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4-Piperidinopiperidine

    • Product Name 4-Piperidinopiperidine
    • Alias 1,4'-Bipiperidine
    • Einecs 240-970-6
    • 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

    877643

    Cas Number 33052-16-9
    Molecular Formula C10H20N2
    Molecular Weight 168.28
    Appearance Colorless to pale yellow liquid
    Boiling Point 263-265°C
    Density 0.941 g/mL at 25°C
    Melting Point -33°C
    Solubility In Water Soluble
    Refractive Index 1.489
    Flash Point 120°C
    Iupac Name 4-piperidin-1-ylpiperidine
    Smiles C1CNCCC1N2CCCC2
    Pubchem Cid 238945

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

    Packing & Storage
    Packing The 4-Piperidinopiperidine is packaged in a sealed 100g amber glass bottle with safety labeling, hazard warnings, and batch information.
    Shipping 4-Piperidinopiperidine is shipped in tightly sealed containers to prevent moisture and contamination. It is typically transported as a liquid or solid under controlled temperature conditions, following all regulations for hazardous chemicals. Proper labeling, documentation, and handling procedures are adhered to ensure safety during transit and compliance with international shipping standards.
    Storage 4-Piperidinopiperidine should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizing agents. Protect it from moisture and direct sunlight. Ensure storage areas are equipped with spill containment and are clearly labeled. Handle using appropriate personal protective equipment to prevent exposure.
    Application of 4-Piperidinopiperidine

    Applications of 4-Piperidinopiperidine in Industrial Manufacturing

    Our 4-Piperidinopiperidine is produced to high purity standards for use in specialized industrial sectors. The following sections detail specific downstream applications where this intermediate is integral to advanced chemical synthesis and manufacturing processes.

    1. Pharmaceutical API Synthesis: Targeted Antipsychotic Drug Intermediates

    4-Piperidinopiperidine is widely applied in the multi-step synthesis of active pharmaceutical ingredient (API) intermediates for antipsychotic therapies. Production facilities use this raw material in controlled reaction steps, often during reductive amination or cyclization, to achieve precise molecular configuration required for psychoactive compounds. It serves as a core building block in the manufacture of several high-potency drug candidates, where batch documentation and traceability are mandatory for regulatory approval. Downstream users tailor reaction conditions based on purity profile and impurity control, adjusting the feedstock ratio according to desired yield and regulatory thresholds.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice (GMP) for Active Pharmaceutical Ingredients
    • 21 CFR Part 211 (US FDA regulatory requirements)
    • EU GMP Annex 1 and 13
    • Chinese Pharmacopoeia: API manufacturing specifications

    Typical usage ratio

    • Mol ratio of 4-Piperidinopiperidine to primary reactants: 1.05–1.2:1, adjusted according to API step conversion efficiency and batch scale

    Downstream process integration

    • Used during amine incorporation stages before final compound purification (usually Step 2 or 3 in up to 8-step syntheses)

    Final product types

    • Antipsychotic APIs (such as related to arylpiperazine families)
    • Intermediates for neuroleptic drug synthesis
    • Finished final API for pharmaceutical compounding

    2. Custom Agrochemical Intermediate Manufacturing for Advanced Crop Protection

    Industrial formulators utilize 4-Piperidinopiperidine in the synthesis of advanced piperidine-based agrochemical intermediates. Its structure enables selective reaction with specific acylating agents to yield key building blocks for insecticides and herbicides. Production line operators adhere to environmental emission standards during closed-system handling, and the raw material is fed in measured ratios to support precise molecular engineering toward targeted activity profiles. Quality assurance teams frequently validate incoming purity per lot and monitor reaction endpoints for reproducibility.

    Industry compliance standards

    • ISO 9001:2015 certified production
    • REACH Registration, Evaluation, Authorization, and Restriction of Chemicals (EU)
    • China Ministry of Agriculture: Pesticide MI Regulations

    Typical usage ratio

    • 5–15% by weight as a key precursor in multi-component batch reactors, fine-tuned based on targeted active content

    Downstream process integration

    • Charged in the acylation or alkylation step, preceding formulation of technical concentrate for crop protection products

    Final product types

    • Piperidine-based insecticide intermediates
    • Herbicide precursor compounds
    • Technical-grade crop protection concentrates for further formulation

    3. Chemical R&D and Contract Development for Fine Chemicals

    R&D groups in the fine chemical sector source our 4-Piperidinopiperidine for exploratory synthesis of novel heterocyclic molecules and process optimization projects. Chemists deploy this intermediate in pilot studies that involve nucleophilic substitutions, cyclizations, or as a condensation partner. Researchers document all procedural modifications to comply with contractual quality benchmarks and internal screening protocols. During early-stage scale-up, teams adjust charge ratios to balance between research objectives and downstream scalability for further commercial manufacturing.

    Industry compliance standards

    • GLP (Good Laboratory Practice) guidelines—OECD principles
    • ISO/IEC 17025:2017 laboratory accreditation
    • Internal process validation and documentation SOPs for contract development

    Typical usage ratio

    • 0.1–5.0 molar equivalents, dependent on experimental design and yield optimization studies

    Downstream process integration

    • Introduced at early synthesis phase of novel compound development or during library creation for lead optimization

    Final product types

    • Small molecular building blocks for further functionalization
    • Lead molecules for chemical screening programs
    • Analytical standards and research intermediates

    4. Specialty Polymer Modifier Synthesis for Advanced Material Applications

    Production teams at specialty polymer plants use 4-Piperidinopiperidine as a functional monomer modifier to engineer polymer chains for increased stability or reactivity. The intermediate is introduced under specific reaction conditions to initiate molecular bonding, granting distinctive mechanical or chemical attributes in the final polymer matrix. Compounders maintain lot-specific traceability and monitor in-process parameters to adhere to technical datasheet requirements and ensure regulatory documentation for export or high-performance end use.

    Industry compliance standards

    • ISO 14001 Environmental Management Systems (for regulated emissions and waste handling)
    • RoHS Directive 2011/65/EU (for electronics–grade polymers)
    • UL 94 Flammability tests for polymer products

    Typical usage ratio

    • 0.5–2.5% by weight as a chain modifier or crosslinking agent; final ratio set during process validation based on performance targets

    Downstream process integration

    • Introduced at pre-polymerization or during post-polymer modification stage for value-added material properties

    Final product types

    • Specialty plastics and elastomers
    • Functionalized resins for electronic components
    • Reactive polymer precursors for advanced composites

    5. Active Catalyst Ligand Precursor for Homogeneous Catalysis

    Catalysis technology centers integrate 4-Piperidinopiperidine as a starting reagent to construct complex ligand systems for transition metal catalyzed reactions. The compound supports precise ligand architecture that modulates catalyst behavior in fine chemical or pharmaceutical synthesis. Process chemists ensure controlled addition and real-time monitoring of reaction kinetics, maintaining dosage within tightly regulated specifications to avoid byproduct formation and achieve target catalysis performance.

    Industry compliance standards

    • ISO 9001:2015 certified QC for chemical process inputs
    • OECD chemical safety requirements
    • Hazardous substance labeling per GHS/CLP EU Regulation No 1272/2008

    Typical usage ratio

    • Stochiometric or sub-stochiometric ratio, typically 0.8–1.1 equivalents, depending on catalyst framework design

    Downstream process integration

    • Charged during ligand synthesis prior to metal complexation, or as a co-reactant in catalyst precursor formation

    Final product types

    • Custom ligands for homogeneous catalytic processes
    • Transition metal catalyst systems for process intensification
    • Enantioselective catalyst formulations for advanced organic synthesis
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    Certification & Compliance
    More Introduction

    4-Piperidinopiperidine: Experience-Driven Manufacturing for Advanced Synthesis

    A Manufacturer’s Perspective on 4-Piperidinopiperidine

    Working daily among reactors, glassware, and constant monitoring systems, we understand the significance of every intermediate and catalyst that goes into pharmaceutical and agrochemical synthesis. 4-Piperidinopiperidine (CAS No. 22990-77-8) stands out in our line-up due to both its versatility and the demand for strict quality standards. In our shop, batches of 4-Piperidinopiperidine are produced only after meeting a disciplined approval process that includes GC-MS, NMR, HPLC, and water content checks, as each property affects the downstream chemistry in unforgiving ways. In the real world of laboratory work and scale-up reactions, even minor impurities can trigger expensive troubleshooting or wreck entire project timelines. We’ve seen firsthand how keeping impurities out keeps costs down for everyone using this compound.

    How We Approach 4-Piperidinopiperidine Production

    Our approach to producing 4-Piperidinopiperidine comes from years of handling delicate N-heterocyclic compounds. Our crew pays close attention to temperature, pressure, and the purity of starting reagents, knowing each parameter can affect yield, color, and ease of downstream handling. Typical product specifications align at over 98% (by GC), as lower purities end up complicating customers’ alkylation or amination steps. From synthesis to work-up, the focus centers not only on endpoint purity but also minimizing tricky by-products. Storage and transport get the same care; contamination and moisture uptake are controlled through all steps for consistent, repeatable performance.

    Model, Specifications, and Batch Consistency

    For 4-Piperidinopiperidine, we manufacture both multi-kilogram lots for pilot plant work and smaller high-purity batches for research institutions. Each batch runs against an agreed, published analytical target: GC content above 98%, single-digit ppm residual solvents, and moisture below 0.1%. We don’t leave behind variable product—scientists and process engineers expect to pull the next drum or bottle off the shelf and have it deliver as last time. The problem with looser production standards becomes clear if a user’s yield drops or reaction times start to stretch across different sources of material. We test for elemental content and key trace metals, since some catalytic hydrogenations or metal-mediated steps amplify even minute contamination. Extra attention gets paid to color and physical state as well, since these often hint at deeper QC issues and can point to shelf-life or degradation questioning.

    Down-to-Earth Uses: Focusing on Real-Life Workflows

    4-Piperidinopiperidine features a core structure that supports the development of piperidine-based active pharmaceutical ingredients (APIs). Teams in both large R&D labs and smaller contract research organizations often use it as a robust base or nucleophile, pairing it in alkylations or as a modulator in the synthesis of proprietary CNS-acting compounds. Some custom synthesis jobs require large-scale runs for crop science companies looking to trial novel herbicidal scaffolds, while others need just enough for a test batch of an opioid antagonist or neuroactive candidate. We’ve observed the molecule’s ease of solubility in common organic solvents saves time during work-ups and allows customers to skip unnecessary purification cycles.

    Frequently, 4-Piperidinopiperidine functions as an efficient intermediate: it can cap reactive intermediates or block positions, enabling selective downstream transformations. That efficiency depends on limits to unknown peaks and trace impurities; poor material invites purification headaches, especially in medicinal chemistry campaigns chasing extremely pure end-products. Unnecessary time spent cleaning up reaction mixtures costs far more in labor and solvents than any saving on cheaper, unreliable starting material. Researchers in our customer base let us know if color, odor, or even subtle viscosity shifts occur, and we adjust accordingly based on experience running the same processes ourselves. The value of direct feedback runs deep. Compounds like this—where safety, reliability, and yield interact—benefit from attention at every handling stage, from drying through packaging and shipping.

    Comparing Across Synthetic Intermediates: What Makes 4-Piperidinopiperidine Distinct

    It’s easy for people outside the lab to lump all piperidines together, but in practice, the reactivity profile, handling qualities, and application space for 4-Piperidinopiperidine differ from other piperidine structures. Unlike mono-substituted derivatives, the bis-heterocyclic core offers both rigidity and a nitrogen profile that makes it an adaptable ligand. Its stability under storage and mild basicity help prevent side reactions during multi-step routes—an advantage over less stable or more reactive amines that foul glassware or leave behind sticky residues. With experience in handling compounds like N-methylpiperidine, we notice markedly fewer complaints from shipping and storage when dealing with the dimeric profile of 4-Piperidinopiperidine.

    In our own kilo-scale runs, 4-Piperidinopiperidine advances through isolation, drying, and bottling without the pronounced amine odor that makes packaging and workplace safety more challenging with other alkylating reagents. Unlike some oxidizable piperidine derivatives, it holds up better when exposed to air or moisture, provided reasonable industrial controls. This saves users from wasting time on pre-drying steps or working under nitrogen unnecessarily. For process chemists developing scale-up routes for new API syntheses or specialty materials, predictability in both chemical and physical properties ensures fewer delays in regulatory filings and downstream synthesis. These advantages only appear for customers when the molecule’s made with diligence rooted in firsthand experience.

    From Small Lab Preparations to Process-Scale Delivery

    Every week, requests come in for everything from grams to multiple barrels, with requirements depending on whether the goal is exploratory research or full process validation. We’ve set up flexible finishing and packaging lines based on hands-on lessons from failed packaging trials and lessons from partner feedback. Some partners in the pharmaceutical industry demand 4-Piperidinopiperidine in pre-parcelled, nitrogen-purged ampoules to support sensitive reactions; others want drum-scale deliveries short-notice for batch production. Each approach means resolving shelf-life queries and knowing that even a trace of solvent or water can upend scale-up work. In each case, our shipping and packaging teams aim to keep materials as close to their freshly prepared state as possible, using moisture-barrier liners and desiccant-packed containers that get checked for sound seals before they head out the door.

    We’ve helped process chemists avoid problems that show up only after a few weeks of storage, or after opening older containers where absorption or cross-contamination sneaks in. The longer experience is, the more obvious why a manufacturing partner must give thought to these practical chemical realities, not just theoretical models or data sheets. Seeing a customer’s entire synthetic sequence through, rather than dumping a product file over the wall, saves time, money, and fosters trust in the supply chain. Teams who know the people making their raw materials don’t get left solving problems alone.

    Overcoming Hurdles: Reactivity, Safety, and Regulatory Questions

    Manufacturing staff and chemists alike have a healthy respect for the energy N-heterocycles can store if mishandled. While 4-Piperidinopiperidine is less volatile and less hazardous than some smaller piperidine amines, procedures account for strong odor, toxicity at high exposures, and issues with open handling during summer months or in places with high humidity. We monitor environmental controls and provide equipment for safe weighing and transfer, both in our facilities and through shared best practices with users. This isn’t theory—many of us have experienced firsthand how robust PPE protocols prevent minor accidents from turning into costly incidents.

    Whether moving from bench-scale to pilot scale, questions turn up regarding the regulatory status of intermediates, documentation for traceability, and support data for filings. Our in-house team manages batch records and quality documentation with the same mindset used in regulated pharmaceutical supply chains. It’s not unheard of for regulators to ask for several years of retained samples or chain-of-custody records, especially in higher-risk or export-restricted markets. Batch-to-batch traceability becomes a task built into routine manufacturing, not a last-minute paperwork scrabble.

    What Makes a Reliable Manufacturer for 4-Piperidinopiperidine

    Our guiding philosophy isn’t built on marketing buzzwords, but on practical outcomes measured by chemists relying on each delivery. Questions about how even minor impurities could affect catalysis, or how minor handling mistakes can translate into costly downtime, motivate a culture of constant vigilance. Manufacturing is a long game, measured in repeat business and minimal complaints. If a client flags an outlier result—say, a bad color or an unexpected GC peak—we trace back to raw input lot records and production logs instead of sending back generic apologies or blaming external factors.

    Trust only builds by fixing problems and making incremental improvements batch after batch. Our staff keeps in regular contact with several medicinal chemistry and agrochemical customers, learning from the real-world consequences and successes they report. These conversations help us refine both our own processes and the way we advise new users adopting or substituting 4-Piperidinopiperidine for other similar building blocks.

    Supporting Efficient and Safe Chemical Synthesis

    Customers often ask about how to get the most out of their 4-Piperidinopiperidine applications in different reaction conditions. We take time to debrief on compatibility with a range of solvents and reactants, reporting issues seen and solved in our own pilot trials. It’s not enough to ship catalog material; deeper support now sets the model for how advanced intermediates keep pace with evolving pharmaceutical, chemical, and materials science needs. Knowing common user pain points—such as the need to monitor exotherms in large-alkylation reactions, or the need for rapid quenching protocols—draws on long-term knowledge cycles that only manufacturers engaged directly with their material can provide.

    Allowing for scale-up from grams to multi-kilogram output, while retaining clean spectra and low residuals, helped several pharma partners move through early-stage regulatory hurdles and filament projects. Our teams have collaborated on DOE (Design of Experiment) projects, mapping how varying temperature, time, and reagent ratios impact performance—not just in our facility, but in the customer’s own reactors. These applied studies allow us to recommend optimal reaction conditions based on hard results, not rough estimates, which cuts down guesswork and waste.

    Continuous Improvement: Future-Proofing 4-Piperidinopiperidine Output

    Work doesn’t stop with a compliant batch and a happy customer. Every cycle, we challenge both raw material sources and internal synthetic methodologies, staying alert for smarter process improvements, sustainable route alternatives, or upgrades to analytical tools. Newer routes may emerge that improve atom economy or waste management, and we actively monitor technical developments, ready to integrate those that offer clear production or performance advantages.

    Recent conversations with customers have pushed us to develop packaging that better protects product through bulk transit and long-term storage. We continue to upgrade cold-storage logistics, and our QA team routinely mines old quality records and client feedback to spot small shifts before they grow into costly problems. Lessons learned from previous production upsets inform operator training, so the whole manufacturing floor understands both the why and the how behind every critical control point.

    Impact on End-Use Sectors and Innovation Pipelines

    4-Piperidinopiperidine draws consistent demand because it supports not only lead optimization in drug discovery and fine chemical synthesis, but also advances new target design in material science. Our long-term users include multinational pharmaceutical companies developing next-gen CNS drugs, as well as nimble start-ups pushing new agricultural actives. Academic research groups trust our ability to keep shipments within contract deadlines, knowing the quality holds up for structural studies and early-stage biological screening.

    In several long-running projects, we’ve witnessed how a superior supply of this molecule enables team to shift faster between analog portfolios or trial new building block combinations without the lamentable delays that follow inconsistent raw materials. Reliability isn’t just a claim—it’s visible in shorter lead times for IND-enabling batches, and in real-world data from colleagues getting better reaction yields in their programs. For US and European partners constrained by regional regulations or supply chain volatility, sourcing from an experienced manufacturer creates more certainty.

    Laypeople sometimes overlook the importance of these mid-tier intermediates, focusing only on end-use pharmaceuticals or active ingredients. Nearly every successful molecule begins with reliable, routine chemistry carried out on dozens to hundreds of grams, and only molecules that perform at every step ever make it out of process chemistry labs or pilot plants. The most compelling technical arguments for a strong manufacturing partner come not from marketing, but from clear troubleshooting support, consistent product, and openness to honest continuous improvement.

    Troubleshooting, Solutions, and Customer Experience

    Every productive relationship is built around preventing issues and solving those that do arise, no matter the scale. Over the years, we’ve encountered every common question, from solubility problems during scaling, to troubleshooting discolored batches or identifying trace residue sources post-reaction. Quick solutions draw on tested SOPs and on-site access to both production and analytical personnel, rather than offshoring answers or deflecting responsibility.

    Some of the most valuable business we’ve earned has come through biting the bullet on urgent, pain-in-the-neck troubleshooting. Chemists call us directly for help with crystallinity, unexpected reaction speeds, or shelf-life shortfalls. We address these in real-time, drawing on the lab’s hands-on records and field feedback, not just desk research. If a customer’s process or plant needs to adjust order rhythm or storage format—say, due to a regulatory change, or a process revalidation—we help transition without interruption. In cases where the production process needs a tweak based on new technical insight, we bring in our own development chemists and process engineers, offering doable changes rather than restrictive policies.

    We view the technical files on 4-Piperidinopiperidine as living documents. Each record, each data point, and each bit of customer input gets looped back into the improvement cycle, because real-world use always outpaces what a static product description could anticipate. Long-term reliability grows out of this kind of learning, not from generic copy or handwaving at specifications.

    Looking Ahead: Strategic Supply Chain Partnerships

    As shifts in global chemical regulation and supply chains accelerate, pairing up directly with an experienced manufacturer matters more than ever. A proven record across production batches, a willingness to work through last-minute changes, and the technical skill to both anticipate and resolve route-specific challenges mean less waste, more cost savings, and better timing for every program downstream. For teams building pipelines in pharma, specialty chemicals, or advanced materials, the cumulative effect of these practical advantages shows up in both better daily results and long-term project outcomes.

    Real improvement in chemical manufacturing rarely comes from slogans or claims. It builds instead from the people, processes, and lessons applied batch after batch. For 4-Piperidinopiperidine, experience keeps raising the bar—delivering a specialty intermediate that can flex across research needs, scale-up campaigns, and risk mitigation efforts alike.