense for us and them alike.

    Partnership and Support Beyond a Catalog Listing

    We have seen too many frustrated research teams lose months to unreliable intermediates supplied with nothing but a technical data sheet. Our regular feedback sessions and technical visits set us apart. Whether clarifying a batch certificate with a customer’s QC staff, designing new process flows to boost yield, or troubleshooting off-spec reactions based on handwritten logs, we treat each engagement as an extension of our production floor.

    Chemists and process engineers working under time and cost pressure deserve straightforward information and practical support. Over the years, we have hosted visiting process teams wanting firsthand exposure to our methods, believing that real transparency fosters trust and often uncovers shared solutions. Whether sharing kinetic studies, impurity fate mapping, or best practices for scale-up, these partnerships pay dividends in robust results.

    Developing Value with Each Year of Manufacturing

    Our role as a manufacturer shapes our relationship with 1-(2-Methylphenyl)Piperazine. Every improvement in the process, every troubleshooting call, and each technical partnership feeds back into a cycle of refinement. It’s not only the molecule itself, but how consistently and confidently it moves through synthesis and discovery pipelines, that gives it its value.

    Experienced makers of this compound recognize the small differences that define reliability. Adjustments in recrystallization solvent, timing on final filtration, or modifications to raw material sources ripple through every succeeded or failed campaign in the field. Mistakes and successes alike inform the next batch, making the difference between a manufacturer who ships a drum and one who supports a breakthrough synthesis.

    1-(2-Methylphenyl)Piperazine, shaped by a veteran production team, demonstrates how strict process and hands-on experience combine in every lot we produce. Chemists and project managers seeking assurance—beyond just a number on a page—find it in every interaction and, ultimately, every result delivered by a well-made product born out of real manufacturing knowledge.