Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

4-(4-Benzylpiperazin-1-Yl)Benzaldehyde

    • Product Name 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde
    • Alias 4-BBP
    • Einecs 678-367-3
    • 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

    687894

    Chemicalname 4-(4-Benzylpiperazin-1-yl)benzaldehyde
    Molecularformula C18H20N2O
    Molecularweight 280.37 g/mol
    Casnumber 134010-44-3
    Smiles C1CN(CCN1CC2=CC=CC=C2)C3=CC=C(C=C3)C=O
    Appearance White to off-white solid
    Solubility Soluble in organic solvents such as DMSO and methanol
    Purity Typically ≥98%
    Storagetemperature 2-8°C (refrigerated)
    Synonyms 1-Benzyl-4-(4-formylphenyl)piperazine
    Iupacname 4-[4-(Benzylpiperazin-1-yl)]benzaldehyde

    As an accredited 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing High-purity 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde, 10g, securely sealed in an amber glass vial with tamper-evident cap for protection.
    Shipping 4-(4-Benzylpiperazin-1-yl)benzaldehyde is shipped in sealed, chemically resistant containers to prevent contamination and degradation. Packaging complies with all relevant chemical transport regulations, ensuring safe transit. Shipments include detailed labeling and documentation, with temperature and handling instructions as required. Delivery typically utilizes trusted couriers specializing in hazardous or specialty chemicals.
    Storage 4-(4-Benzylpiperazin-1-yl)benzaldehyde 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 sources of ignition and incompatible substances such as strong oxidizers. Store at room temperature, and ensure proper chemical labeling and access only to trained personnel. Always follow relevant safety protocols and regulations.
    Application of 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde

    Applications of 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde in Industrial Manufacturing

    As a specialized manufacturer of advanced chemical building blocks, we supply 4-(4-Benzylpiperazin-1-yl)benzaldehyde to global industrial customers who rely on its consistent quality and traceable supply chain for critical downstream applications. This compound serves as a key intermediate in several sectors, each governed by specific process requirements and regulatory frameworks. The following application scenarios demonstrate its established roles across leading fine chemical production routes.

    1. Active Pharmaceutical Ingredient (API) Intermediate Synthesis

    Pharmaceutical synthesis operations integrate this material as a core intermediate in the multi-step preparation of piperazine-derived APIs, especially for psychoactive agents and selective serotonin reuptake inhibitors. Facilities implementing cGMP protocols depend on strict batch traceability and impurity profiling at each stage. In these routes, process engineers adjust input ratios to match reaction kinetics, with attention to residual aldehyde levels in accordance with pharmacopeial thresholds.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • United States Pharmacopeia (USP) Residual Solvents and Impurities Limits
    • European Pharmacopoeia Monographs (Ph. Eur.)
    • FDA 21 CFR Part 211 – CGMP for Finished Pharmaceuticals

    Typical usage ratio

    • 0.8–1.1 molar equivalents relative to amine nucleophile, fine-tuned for reaction yield and to minimize excess aldehyde carryover

    Downstream process integration

    • Introduced in early condensation or reductive amination steps; followed by purification through column chromatography or recrystallization prior to final API formation

    Final product types

    • Piperazine-based psychiatric medications (e.g., antidepressants, antipsychotics)
    • Custom research compounds for neuropharmacology

    2. Advanced Agrochemical Intermediate Manufacturing

    Agrochemical manufacturers utilize this benzaldehyde derivative as a tailored intermediate for synthesizing crop protection actives, especially those featuring piperazine-linked aromatic systems. Compliance with pesticide registration requirements dictates full process traceability, including validation of low-level process impurities in the finished actives, while dosage adjustments may be needed to prevent off-target byproducts in later reactions.

    Industry compliance standards

    • FAO/WHO Technical Specifications for Pesticides
    • REACH Regulation (EC) No 1907/2006
    • OECD Guidelines for the Testing of Chemicals
    • ISO 9001:2015 Quality Management Systems

    Typical usage ratio

    • 0.9–1.2 molar equivalents relative to coupling agent; ratios are tightly managed based on conversion rates and impurity controls specific to synthesis route

    Downstream process integration

    • Addition during condensation or cyclization reactions in multi-step synthesis; further processed by acid or base hydrolysis, then isolated using solvent extraction and crystallization

    Final product types

    • Piperazine-based herbicidal or insecticidal actives
    • Precursor compounds submitted for regulatory evaluation as new pesticide candidates

    3. Specialty Chemical Synthesis for Polymer Modifiers

    Producers of high-performance polymer modifiers leverage this intermediate during the creation of functional additives that impart enhanced thermal or mechanical properties to engineering plastics and elastomers. Process controls focus on achieving complete conversion to avoid unreacted aldehyde, as required by downstream polymer quality assessment. Engineers modulate input ratios depending on desired molecular architecture and performance parameters for specialty resins.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems for Chemical Manufacturing
    • RoHS Directive 2011/65/EU (for electrical/electronic component polymers)
    • Specific customer or end-use industry acceptance specifications
    • ISO 14001:2015 Environmental Management

    Typical usage ratio

    • Typically 0.5–1.0 weight percent in additive precursor formulations, adjusted for target polymer compatibility and functional group density

    Downstream process integration

    • Directly fed to modification reactors where it undergoes coupling or grafting reactions with base polymer chains, followed by blending and extrusion

    Final product types

    • Impact-resistant polyamides and engineered thermoplastics
    • Specialty elastomeric modifiers for automotive and electronic applications

    4. Custom Synthesis of Research Chemicals for Contract Manufacturing Organizations (CMOs)

    Contract research and manufacturing partners request this compound as a defined building block within tailored synthesis campaigns for advanced research reagents and investigational compounds. Projects require strict adherence to international supply chain traceability, and input ratios depend on project-based stoichiometric assessments and scalability studies. Integration occurs in controlled batch or flow chemistry platforms with full analytical characterization at each step.

    Industry compliance standards

    • ISO 13485:2016 (if used in development of diagnostic intermediates)
    • OECD Principles of Good Laboratory Practice (GLP)
    • ISO 9001:2015 Quality Management
    • Material transfer and confidentiality agreements as per customer project

    Typical usage ratio

    • Stoichiometry determined by target molecule synthesis; typically 1.0 equivalent, but scalable from gram to multi-kg according to research contract requirements

    Downstream process integration

    • Supplied to libraries in batch or microfluidic synthesis modules; incorporated in coupling, alkylation, or reductive amination reactions, followed by HPLC or LC-MS verification

    Final product types

    • Reference standards for analytical laboratories
    • Small molecule probes for pre-clinical discovery programs
    • Analytical intermediates for advanced screening libraries

    5. Synthesis of Functional Dyes and Fluorescent Labels

    Specialty dye manufacturers incorporate this building block as a precursor in the synthesis of piperazine-containing dye molecules and fluorescent probes used in biomedical imaging, sensors, and high-throughput screening platforms. Compliance with labeling substance regulations governs process cleanliness and residual impurity controls, with the precursor input selected based on chromophore design and functionalization demands.

    Industry compliance standards

    • ISO 17025:2017 (Testing and calibration laboratories)
    • REACH Regulation (Annex XVII for hazardous substances in dyes)
    • OECD Test Guidelines for Chemicals for dye toxicity
    • Customer validation protocols for analytical reagents

    Typical usage ratio

    • 0.7–1.0 molar equivalent, relative to chromophore core structure, dependent on desired linker length and reactivity

    Downstream process integration

    • Entering coupling reactions for tuning dye backbone properties, followed by purification via preparative liquid chromatography, then functionalization for bioconjugation where applicable

    Final product types

    • Fluorescent dye molecules for bioimaging
    • Custom-labeled probes for diagnostics and assays
    Free Quote

    Competitive 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    4-(4-Benzylpiperazin-1-Yl)Benzaldehyde: A Manufacturer’s Perspective

    Crafting 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde on the Production Floor

    Anyone who stands behind chemical reactors every day gains a feel for what makes a material dependable. Over the years, we have witnessed shifts in pharmaceutical intermediates and specialty molecules. 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde, known in many labs as an essential scaffold for new molecular frameworks, has steadily found its place as a workhorse in our catalog—not just as a theoretical reagent, but as a compound we’ve poured genuine experience into perfecting. This product, which we produce under tightly controlled lots, comes into its own during its role in the synthesis of advanced pharmaceuticals, research reagents, and fine chemicals.

    Our Model of Consistency and Quality

    Whenever we set out a new batch of 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde, the process starts with raw materials we source only after a thorough evaluation. Specific gravity checks, melting point calibrations, and batch-to-batch impurity profiling keep our production team alert. Each sample is examined by HPLC and NMR before moving to downstream blending and drying. This rigorous benchwork finds its way into the purity levels our customers expect, typically exceeding thresholds demanded in custom synthesis projects. We do not chase unworkable specs for show; our team pursues meaningful numbers. We know that even a trace contaminant can knot up downstream processes, especially where these intermediates meet chiral catalysts or sensitive functional groups.

    Customers often approach us with a request for our typical crystalline form. In practice, our product arrives as a pale to off-white solid, known for its stability when stored correctly in dry, inert conditions. Shelf life stands out as a quiet factor. What use is a kilo of intermediate if it degrades before reaching the reactor? We pay close attention to packaging—desiccant-sealed, amber jars, or bulk double-lined bags—so that our clients aren’t left holding compromised stock midway through synthesis.

    Experience from the Factory Floor

    Our staff sees the fine line between laboratory promise and production reality. Synthetic routes adopted from literature rarely scale up without a hitch. By the time we finish a full run, solvent recovery, and crystallization, we’ve logged hours tweaking and tightening parameters. Weeks spent minimizing byproduct formation, improving filtration, and maintaining reaction temperatures have given us deep insight into the practical manufacture of this molecule.

    Over the years, our batch records reveal honest challenges. Dense slurries, inconsistent crystal growth, and persistent mother liquors are part of the story. Every lot gets tracked for trace solvents, color retention, weight loss on drying, and particulate load. Many improvements, such as pre-filtering solvents or optimizing pH at precise intervals, were born directly from solving problems for this specific compound.

    The Compound and Its Real-World Uses

    4-(4-Benzylpiperazin-1-Yl)Benzaldehyde stands out in chemical pipelines for one reason: versatility in downstream transformations. From our own client network, this intermediate appears in routes leading toward anti-infective drugs, ligands for complexation chemistry, and precursors for CNS-active molecules. In combinatorial libraries, the piperazine core joined to a benzaldehyde handle opens space for countless modifications. Medicinal chemists sometimes call for this scaffold in gram quantities to explore SAR in both small-molecule and bioconjugation research.

    Beyond pharmaceutical research, we have encountered requests from the agrochemical sector as well. The same chemical backbone aids in constructing certain crop protection candidates, giving us the opportunity to work with safety and regulatory documentation for new application areas. Every time an industry pivots toward novel, patentable structures, intermediates like these stay in steady demand. We have seen that the product’s value lies not only in its purity and reactivity but the ability for us as the manufacturer to offer documentation, reanalysis, and technical troubleshooting when something in a customer’s campaign veers from plan.

    Differences That Set High-Quality Production Apart

    Not all 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde is the same. There are more than a few stories circulating among synthetic chemists about cheap consignments that turned out to be contaminated or prone to decomposition. It only takes one incident where a poorly purified batch derails a synthetic sequence for customers to look for a partner invested in manufacturing rather than trading.

    We draw our line at trace metal content and process impurities. In our experience, unvetted suppliers or bulk reorderers rarely maintain upstream transparency. Residual starting materials, secondary amines, or uncontrolled oxidants can undermine both reproducibility and safety. Whether our downstream user stands in a preclinical discovery unit or a production pilot plant, they often depend on subtle parameters most distributors overlook. In cases where scale-up teams have flagged unwanted reactions or product instability, we have collaborated to trace the origin—sometimes looping back to a minute variation in the input piperazine or an overlooked water entrainment in a co-solvent. These lessons shape each following run, reducing the odds of repeat failure.

    Why Rigorous Testing Outranks Labels and Paperwork

    Each kilogram of 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde dispatched from us passes a series of actual, provable tests. Spectral analysis includes both proton and carbon NMR, and we make it a point to double-check peak assignments to avoid mislabeling. TLC and HPLC scans detect major and minor components, while our GC-MS screens for low-level contaminants. Melting point consistency can be an early warning sign of deviation, so variance across batches meets strict limits.

    A recurring tale in the field involves purchased material that matched its paperwork but failed in the customer’s hands. We have spent time cross-verifying our findings with client labs, ensuring that impurities remain controlled, and documenting each deviation meticulously. This habit of real, ongoing communication has often prevented unnecessary rework for both sides. Our after-sale role does not stop at the bill of lading. If a batch goes astray or a parameter drifts, we see it as a chance to deepen trust and make the next process run with fewer snags.

    Supporting User Research and Customization

    We treat each inquiry for 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde as a chance to learn more about how the compound operates across different reaction environments. Some customers ask for modifications in particle size or to ship under argon, which we accommodate based on our own handling data. Adjusting granulation or format happens not out of speculation, but from years of customer feedback. Batches intended for high-throughput screening platforms are sifted on tighter mesh, while those destined for multi-kilo scale receive extended vacuum drying cycles. With every request, we draw on feedback from prior collaborations, not anonymous spec sheets.

    Our customer service lines are staffed by chemists who have a direct link to the production team—this avoids translation errors that so often plague third-party brokers. When a synthesis hiccup occurs at the customer’s site, our own analysts work through potential sources alongside the client’s research staff, providing batch chromatograms and impurity profiles as needed.

    Comparing Our Product to Other Piperazine-Class Intermediates

    Chemists looking for benzylpiperazine derivatives often encounter a wide array of similarly named compounds. In our experience, small structural shifts such as switching from a benzaldehyde ending to a simple methyl group can swing reactivity and selectivity in radical ways. The 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde structure, in particular, accepts further functionalization without excessive byproduct formation.

    During scale-up, we have noticed that benzylpiperazine-based aldehydes offer predictable condensation behavior, whether in aqueous or organic systems. This contrasts sharply with less-substituted analogs prone to side reactions or polymerization. We see fewer surprises in work-up—a win for research chemists pressed for timelines. In cases where alternative aldehyde intermediates have failed, our version has pulled through with higher conversion and cleaner profiles, saving both solvent and labor in downstream separations.

    Some products in this chemical class arrive from sources that cut steps on drying or accept variable moisture content. We have chosen to reject those shortcuts. Our analytics flag deviations quickly, and repeated validation during storage and transit ensures that customers receive the material in its prime. Variability in melting range or off-notes in appearance signal issues that would never meet our minimum batch release targets.

    Lessons from the Production Team: Repeated Challenges and Solutions

    The journey to reliable 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde did not travel in a straight line. Solubility alone presented hurdles, especially during initial filtration trials. We spent days testing solvent blends and filtration media to trap elusive fines without losing yield.

    Early on, formation of tar-like side products threatened to gum up entire vessel runs. Tweaking reagent addition rates and integrating staggered temperature profiles resolved much of it over months of iterative improvement. Problems like residual mother liquor contamination led us to develop a vacuum oven cycle that actually shaved hours from post-processing and delivered consistently dry product.

    From a safety perspective, piperazine-class intermediates demanded improved ventilation and real-time monitoring of pressure swings. Our plant routinely updates closed-system handling protocols, keeping exposure risk low for the workforce while maintaining the integrity of the compound.

    Another obstacle surfaced during scale increases, as small changes in agitation sometimes skewed crystal size distribution. Today, we use in-line particle monitoring, catching drift immediately. These investments did not arrive because a sales pitch required them, but because every setback forced closer inspection and smarter controls.

    Direct Manufacturer Support: What It Means for Customers

    Sourcing straight from the manufacturer brings particular benefits for technical buyers and scientists. We have learned that reliable access to chemist-to-chemist dialogue often changes outcomes more than any written guarantee. Adjusting specifications, chasing down source variability, and answering deep technical questions happens more smoothly without layers of brokers or resellers.

    Customers draw on our bench notes, chromatograms, historic QC sheets, and application insights built over years of cooperation. Requests for milligram samples often come directly from research groups needing quick validation. Bulk users in pharmaceuticals and fine chemicals rely on our ability to reproduce quality at 10x or 100x scale, supported by robust documentation and a true understanding of practical synthesis obstacles.

    Environmental and Safety Considerations

    Running a responsible plant means attention to regulatory and environmental standards. Our routes for 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde increasingly optimize for cleaner processes. Implementing solvent recycling, reducing energy usage, and treating waste—these moves grow from both compliance needs and our belief in keeping local impact low.

    Operators receive ongoing training and support from management; safety culture runs deep because real-world incidents are costly. Details like reaction quenching protocols or exhaust scrubbing impact the bottom line only after an event, but a smart manufacturer invests before the lesson proves expensive. We share this perspective with customers facing their own internal audits or compliance uncertainties, supporting joint efforts to minimize risk.

    R&D Partnerships and Developing Next-Generation Materials

    Research labs have begun pushing 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde into phases far beyond legacy pharmaceuticals. We have tracked interest from materials science, particularly in supramolecular assemblies and as templates for new polymer backbones. Each new request tests our adaptability, prompting reformulation or process changes as novel applications emerge.

    Collaborative projects—sometimes with clients, other times driven by our in-house chemists—have led to process patent filings and leaner syntheses. The resulting feedback loop keeps our standards moving beyond current benchmarks. Applications in diagnostic chemistry and as cross-linkers for advanced imaging tools underline the molecule’s reach and the opportunity for future growth.

    Real-World Impact for the End User

    The journey of 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde does not end at QC release or container filling. True value emerges as end-users push their research, encountering setbacks and breakthroughs that loop back as new production challenges. We measure our success not just by certificates and batch yields, but in the grounded conversations and partnerships formed along the way. As a manufacturer, engaging directly with those who depend on this material for drug discovery or breakthrough chemical research is both our motivation and reward.

    Customers have shared outcomes where a clean, robust intermediate marked the difference between a stalled grant proposal and an unexpected advance. Such stories drive us to keep refining every aspect of manufacture, never forgetting that each batch contributes to a larger field of discovery.

    What Sets a Manufacturer Apart: Listening and Evolving

    Decades of producing specialty chemicals like 4-(4-Benzylpiperazin-1-Yl)Benzaldehyde have taught us the value of listening to feedback with clarity and humility. Staying close to both client and chemist needs has helped us lead not as a faceless supplier, but as a responsive partner. We know the pride and pressure that rides every container shipped. As applications expand and the needs of the research world evolve, we adapt in stride, always grounded by our commitment to practical excellence.

    In the end, this compound is more than just another line in a catalog. For us, every batch echoes the problem-solving, attention to detail, and quiet innovation that define what it means to manufacture chemicals for real-world progress.