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1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane

    • Product Name 1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane
    • Alias Clofed
    • Einecs 629-725-0
    • 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

    932688

    chemical_name 1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane
    molecular_formula C13H18ClNO3Si
    molecular_weight 299.83 g/mol
    appearance White to off-white solid
    solubility Soluble in common organic solvents
    purity Typically >=98%
    storage_conditions Store in a cool, dry place
    smiles C1COCCO[Si](N2CCC(C2)C3=CC=C(C=C3)Cl)(O1)O
    synonyms PCP-silatrane, p-Chlorophenylsilatrane

    As an accredited 1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 1-(P-Chlorophenyl)-2,8,9-trioxa-5-aza-1-silabicyclo(3,3,3)dodecane is packaged in a 25-gram amber glass bottle with a secure cap.
    Shipping Shipping of **1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo[3.3.3]dodecane** requires secure, leak-proof packaging, clear chemical labeling, and adherence to relevant hazardous material regulations. Transport must be via authorized carriers with appropriate documentation, ensuring compatibility with temperature and substance handling standards to prevent hazards during transit. Refer to the latest MSDS and local regulations.
    Storage Store **1-(p-Chlorophenyl)-2,8,9-trioxa-5-aza-1-silabicyclo(3,3,3)dodecane** in a tightly closed container, in a cool, dry, and well-ventilated area. Keep away from incompatible substances such as strong oxidizers and acids. Protect from moisture and direct sunlight. Ensure storage area has suitable spill containment and is clearly labeled. Use appropriate personal protective equipment (PPE) when handling.
    Application of 1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane

    Applications of 1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane in Industrial Manufacturing

    Our expertise in manufacturing this specialized organosilicon compound supports producers across advanced specialty polymer sectors, electronic encapsulation materials, pharmaceutical intermediate synthesis, and precision coatings. Below, we detail integration pathways and process design for each key industry.

    1. Specialty Polymer Additive for High-Performance Engineering Plastics

    Major engineering plastics manufacturers use this silabicyclic amine as a functional additive during the polymerization of high-thermal-stability and flame-retardant resins, especially for aromatic polyamides and polyimides. The incorporated p-chlorophenyl group offers thermal resistance, while the silabicyclic structure can facilitate increased compatibility between hydrophobic polymer backbones and siloxane-modified segments for enhanced processing. Integrators dose this additive into pre-polymer mixes immediately before the condensation or cyclization step to ensure structural distribution and consistent property modification. Final plastics exhibit improved dimensional stability, resistance to thermal aging, and controlled flammability required in aerospace internals and electrical device housings.

    Industry compliance standards

    • UL 94 (Standard for Safety of Flammability of Plastic Materials)
    • RoHS Directive (2011/65/EU) for restricted hazardous substances in electronics
    • IEC 61249-2-21 for halogen content in base materials
    • ISO 9001 Quality Management for polymer compounding plants

    Typical usage ratio

    • 0.5–3.0% by weight based on total monomer feed; precise ratio depends on flammability and mechanical performance targets

    Downstream process integration

    • Feed blended directly into solution or melt-polymerization reactors prior to chain extension
    • Dispersed within twin-screw extruders for masterbatch production
    • Combined with flame retardant or reinforcing additives during pelletizing

    Final product types

    • High-temperature polyimide sheets for flexible printed circuits
    • Polyamide components for automotive under-hood electronics
    • Injection-molded parts for telecommunications modules

    2. Electronic Encapsulation Formulations for Microelectronic Devices

    Producers in the semiconductor sector utilize the material as a functional crosslinker or structure-directing agent in advanced silicone-based potting compounds and conformal coatings for microelectronic protection. The bicyclic silazane moiety provides enhanced hydrolytic stability and lowers curing shrinkage, both key for avoiding crack formation around fine-pitch packages. Blenders introduce the additive to silicone rubber and epoxy-siloxane composite formulations during the pre-cure mixing phase, allowing comprehensive incorporation before heat or platinum-catalyzed crosslinking. The material is crucial for maintaining dielectric performance and long-term environmental resistance in critical microchip and sensor encapsulation.

    Industry compliance standards

    • IPC-CC-830C (Qualification and Performance of Electrical Insulating Compounds)
    • JEDEC JESD 22-A104D Thermal Shock Testing
    • IEC 60068-2-13 Environmental Test Standards
    • ISO 14001 Environmental Management for electronics manufacturing

    Typical usage ratio

    • 1.0–2.5% by weight in potting or conformal coating pre-mixtures; dosage adjusted based on target thermal cycling resistance and required dielectric properties

    Downstream process integration

    • Premixed with base resin and catalyst prior to casting or dispensing
    • Homogeneously dispersed in vacuum mixers for bubble-free applications
    • Temperature- or UV-initiated curing to entrap semiconductors or PCB assemblies

    Final product types

    • Chip-scale and BGA package encapsulants
    • Protective gels for MEMS sensors
    • High-reliability conformal coatings for automotive ECUs

    3. Intermediate in Active Pharmaceutical Ingredient (API) Synthesis

    Active pharmaceutical ingredient manufacturers use this compound as a specialty heterocyclic building block, introducing the silabicyclic scaffold into specific small-molecule APIs. The structure supports innovative synthetic routes for CNS-active agents or anti-inflammatory molecules, leveraging the unique reactivity of the nitrogen and silicon centers for selective functional group transformations. Synthesis specialists integrate the intermediate during multi-step batch reactions under cGMP compliance, carefully monitoring stoichiometry and purity at each stage. Subsequent purification and downstream derivatization yield final actives for further formulation or clinical evaluation.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice Guide for Active Pharmaceutical Ingredients
    • 21 CFR Part 210–211 (US FDA GMP requirements)
    • Ph. Eur. (European Pharmacopoeia) Monographs for final APIs
    • ISO 17025 Analytical Laboratory Accreditation (in-process QC)

    Typical usage ratio

    • Varies from 0.2–1.1 molar equivalents, depending on the target active structure and route selectivity; precise loading optimized by process chemists for yield and purity

    Downstream process integration

    • Fed into key cyclization or coupling reactions as a functionalized scaffold or nucleophilic partner
    • Undergoes selective transformation or deprotection for further structural modification
    • Purified by chromatography before progression to final API synthesis stages

    Final product types

    • Investigational or preclinical CNS agents
    • N-heterocycle derivatives for anti-inflammatory drugs
    • Silicon-stabilized intermediates for specialty pharma

    4. Siloxane Modifier in Industrial Protective Coatings

    Coatings formulators specify this material to modify cross-link density and weatherability in high-durability siloxane-epoxy hybrid paints, used in heavy-duty infrastructure and marine applications. The inclusion of the functional silabicyclic ring helps to adjust viscosity profiles during mixing, improves film-forming capability, and increases resistance to salt spray and UV-driven degradation. The compound enters the prepolymer blend during initial mix, often accompanied by pigments and traditional epoxy hardeners, before being dispersed via high-shear milling. Control of input ensures compatibility and consistent coating performance through the entire batch.

    Industry compliance standards

    • ISO 12944-6 (Paints and varnishes — Corrosion protection of steel structures by protective paint systems)
    • ASTM D4587 (Standard practice for UV exposure of coatings)
    • IMO MSC.215(82) Performance standards for protective coatings
    • REACH Regulation (EC) No 1907/2006 for chemical safety

    Typical usage ratio

    • 1.5–4.0% by weight in siloxane/epoxy hybrid paints; ratios may be adjusted depending on substrate porosity and environmental conditions

    Downstream process integration

    • Blended with siloxane and epoxy prepolymers before pigment grinding
    • Added before high-speed dispersion and viscosity adjustment
    • Delivered as part of two-component (2K) coating systems for field application

    Final product types

    • Marine hull and topside protective coatings
    • Industrial maintenance paints for steel bridges
    • UV-resistant coatings for petrochemical tanks

    5. Performance Modifier in Resin-Based Composite Materials

    Producers of advanced composite panels and prepregs utilize this organosilicon compound as a performance modifier to balance resin matrix flexibility and interfacial bonding in high-strength CFRP and GFRP systems. The incorporation helps to reduce microcracking and delamination under cyclic loading, widely required for aerospace and wind turbine blade structures. Integration occurs during resin blend compounding prior to impregnation of fiber reinforcements, facilitated by precision dosing and rigorous process monitoring. Accurate proportioning supports consistent prepreg tackiness, laminate uniformity, and enhanced long-term material resilience.

    Industry compliance standards

    • ASME RTP-1 (Reinforced Thermoset Plastic Corrosion-Resistant Equipment)
    • EN 13706 (Pultruded profiles for composite structures)
    • SAE AMS 2759/1 (Heat treatment of composites)
    • ISO 9001 for aerospace supply chain traceability

    Typical usage ratio

    • 0.6–2.0% by weight in resin matrices for composite parts; modulation based on desired composite flexibility and interfacial adhesion properties

    Downstream process integration

    • Incorporated during in-reactor resin pre-mixing before fiber wet-out
    • Blended into resin baths for filament winding or pultrusion
    • Present during prepreg resin impregnation under vacuum or pressure

    Final product types

    • High-modulus CFRP wind turbine blades
    • Composite leaf springs for rail transport
    • Aircraft structural components
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    Certification & Compliance
    More Introduction

    1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane: A Closer Look from the Manufacturer’s Bench

    Pushing Boundaries with Real-World Chemistry

    Every morning at our plant, technicians and chemists gather just past the morning checklists, over whiteboards and full-spectrum lights, and get hands-on with substances like 1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane. From experience, there is no shortcut in synthesizing specialty molecules. Years spent climbing the learning curve have shown that even one subtle tweak in chlorination or a trace impurity in starting a material can derail a batch worth thousands of dollars. The lessons get passed from shift to shift and embedded into culture: quality goes in, reliability comes out.

    Our focus is always on what makes an intermediate or a finishing agent deliver under pressure—what holds up through transport, lab manipulation, lab testing, and finished formulation. This unique bicyclic silane compound, with its specific structural backbone, bridges resilience and compatibility. Unlike common organic or organosilicon intermediates used in pharmaceutical, agrochemical, or advanced polymer research, it offers a defined but versatile reaction profile that serves specialty syntheses where both stability and selective reactivity are demanded.

    Connecting Structure to Practical Utility

    Over the years, our chemists saw most conventional silabicyclo derivatives show inconsistency in reactivity, especially during scale-up from pilot plant to full production. Something as subtle as the individual chlorine atom on the phenyl ring, as found here, gives a persistent edge in certain cross-coupling steps that softer analogs simply can’t achieve. For developers of new chemical entities, this matters. We walked with customers through trials where side reactions or loss of activity cost weeks. Products that maintain their integrity, like this compound, reduce guesswork and make project forecasting realistic.

    Strict batch records tell the story of a tightly controlled process. Using high-precision instrumentation and validated procedures for gas-phase and liquid-phase synthesis, we tighten distribution ranges for melting point, purity, and trace residuals. For us, this isn’t about ticking boxes. Years spent tracking complaint logs have taught that downstream partners—lab researchers or large-batch blenders—count on predictability. You see one less thing fail, one less late night spent troubleshooting.

    Applications Drawn from the Lab and Factory

    In design and testing, 1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane earned a place in several high-value applications. With its tuneable silyl core and functional aromatic handle, we’ve observed chemists reach for it in pharmaceutical intermediate programs, especially where bond selectivity can’t be compromised. The durable core supports multi-step synthesis sequences, surviving those harsh reaction conditions that would break most standard linkers. In agricultural chemistry, the compound facilitates the development of advanced active agents, enabling longer-lasting or more bioavailable compounds. Our teams have worked shoulder-to-shoulder with R&D groups to troubleshoot process scale-up, modify unit operations, and check for by-product control, all to ensure reproducibility—from milligram trials right up to multi-kilogram runs.

    Polymer and material science labs request this molecule for its performance as a unique crosslinker or specialty additive. Unlike bulk monomeric silanes, it brings a rigid, three-dimensional framework that resists hydrolysis and depolymerization—key factors when building protective coatings or high-strength composites. Whether the end goal is chemical resistance, temperature endurance, or unusual optical properties, our field service teams have seen customers shorten troubleshooting time by relying on the robust structure provided here.

    From Specification to Day-to-Day Handling

    Real-world chemistry exposes weak points fast. That’s why we spend so much time examining not just what’s on the spec sheet, but how an operator interacts with every batch. We’ve seen situations where inferior analogues looked similar on paper but, under actual storage or in-process conditions, fell short. Moisture sensitivity, volatility, and even container compatibility can make or break a run. Our internal case notes document that strict control of water content, filtration, and packaging prevents batch degradation—details that become evident only after years cycling through customer feedback and own-use trials.

    The color, viscosity, and even the faint odor profile have direct correlations to unseen impurities or trace by-products. Our inspectors track these signs through regular in-plant audits and automated re-sampling. Instead of relying solely on third-party tests, our teams calibrate analytical standards in-house, providing firsthand confirmation of compliance with specification claims. By bringing validation in close and not delegating responsibility outward, we keep control over what ultimately enters the supply chain or research stream.

    Differences Rooted in Practical Experience

    Chemists working outside manufacturing often underestimate how small differences in structural framework influence real-world outcomes on the factory floor: handling, blending, storage, and safety. Compared to traditional bis-silane or mono-silane additives, the bicyclic scaffold and aromatic-chlorine arrangement define two key shifts. First, the interlocked backbone suppresses volatility under moderate temperatures. Pallet after pallet, less material loss occurs through evaporation or accidental exposure. Second, reactivity in subsequent derivatization steps remains consistent, making process scale-up much less suspenseful. Our best customers tend to move away from widely sold organosilicon commodities to this class precisely because reliability and predictability have hard value, well beyond fine print on a data sheet.

    Technicians in our plant worked countless nights optimizing the outlet purity and consistency. They catalogued how batch-to-batch reproducibility fared against pressure, minor feedstock changes, or longer transport times. These subtleties show up over months, not days. Isomeric drift, unanticipated hydrolysis, or minor silicone oil contamination can quietly upend a production week. After iterations in planning, re-tooling reactor interiors, and retraining operators, we documented significant gains. Now, customer returns and off-spec recycles fell away to background levels, freeing marginal capacity for genuine R&D and process improvement.

    Supporting Claims with Evidence—Not Hype

    We know that showing stands taller than telling. Certificates of analysis and spectrum records support every shipment, but these are only the tip of what stands behind each batch. More important, our team regularly invites customer R&D and quality personnel to walk through our facilities—watching how we charge reactors, pull distillate, collect sample points, and feed in starting materials. Open-door oversight leads to trust. For us, meeting external auditors and security officers has become routine. Sites with modern instrumentation—gas chromatography, high-pressure liquid chromatography, and advanced spectroscopy—all play their role. We write everything into our SOPs not to impress inspectors but to train the next generation of chemists to see anomalies early and intervene before problems manifest.

    Backing up every technical claim takes time and financial commitment. We invest in redundant analytical lines, frequent instrument calibrations, and real-time batch monitoring. Our operators know which way to tweak conditions when process variables start to drift. Having built and rebuilt these workflows through years of learning, the cumulative data set backs all claims made to partners or regulatory agencies. Customers request traceability, and not just in the form of paperwork—full chain-of-custody and forensic audit trails link product origins clear back to raw material receipt.

    Balancing Innovation, Safety, and Environmental Responsibility

    Not every batch yields a headline breakthrough. Most mornings start with safety briefings and careful reviews of regulatory updates. Managing specialty chemicals means understanding where margins run thin: a single unintended emission, a poorly marked drum, or an outdated waste stream can risk the business. For chemicals like this, which feature aromatic chlorination and specialized silyl frameworks, compliance comes from strict process segregation and proactive environmental controls. Data tracked from our water and air effluent monitors feed directly back to plant operation dashboards. Our own people designed these controls to minimize downtime for testing and maximize early warning for deviations.

    The pathway between innovation and regulatory tolerance has grown harder to navigate. Community expectations hold chemical manufacturing to higher standards year after year. As a direct manufacturer, we don’t have the luxury of hiding behind generalized assurances. Every finished kilogram, every drum, reflects an unbroken sequence of decision-making—raw material provenance, solvent control, energy balance, operator training, and waste management. Regular engagement with local regulators, site tours, and early requests for feedback help bridge gaps between process improvement and policy development.

    Reducing our production footprint meant investing early in solvent recovery, emission containment, and worker safety training. The learning curve was not gentle. Flare stacks, double-walled piping, and programmable sensors replaced legacy equipment. Our operation’s resilience now relies on continuous monitoring. Few outsiders realize how much fine tuning is required to keep emissions below government-mandated levels while still delivering product on spec and on time.

    Future Directions—Learning by Doing

    Every new product launch comes with unexpected twists. Our teams document what works—and what needs fixing—for every run, feeding back into R&D and plant improvement cycles. Operators keep close records not out of habit, but because that’s the best way to spot root causes fast and prevent repeat mistakes. For 1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane, that meant early investment in continuous-flow processing and modular purification units, letting us adapt quickly to both specification changes and evolving customer needs.

    The drive to make products safer and more reliable doesn’t stop at internal boundaries. Years spent working directly with downstream users helped us learn what questions to ask: How are you dispensing the product? What glassware and pumps cope best? How do competitors’ materials behave under your actual use conditions? The feedback loop goes both ways, and our best improvements came from these honest exchanges. Product refinement isn’t a closed loop; it’s collaborative. Teams from opposing sides of the world can compare notes, share pain points, and collectively move the field forward.

    As new regulatory and industry trends emerge, we’re forced to rethink supplier relationships, logistics, and data transparency. Gone are the days of shipping a product and forgetting the details. Audits, proactive documentation, and rigorous testing now define the manufacturing landscape. In the context of specialty products like this, the margin for error continually narrows—and end-user expectations only grow. The foundation for future stability rests on proven protocols, real-world data, and a willingness to adapt to feedback, internal and external alike.

    What Sets Direct Manufacturing Apart

    Manufacturers face a different reality from resellers or brokers. Every day in the plant brings practical reminders: the sound of a pressure relief valve, the sting of static discharge, the unmistakable hint of a compound’s odor in the air if a seal fails. These are the cues that trigger root-cause analysis and preventive action. Our company values grew out of shared experience, not slogans or marketing copy. Engineers and operators speak up about what they encounter—stray light in a sensor, cloudiness in a sample taken at shift-change, abnormal residue after cleaning. Instead of pushing problems down the line, we troubleshoot, adapt, and build systems that move forward together.

    Direct feedback from chemists and process technicians on handling, reactivity, or process glitches has helped us refine many of our products. New orders do not happen in isolation. User input loops straight back into procedural changes, supplier audits, and investment in process updates. Over time, this has meant our product quality reflects both hard technical data and hard-earned field experience.

    Final Thoughts: Value Through Experience, Not Hype

    After years of working with 1-(P-Chlorophenyl)-2,8,9-Trioxa-5-Aza-1-Silabicyclo(3,3,3)Dodecane, our confidence comes from what’s proven in repetitive, controlled practice. It’s the compound’s predictability and resilience—not just on paper, but under pressure, under duress, and across seasons—that sets it apart. Watching it anchor complex syntheses, support demanding manufacturing flows, or help novel research programs reach fruition, we see direct evidence that the choices made in synthesis and quality control have real-world impact.

    Moving forward, we expect the best results to keep coming from partnership and transparency, grounded in facts and the tangible lessons gained each day in chemical manufacturing. Rather than depending on general market hype or formulaic promises, we stick to what we’ve measured, what we’ve experienced, and what our own teams can stand behind—batch after batch, year after year.