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HS Code |
509890 |
| Chemical Name | 1,3-Bis(4-piperidyl)propane |
| Cas Number | 39512-49-3 |
| Molecular Formula | C13H26N2 |
| Molecular Weight | 210.36 |
| Appearance | White to off-white solid |
| Melting Point | 108-111 °C |
| Solubility | Soluble in organic solvents (e.g., ethanol, DMSO) |
| Purity | Typically >98% |
| Smiles | C1CCN(CC1)CCCN2CCC(CC2) |
| Inchi | InChI=1S/C13H26N2/c1-3-9-15(10-4-1)13-11-12-14-7-5-2-6-8-14/h14H,1-13H2 |
| Storage Conditions | Store at room temperature, in a dry, well-ventilated place |
As an accredited 1,3-Bis(4-Piperidyl)Propane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The 25g 1,3-Bis(4-Piperidyl)Propane is securely sealed in a labeled amber glass bottle with tamper-evident cap. |
| Shipping | 1,3-Bis(4-Piperidyl)Propane is shipped in tightly sealed containers, protected from light, moisture, and incompatible substances. During transit, temperature should be controlled as specified by the manufacturer, ensuring the material is secure and properly labeled according to applicable chemical and transport regulations. Handle with appropriate safety precautions to prevent leaks or spills. |
| Storage | Store 1,3-Bis(4-Piperidyl)propane in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizers. Keep the container tightly closed and protected from moisture. Use chemical-resistant containers. Avoid exposure to direct sunlight and sources of ignition. Properly label the storage container and ensure access is restricted to trained personnel using appropriate personal protective equipment. |
Applications of 1,3-Bis(4-Piperidyl)Propane in Industrial Manufacturing1,3-Bis(4-Piperidyl)Propane serves as a critical intermediate for specialty chemical production in selected industrial sectors. The applications below reflect verified, large-scale downstream uses based on formulation requirements, industry compliance, and modern factory process integration. 1. Pharmaceutical Active Pharmaceutical Ingredient (API) SynthesisOur material functions as an essential building block in the synthesis of advanced pharmaceutical intermediates, particularly for central nervous system (CNS) agents and muscle relaxants. Manufacturers use it for piperidine-structured pharmaceuticals, integrating the intermediate during multi-step synthesis to provide specific molecular frameworks that are difficult to construct by alternative means. Selection of the raw material batch directly affects reaction yield and end-product impurity profiles, demanding high consistency and purity at kilogram to ton scale. Industry compliance standards
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2. Manufacturing of Quaternary Ammonium Antimicrobial AgentsThe compound is utilized for producing bespoke quaternary ammonium salts used as core ingredients in antimicrobial and biocidal formulations for healthcare, textile, and industrial surface treatment. It reacts with alkylating agents to introduce long-chain substituents, integrating antimicrobial functions into polymer backbones or as independent actives in disinfection systems. The proportion in synthesis correlates with the targeted chain length and regulatory-driven potency requirements. Industry compliance standards
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3. Polymer Crosslinker for Specialty CoatingsChemical processors use this piperidine-based intermediate as a crosslinking monomer in the production of high-performance polyurethane and epoxy coatings. Its dual piperidine structure enables multiple attachment points, providing tailored flexibility and chemical resistance required for protective finishes in electronics, automotive, and high-traffic flooring sectors. Quality control laboratories validate integration by gel permeation chromatography (GPC) and mechanical testing of cured films. Industry compliance standards
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4. Chemical Intermediate for Agrochemical SynthesisMajor agrochemical manufacturers incorporate this intermediate during the multi-stage synthesis of selected herbicide and insecticide actives, especially for piperidine-ring systems where controlled reactivity is required. The product’s high purity is essential in minimizing crop residue concerns and meeting global regulatory limits for active impurities in the final product batch. Industry compliance standards
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5. Synthesis of Specialty Catalysts for Polyolefin ProductionThe compound’s nitrogenous structure allows its use as a ligand precursor in customized catalyst systems for certain Ziegler–Natta and metallocene catalyst platforms. Polyolefin manufacturers employ it to adjust catalyst support morphology or introduce steric effects that control polymer molecular weight distribution during gas-phase or slurry-phase polymerizations. Precise formulation is critical, with real-time plant monitoring ensuring batch-to-batch consistency and catalyst activity. Industry compliance standards
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6. Precursor for Lightfastness Improvers in Polymer StabilizersProducers of hindered amine light stabilizers (HALS) utilize this compound as a core ingredient for synthesizing piperidine-functionalized light stabilizer monomers. It supports the production of additives that extend weathering resistance in automotive plastics, outdoor cables, and agricultural films. Downstream processors rely on consistent quality to avoid yellowing and mechanical degradation in finished polymers exposed to UV radiation. Industry compliance standards
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1,3-Bis(4-Piperidyl)Propane doesn’t typically grab headlines, but over several years of producing this specialty compound, I’ve seen how industry demands and research trends shape both the chemistry and utility of such molecules. In chemical manufacturing, practical exposure often tells more than product brochures and sales pitches might suggest. Our goal is to bridge real-world performance with reliable supply, and 1,3-Bis(4-Piperidyl)Propane offers a good case study for how that looks in reality.
To start with, 1,3-Bis(4-Piperidyl)Propane is a symmetrical, bifunctional compound. This material brings together two piperidine rings linked by a three-carbon propane chain. In our manufacturing facility, we designate it by CAS number for accuracy and traceability, but familiarity comes from its molecular structure and unique reactivity. Specialists continue to value this molecule for its bridge function in organic synthesis, and as a precursor for a diverse range of chemical families. We manufacture batches ranging from kilograms to multi-ton lots. Over time, we’ve upgraded purification steps for better batch-to-batch consistency. The melting point typically sits above room temperature, and the product stays stable under well-sealed, dry conditions.
Whenever customers visit the plant floor, their background varies—from pharmaceutical R&D teams to developers in polymer chemistry. Each group approaches 1,3-Bis(4-Piperidyl)Propane with different priorities, but a few themes dominate. Custom synthesis remains the most common application, especially in the exploration of new drug candidates. The compound’s two secondary amine groups serve as anchor points for functionalization. In medicinal chemistry, this lets researchers use the molecule as a scaffold—building complex pharmaceutical intermediates or helping earn patent claims on novel molecular arrangements. Teams working on central nervous system targets or experimental antagonists frequently ask for high-purity material, since any side product can compromise sensitive assays.
Polymers represent the next largest segment. Developers appreciate that the rigid, nitrogen-containing rings impart thermal and chemical resistance to plastic formulations. Lately, our technical staff field more questions about custom derivatives and polymer blends, as sustainability concerns have shifted some focus from commodity plastics to more specialized, durable alternatives.
Continuous improvements are a backbone of our process. Sourcing high-quality starting materials reduces downstream problems. Our synthesis routes rely on fairly robust cyclization techniques. Over the years, we’ve tested small tweaks: different catalysts, reaction temperatures, and solvent choices. These may sound routine, but even moderate changes can mean the difference between a fraction of a percent in purity, or days shaved off purification time. We continue to weigh any change against its impact on cost, safety, and waste generation.
Occasionally, customers request non-standard grades or specific particle sizes. We’ve responded by customizing blending and sieving steps for applications in solid dosage forms or materials science. These tailored requests reflect how the market keeps pushing not just for higher quality, but also for convenience in downstream processing. From our perspective, close technical feedback feeds directly into our laboratory work. By focusing on the details that matter most to formulators, we strengthen long-term partnerships and build trust with technical teams who need reliable raw materials.
For a manufacturer, quality doesn’t come from glossy marketing or broad statements. Our laboratories run every batch through HPLC, NMR, and GC-MS, depending on customer specification and regulatory framework. In our experience, the most important attributes often become apparent only when a batch fails to perform as expected—stability over time, reactivity in demanding synthesis conditions, ease of solubility in different solvents. We keep reference standards from validated syntheses for ongoing comparison, and we archive test results to recreate any batch history.
Customers sometimes ask about differences between analytical and technical grades. In real terms, the difference comes down to trace impurities and water content. Pharma clients require levels below a tenth of a percent variance; some industrial users have more flexibility if the scale or application can tolerate minor fluctuations. We don’t mix or dilute product to hit a price point; instead, our process control keeps input quality consistent, and our documentation follows each shipment from the line out the warehouse door.
Many chemicals on the market claim to solve similar problems, and a few—like 1,4-Bis(piperidyl)butane—appear related at first glance. Structurally, these analogs shift ring spacing or substitution pattern. Such changes seem small in a lab notebook, but functional outcomes in synthetic chemistry can be dramatic. Our experience suggests that the three-carbon bridge in 1,3-Bis(4-Piperidyl)Propane offers a perfect balance between flexibility and rigidity for linking larger structures. Longer chains lose structure, shorter chains may limit solubility or increase side reactions. In fields such as medicinal chemistry, minor adjustments alter the biological profile entirely. At scale, process engineers care more about how easily a compound integrates into existing operations. 1,3-Bis(4-Piperidyl)Propane often outpaces the alternatives in terms of both reliable synthesis and downstream handling.
Teams working on custom polymers want to know what sets a given monomer apart. Here, the molecular geometry of 1,3-Bis(4-Piperidyl)Propane encourages cross-linking and high thermal stability. Other piperidine derivatives sometimes introduce branching that interferes with polymer crystallinity. In practice, polymer blends using our compound withstand aggressive chemical environments and offer long-term resilience under mechanical stress. We’ve tested this in collaboration with end users in both research and beta production settings.
Shipping chemicals grows more complicated each year with enhanced regulation and global logistics turbulence. Our facilities anchor operations with established protocols for packing 1,3-Bis(4-Piperidyl)Propane in both small drums and bulk bags. End users rarely see problems with settlement or caking under standard conditions, but humidity remains the biggest concern. To prevent hydrolysis and ensure a dry, free-flowing product, we recommend storage in tightly sealed containers in low-humidity environments. We have coordinated with customer warehouses to implement scheduled stock rotation and regular moisture checks, which reduces the risk of compromised material and saves time troubleshooting batch failures at the application stage.
Customer audits often focus on transparent traceability from incoming raw materials through outbound shipping. We keep documentation tied to each production lot, including certificates of analysis and validated chain-of-custody records. This direct approach means we identify and solve issues rapidly—odd color, minor contamination, or unexpected secondary reactions—long before they reach the customer site.
Producers rarely get away with outdated process chemistry. Evolving environmental regulations challenge us to keep waste and emissions at a minimum. In-house, we’ve invested in solvent recovery and efficient neutralization techniques. Compared to more hazardous diamines or multi-step organometallic reagents, 1,3-Bis(4-Piperidyl)Propane presents lower risks in both handling and disposal. Good manufacturing practice requires routine monitoring and training for plant operators. We take this responsibility seriously; no invoice or client relationship outweighs the importance of sending everyone home safe at the end of each shift.
Over the past decade, there’s been more attention to green chemistry. Sourcing sustainable raw materials poses ongoing difficulties, but our technical leads continue to pilot renewable feedstocks on a trial basis. Even minor efficiency gains reduce solvent consumption and cut waste output—figures that tell their own success stories after a year. Customers increasingly inquire about lifecycle analysis and compliance with global chemical inventories. Our compliance specialists address these requests with open documentation and regular updates.
As a manufacturer, responding to customer ideas and new research findings drives much of our innovation. Over time, requests have ranged from novel derivatives of 1,3-Bis(4-Piperidyl)Propane to improvements in residual solvent levels for sensitive pharmaceutical campaigns. In this line of work, no production schedule stays static for long. Collaborating with research labs and industry partners, we continually push for better yields, faster turnaround, and deeper understanding of both product and process.
Occasionally, breakthroughs elsewhere inspire us to rethink our own practices. Someone working on new therapeutic classes may discover an unexpected use for a material like ours, prompting new lines of inquiry or even pilot projects with direct customer oversight. In each case, communication and mutual respect keep projects moving forward. Feedback from polymer developers often prompts us to review particle size options or batch blending techniques. Synthesis chemists may highlight specific impurities that only become relevant at higher concentrations or under novel reaction conditions. We take this insight back to the production floor, closing the loop between research demand and reliable supply.
Many buyers talk about price and availability, but from a manufacturer’s perspective, the details matter far more. It’s the day-to-day process controls, the willingness to halt a batch and re-run analysis, the investment in documentation—all these steps mean the product customers receive matches both their specifications and the demands of their own customers. We don’t cut corners with substitute processes or reduced QA cycles. Instead, technical support staff work directly with end users to address any deviation, usually before it becomes an issue.
It’s not uncommon for us to share batch samples for joint testing, or to adjust run sizes for customers piloting new processes. Open dialogue means we can provide up-to-date data, discuss long-term supply planning, or answer detailed chemistry questions from technical teams. Flexibility in manufacturing often trumps any advantage in marginal cost savings, since trusting relationships smooth the snags that will occur in even the best facilities.
1,3-Bis(4-Piperidyl)Propane stands apart from more broadly traded commodity chemicals. Compared to its immediate analogues—either shorter or longer chains, or branched variants—this product fills a focused niche. Our customers tell us that supply reliability, documented process control, and clear communication top their priority list. Cheaper substitutes might satisfy short-term demand but rarely deliver the same reproducibility or technical support.
We continue to improve our process with feedback from industry and academia alike. By standardizing production conditions, reinforcing supply chain security, and leveraging knowledge gained from years of hands-on manufacturing, we offer a product that supports science and manufacturing at the sharp end. Customer input shapes future upgrades, from refining existing processes to developing next-generation analogues with targeted properties for demanding applications.
For those working with 1,3-Bis(4-Piperidyl)Propane, reliable sourcing fosters innovation and process safety. Secure supply lets formulators, chemists, and engineers focus on their own priorities—whether that’s research milestones, clinical pipeline progress, or robust new polymers. Manufacturer insight, combined with ongoing collaboration, makes technical challenges manageable. We see our work not as a step in the supply chain, but as a partnership, delivering value through every kilogram, every analysis report, and every call to troubleshoot a novel application or request a new grade. The industry only moves forward when trust and results match, and we build both with every batch that ships from our plant.