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1-Phenylpyrrolidine

    • Product Name 1-Phenylpyrrolidine
    • Alias 1-Phenyl-1-azacyclopentane
    • Einecs 224-003-6
    • 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
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    Specifications

    HS Code

    343145

    Chemical Name 1-Phenylpyrrolidine
    Cas Number 4564-08-5
    Molecular Formula C10H13N
    Molecular Weight 147.22 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 241-242 °C
    Density 1.003 g/mL at 25 °C
    Smiles C1CCN(C1)C2=CC=CC=C2
    Inchi InChI=1S/C10H13N/c1-2-6-10(7-3-1)11-8-4-5-9-11/h1-3,6-7H,4-5,8-9H2
    Melting Point -20 °C
    Solubility Slightly soluble in water

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

    Packing & Storage
    Packing The packaging for 1-Phenylpyrrolidine (100 g) features an amber glass bottle, child-resistant cap, and chemical hazard labeling.
    Shipping 1-Phenylpyrrolidine is shipped in tightly sealed containers, compliant with chemical safety regulations. The packaging ensures protection from moisture and light, with labeling for clear identification. During transport, appropriate documentation accompanies the shipment, and handlers follow guidelines for hazardous materials. Store and ship at ambient temperature unless otherwise specified by the supplier.
    Storage 1-Phenylpyrrolidine should be stored 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 from moisture and direct sunlight. Store at room temperature, preferably in a dedicated flammable liquids cabinet, and ensure proper labeling and access control for safety.
    Application of 1-Phenylpyrrolidine

    Applications of 1-Phenylpyrrolidine in Industrial Manufacturing

    1-Phenylpyrrolidine plays a significant role as an advanced intermediate and functional additive in specialized chemical synthesis for pharmaceuticals, agrochemicals, specialty polymers, and fine chemical sectors. Its use is determined by high purity demands, strict regulatory frameworks, and process-specific requirements from end-product manufacturers.

    1. Pharmaceutical API Synthesis

    Manufacturers use 1-Phenylpyrrolidine as a building block in multi-step active pharmaceutical ingredient (API) synthesis, especially for central nervous system and oncology drugs. Production processes require consistently high purity to meet current Good Manufacturing Practice (cGMP) protocols and pharmacopeial specifications. Integration typically occurs during key heterocycle-forming reactions or as a chiral auxiliary, impacting process yields and impurity profiles. Finished APIs incorporating this molecule proceed to formulation after rigorous analytical testing and batch record documentation.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP–NF monograph requirements where applicable
    • EU GMP Part II for API manufacturers
    • FDA 21 CFR Part 211 (as relevant for U.S. supply)

    Typical usage ratio

    • 5%–25% mole equivalent relative to target API batch; adjusted based on step yield and downstream chiral purity needs

    Downstream process integration

    • Charged at designated intermediate or pre-final coupling step in multi-step synthesis
    • Applied in heterocyclic N-alkylation or as a chiral auxiliary in asymmetric synthesis
    • Requires pre-filtration and real-time purity assay upon receipt

    Final product types

    • Antipsychotic APIs containing pyrrolidine moieties
    • Oncology molecule intermediates
    • Specialty metabolic disorder treatments

    2. Agrochemical Intermediate Manufacturing

    Producers engage 1-Phenylpyrrolidine for constructing key rings or aromatic motifs in advanced intermediates for herbicides and insecticides. Its inclusion supports molecular diversity required for new-generation agrochemicals, particularly those targeting insect nervous system pathways. Processing takes place under closed conditions, integrating the material during N-alkylation steps to impart structural uniqueness and stability to the active ingredient scaffold. Stringent compliance with global agrochemical regulation is required for downstream market access.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems for chemical processing
    • OECD Good Laboratory Practice (GLP) for test substances
    • FAO specification requirements for active substance purity

    Typical usage ratio

    • 10%–30% by mol in relation to target intermediate, adjustable on the basis of structural diversification targets and substitution pattern

    Downstream process integration

    • Dosed in amidation, N-functionalization, or ring closure stages
    • Quality controlled via LC-MS for trace amine content and N-heterocycle integrity
    • Integrates prior to active ingredient formulation blending

    Final product types

    • Phenylpyrrolidine-based insecticide intermediates
    • Herbicide scaffold precursors
    • Miticide development candidates

    3. Specialty Polymer Additive Production

    Chemical manufacturers incorporate 1-Phenylpyrrolidine as a functional monomer or reactive additive when engineering advanced specialty polymers, such as conductive resins or functionalized polyamides. The aromatized pyrrolidine ring enhances electron mobility or imparts thermal stability in end-use formulations. Feed ratios depend on targeted mechanical or electrical application properties, while thorough REACH documentation and traceability in the supply chain support compliance and risk management.

    Industry compliance standards

    • REACH Regulation (EC) No 1907/2006 registration for sale in the European Union
    • ISO 14001: Environmentally responsible manufacturing
    • RoHS Directive for electronics-related applications

    Typical usage ratio

    • 0.5%–5% by weight in co-polymer or resin system; adjusted for conductivity or mechanical strength targets

    Downstream process integration

    • Pre-blended into resin melt or solution during primary polymerization
    • In-line monitoring of dispersion and polymer chain binding
    • Utilizes closed mixing vessels with vacuum degassing

    Final product types

    • Antistatic polyamide sheets
    • Electrically conductive epoxy coatings
    • High-temperature composite structural parts

    4. Fine Chemical Synthesis for Research Reagents

    Chemical research firms and catalog suppliers order 1-Phenylpyrrolidine as a customizable intermediate for producing analytical standards and fine chemicals. The material enters customized synthesis protocols for ligand development, screening libraries, and small-scale functionalization. Compliance involves established analytical certification and documentation upon shipment. Researchers may employ this molecule for patented structure synthesis or as an amine source for selective transformations in assay development.

    Industry compliance standards

    • ISO 9001 Certified Chemical Production Facilities
    • Custom Certificate of Analysis (CoA) per batch
    • EMA Guidelines for Starting Materials (if used in pharma research)

    Typical usage ratio

    • Ranges from 1 mg up to 100 g per lot, batch-specific based on synthetic route and compound library size

    Downstream process integration

    • Introduced as an N-heterocyclic core scaffold during solid or solution phase synthesis
    • Utilized in stepwise building of research molecules
    • Supported by batch retain sampling and third-party spectral verification

    Final product types

    • Custom analytical standards
    • Screening compound libraries
    • Synthons for bioactive molecule research
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    Certification & Compliance
    More Introduction

    Introducing 1-Phenylpyrrolidine: A Reliable Building Block from a Manufacturer’s Perspective

    From Our Production Floor to Your Lab: Real Insights on 1-Phenylpyrrolidine

    In the field of chemical manufacturing, each compound we develop tells a piece of our story. 1-Phenylpyrrolidine stands out as one of those chemicals with both proven value and ongoing demand. As a direct manufacturer with years on the production floor, we know that a compound is only as good as the care that goes into it, from the selection of raw materials, through every step of purification, down to the bulk packaging or fine calibration for customers who demand nothing less than consistency.

    Why We Focus on 1-Phenylpyrrolidine

    1-Phenylpyrrolidine, with its distinct five-membered nitrogen-containing ring and a phenyl group, has earned its place as a valuable intermediate. This isn’t just another secondary amine; it’s a compound that bridges innovation in pharmaceuticals and specialty organics. Our plant has seen a steady increase in orders for this product, especially as research arms of pharmaceutical and agrochemical developers refine and expand their portfolios. Each batch we produce reflects years spent optimizing our systems for safety and purity, because this is a molecule respected for its versatility in synthesis.

    Reliable Model, Reliable Output

    Customers approach us with specific projects in mind—sometimes an in-house medicinal chemistry campaign, sometimes the early scale-up for a new pharmacophore. This familiarity helps our team orient production around their needs, balancing large volume outputs with small, dedicated synthesis runs. We generally offer 1-Phenylpyrrolidine as a clear to pale yellow liquid with purity above 98 percent by GC. These aren’t just numbers on a spec sheet; these figures mean fewer reworks during scale-up, lower byproduct burdens, and streamlined quality checks on your end. High-purity product brings confidence into every downstream application.

    Applications Backed by Real-World Evidence

    We don’t just ship drums out the door and move on. Over the years, customers have shared details on how they use our 1-Phenylpyrrolidine: from coupling reactions within active pharmaceutical ingredient syntheses, to intermediates in the manufacture of agrochemical active molecules, to specialty resin formulations. Because the pyrrolidine ring shows up in so many bioactive scaffolds, 1-Phenylpyrrolidine remains a staple for both medicinal chemists pushing new frontiers and for industrial process teams fine-tuning established flowsheets. Feedback shapes our controls. For example, we’ve adapted production to match more sensitive synthesis steps that require minimal residual moisture and tighter impurity profiles.

    Key Differences vs Other Pyrrolidines and Amines

    Some chemical buyers glance over phenyl-substituted pyrrolidines as interchangeable with other cyclic amines. Our technical experience tells a different story. The aromatic ring on 1-Phenylpyrrolidine doesn’t just tweak boiling points or flash point data. It influences electron density throughout the molecule, which can make a measurable difference in selectivity and conversion during aromatic substitution or hydrogenation reactions. For teams developing new routes in medicinal chemistry, this simple detail can make or break a path to a better yield or cleaner profile. 1-Phenylpyrrolidine also resists some of the side reactions more common with alkyl pyrrolidines—especially under harsher conditions—providing more predictable outcomes when scaling up a process.

    We’ve previously produced other pyrrolidines, such as N-methylpyrrolidine and N-ethylpyrrolidine. Their roles differ. N-methylpyrrolidine serves well when a less hindered or more basic secondary amine is desirable, but sometimes induces more unwanted N-alkyl side products in selective transformations. The phenyl ring on 1-Phenylpyrrolidine acts as a modulating group, sometimes slowing reactions but often driving cleaner, higher-selectivity outcomes, especially where electronic effects are in play. We catalog performance data for each class of amine so that process chemists receive recommendations based on real reactions we have run, not guesswork.

    Manufacturing Focus: Purity, Safety, Reliability

    Drawing on two decades of experience with nitrogen-containing heterocycles, our manufacturing line for 1-Phenylpyrrolidine runs under a closed, controlled system. Each step, from preparation of the pyrrolidine ring to final batch testing, follows a logic described by the realities of safe, economical production. Maintaining high purity doesn’t just protect customer processes—it protects our team, too. Closed systems minimize exposure during distillation and packing. By keeping analytical quality at the core, we can track even unexpected trace impurities before they become problems.

    Every manufacturer in this space faces challenges—raw material volatility, utility disruptions, and changing regulatory requirements. Our plant has tackled these by forging long-term partnerships with reliable feedstock suppliers and investing in flexible reactor infrastructure that adapts to different batch sizes without cutting corners on temperature control or agitation. Each drum or flask packed receives a batch-specific certificate, but those numbers follow from hours of monitoring and control, not from automation alone. Our staff reviews every lot personally, reflecting the commitment that comes from knowing an end-user might depend on our product’s reliability in a high-stakes synthesis.

    Supporting Customers All the Way to Scale-Up

    As a manufacturer, conversations with customers don’t stop once the quote is accepted. We’ve provided small research lots for screening, and we’ve also geared up to supply hundreds of kilos to industrial plants. Sometimes the most valuable support we provide comes when a customer calls in with a question—maybe solubility in an unusual solvent, or the response to a specific catalyst. Our years of running 1-Phenylpyrrolidine in both batch and continuous systems mean we have encountered these variables ourselves. We talk through solvent compatibility, thermal stability, and waste stream management, offering suggestions built on experience.

    For one recent project, a pharma researcher shared that their process was encountering trace impurity issues at scale. Looking through our own logbooks, we found that a change in a precursor years prior had resulted in a similar impurity spike in one of our campaigns. Working together, we identified the contaminant, traced its root cause upstream, and modified both our and their process protocols. This kind of cross-talk sets direct manufacturers apart from traders and brokers who lack the technical bench strength to follow up after the shipment leaves the dock.

    Beyond the Bottle: Risk, Regulation, and Responsible Manufacturing

    Regulations surrounding compounds like 1-Phenylpyrrolidine change frequently, especially in pharmaceutical supply. Our team actively monitors updates from chemical safety agencies and environmental authorities, adjusting practices before new rules come into force. Responsible manufacturing in our eyes means more than just compliance—it means forecasting changes and lifting standards above the minimum, whether related to effluent treatment or transporter safety.

    Our colleagues see product stewardship as an ongoing project, not a box to check. Every time a drum leaves the plant, its journey is mapped, monitored, and checked against safety best practices, both during packing and in transit. We’ve invested in safer packaging systems for sensitive chemicals—reducing risk of spill or contamination and making both unloading and handling more straightforward for end-users. For 1-Phenylpyrrolidine, we’ve implemented dual-seal closures and inert gas overlays on export drums, solutions that emerged after collaborative troubleshooting with repeat customers facing transit time delays or high humidity.

    Continuous Improvement: Listening to the End User

    Manufacturing experience accumulates in ways that can’t be copied by distributors sitting outside the production process. Each time a researcher or process engineer returns with feedback—positive or critical—we pass that through our monthly review meetings. One feedback loop led us to re-examine a distillation step, which in turn improved the product’s long-term storage profile. Shelf life is a real-world concern: a bottle that yellows or gums up after weeks on the shelf injects risk and cost downstream. So we run real-life storage studies under common customer conditions, not just ideal ones.

    This approach extends to documentation. Regulatory filings require more than minimal compliance, and we’ve reviewed each detail with fine-tooth care, so importers don’t face unnecessary red tape. Many customers have praised the completeness and clarity of our product data, which includes stability profiles, recommendations for safe handling, and batch-specific analytical data collected using up-to-date instrumentation. This commitment reflects not just regulatory necessity but regards for practical use.

    Real Solutions for Real Problems in Sourcing

    Sourcing a niche chemical like 1-Phenylpyrrolidine sometimes means walking a tightrope. Supply chain bottlenecks, hazardous shipment rules, and changing customer needs can all challenge a stable flow of material. Because every step of the compound’s manufacture—from reaction conditions to packaging design—stays within our direct control, we can respond quickly if new challenges crop up. Over the years, we’ve equipped the plant to handle multipurpose operations, so if a customer needs a tailored impurity profile, we don’t need to start from scratch. Our analytical lab can adapt the end-point checks to fit early research or strict regulatory specification.

    One recent challenge came from a customer in an emerging market country who faced strict import regulations. Since our own compliance team monitors shipping and labeling changes, we were able to modify export packaging and provide full traceability without introducing delays. On another occasion, a customer’s scaling schedule accelerated by months, and our flexible batch reactor network meant we could ramp up production in days instead of weeks—something brokers and traders just can’t match.

    Knowing Your Product: The Value of Direct Manufacturing Experience

    There’s no substitute for direct experience at the reactor. Subtle shifts in reaction exotherms or hints of discoloration during purification signal possible hiccups, and these are caught only by teams who spend years running repeat campaigns. That experience drives not just process optimization, but real understanding of product variety. Differences between production runs, effects of storage, tweaks to purification solvents: all these add up to knowledge you just can’t buy in bulk from third-party stockists.

    We keep a library of production notes for each run of 1-Phenylpyrrolidine—a record that informs every new batch and helps trace sources of variability if they arise. The benefit for customers is clear. Any time a process needs repeating or scaling, the team refers back to notes on crystallization conditions, impurity load, and physical changes during standing. This kind of detail supports more reliable downstream use for both research-scale and commercial plants.

    Looking Ahead: Meeting Future Demands Safely and Responsibly

    Manufacturing 1-Phenylpyrrolidine today feels different than it did a decade ago. Demand profiles change, environmental standards keep rising, and new applications emerge regularly. Staying ready for shifting requirements means not just running a plant on autopilot, but building agile processes underpinned by real chemical engineering. Our plant team’s adaptability comes from experience with both smooth campaigns and challenging days.

    Increasingly, more research groups want detailed impurity profiles or are seeking alternatives to hazardous solvents. We run pilot campaigns with customer-requested modifications, providing true custom manufacturing with a foundation in robust process safety. As more industries move toward greener methods, we commit to reviewing and upgrading our chemical processes to reduce waste and minimize risks—starting not in the boardroom, but on the plant floor, side by side with the tech team.

    Conclusion: The Manufacturer’s Difference

    1-Phenylpyrrolidine may seem to some as just another item on a chemical list, but to those who make and use it, it’s a compound with a clear track record of value. Our perspective as a direct manufacturer informs every drum we ship and every answer we offer to our customers. Whether it finds a home in a pharma discovery project or a new agricultural input, 1-Phenylpyrrolidine’s story runs through every part of our plant. Reliable supply, real transparency, and a willingness to adapt—these principles define the path from our manufacturing floor to the chemistry lab, and shape every decision we make about the 1-Phenylpyrrolidine we deliver.