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4-(Trans-4-Propylcyclohexyl)Phenol

    • Product Name 4-(Trans-4-Propylcyclohexyl)Phenol
    • Alias PCHP
    • Einecs 629-607-6
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
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    Specifications

    HS Code

    311457

    Chemical Name 4-(Trans-4-Propylcyclohexyl)Phenol
    Molecular Formula C15H22O
    Molecular Weight 218.34 g/mol
    Cas Number 70577-99-4
    Appearance white to off-white solid
    Melting Point 96-101 °C
    Purity Typically ≥98%
    Solubility Low solubility in water; soluble in organic solvents
    Storage Conditions Store in a cool, dry place, tightly closed
    Smiles CCC1CCC(CC1)C2=CC=C(C=C2)O
    Synonyms PCP-phenol, 4-(4-propylcyclohexyl)phenol
    Hazard Statements May cause eye and skin irritation
    Use Liquid crystal intermediate, organic synthesis

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

    Packing & Storage
    Packing Amber glass bottle containing 25 grams of 4-(Trans-4-Propylcyclohexyl)Phenol, tightly sealed with a screw cap and labeled for laboratory use.
    Shipping 4-(Trans-4-Propylcyclohexyl)phenol is shipped in tightly sealed containers, protected from moisture and light. It must be handled as a chemical substance, following standard hazardous material protocols. During shipping, it is classified as a non-dangerous good, but care should be taken to avoid extreme temperature fluctuations and mechanical shock.
    Storage Store 4-(Trans-4-Propylcyclohexyl)phenol in a tightly sealed container, kept in a cool, dry, and well-ventilated area away from light, moisture, and incompatible substances such as strong oxidizers. Ensure the container is chemically resistant and properly labeled. Avoid exposure to heat and sources of ignition. Use appropriate personal protective equipment when handling and prevent environmental release.
    Application of 4-(Trans-4-Propylcyclohexyl)Phenol

    Applications of 4-(Trans-4-Propylcyclohexyl)Phenol in Industrial Manufacturing

    As a direct manufacturer of 4-(Trans-4-Propylcyclohexyl)Phenol, we support clients in advanced fields requiring precise chemical performance, documented traceability, and process-specific formulations. Below, we detail real downstream application sectors with compliance benchmarks, integration methods, recommended usage levels, and the actual products our partners bring to market.

    1. Liquid Crystal Intermediate Synthesis for Display Technologies

    Display material producers use this raw material as a key intermediate for high-stability liquid crystal monomers. Its cyclohexyl and phenol structure allows strong dipole alignment in nematic and smectic phase mixtures, delivering thermal and electro-optical performance demanded by modern LCD and OLED panels. Selection of grade, purity, and isomer content critically affects downstream monomer uniformity. Regulatory adherence and component compatibility define process integration into advanced panel lines supplied to electronics brands worldwide.

    Industry compliance standards

    • RoHS Directive (2011/65/EU) for electronics
    • REACH Regulation (EC 1907/2006) registration and dossier for intermediates
    • IEC 61249-2 for halogen-free compounds
    • ISO 9001:2015-certified batch traceability

    Typical usage ratio

    • Typically 6–15% mass fraction in precursor monomer blends; ratio adjusted by required birefringence and mixing viscosity

    Downstream process integration

    • Introduced during alkoxylation or acylation of core liquid crystal intermediates; high-purity lots prevent mix-phase contamination
    • Batch or continuous addition depending on production scale

    Final product types

    • Twisted nematic (TN), in-plane switching (IPS), and fringe field switching (FFS) LC panels
    • OLED display backplanes with patterned alignment layers
    • Flexible and rigid glass LCD modules for consumer electronics

    2. Specialty Polymer Additive for Optical Films

    This raw material serves as a high-performance modifier in the production of polycarbonate and polyester films for optical electronics. Through controlled polycondensation, it enhances refractive index, mechanical resilience, and UV-filtering capacity within coating and substrate layers. Its integration into resin batches requires careful adjustment to avoid haze or unwanted crystallization. Regulatory conformity, especially for optical-grade films, remains a key customer requirement in the downstream fabrication chain.

    Industry compliance standards

    • EN ISO 527 for film mechanical properties
    • IEC 62805 for optical transparency specifications
    • FDA 21 CFR 177.1580 as applicable to resin contact in devices
    • REACH and SVHC listings compliance

    Typical usage ratio

    • Added at 0.5–4% by weight to polymer extrusion or casting mixtures, with higher amounts for increased UV-blocking layers

    Downstream process integration

    • Dispensed into melt or solution phase prior to film casting or extrusion
    • Ensures homogeneity in the final optical layer, with in-process QC confirming refractive indices

    Final product types

    • Anti-glare LCD and touch screen films
    • UV-protection overlay films
    • Camera and optical device window films

    3. Advanced Adhesive Formulation for Electronics Assembly

    Manufacturers producing adhesives for electronics rely on cyclohexylphenol-based intermediates to achieve fine-tuned dielectric and mechanical properties in epoxy and polyurethane systems. Our raw material introduces aromatic content and propyl branching for balance of strength and flexibility. Accurate dosing is crucial to prevent phase separation and ensure final adhesive clarity. Certification for use within electronics and electrical assemblies ties into downstream supplier approvals.

    Industry compliance standards

    • UL 94 flammability for adhesives
    • IEC 60695 for electronics safety
    • IPC-A-610 acceptance for assembly materials
    • RoHS and halogen-free verification

    Typical usage ratio

    • 1–3% by total adhesive resin weight, increased for tougher bonding systems or to meet thermal aging targets

    Downstream process integration

    • Blended into prepolymer resin prior to final crosslinking; batch mixing temperature and vacuum control are maintained to minimize side reactions and air inclusion

    Final product types

    • Electronics encapsulants for semiconductors and microchips
    • Structural adhesives for circuit assemblies and displays
    • Protective potting compounds for automotive and industrial PCB modules

    4. Modifier in High-Temperature Resistant Coating Resins

    Coating compound manufacturers select this ingredient for custom phenolic and polyether formulations, targeting demanding environments such as industrial machinery and aerospace. The propyl cyclohexyl chain improves flexibility and resistance to cracking under thermal cycling. Process control in resin prepolymerization and additive blending affects the resulting cross-linking density and film durability. Regulatory focus centers on VOC limits and emissions in finished coatings.

    Industry compliance standards

    • ASTM D2486 for scrub and mar resistance
    • VOC emission limits under EU Directive 2004/42/EC
    • ISO 11890-2 for solvent content
    • GHS classification for hazardous components

    Typical usage ratio

    • Employed at 2–8% of total resin solute; levels adjusted upward for high thermal load applications

    Downstream process integration

    • Added to polyol or monomer blend prior to catalyst introduction during high-shear mixing; accelerator selection varies by substrate type
    • Batch-specific record keeping due to customer qualification

    Final product types

    • Protective coatings for industrial motors and turbines
    • Thermally stable aerospace component lacquers
    • Corrosion-resistant pipe and equipment coatings

    5. Pharmaceutical Intermediate in Active Substance Synthesis

    API manufacturers utilize this chemical as a core building block for synthesizing non-steroidal anti-inflammatory and select cardiovascular agents. Its functionalized phenol group serves as a strategic point for coupling and esterification steps. GMP protocols mandate validated raw material sourcing, full batch documentation, and contaminant screening. The raw material undergoes strict incoming QC as a regulated starting material prior to convergent synthesis of final APIs.

    Industry compliance standards

    • ICH Q7 GMP for active pharmaceutical ingredient manufacturing
    • USP/NF and Ph. Eur monographs (as applicable to API pathways)
    • 21 CFR 210/211 for quality systems compliance
    • Certificate of Suitability (CEP) as required for export

    Typical usage ratio

    • Primarily used at stoichiometric levels based on target API synthesis route; excess addition may occur for full conversion in multi-step batch reactions

    Downstream process integration

    • Charged as the main starting reagent in first or second-stage chemical syntheses leading to API precursors or advanced intermediates
    • Purity and trace element specification tightly controlled by in-process QC

    Final product types

    • Intermediate for NSAIDs and cardiovascular pharmaceuticals
    • Building block for conjugated drug compounds
    • Active intermediate for synthetic hormone analogues
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    Certification & Compliance
    More Introduction

    Discovering the Value of 4-(Trans-4-Propylcyclohexyl)Phenol in Advanced Chemical Applications

    Drawing from Experience in Synthesis

    Producing 4-(Trans-4-Propylcyclohexyl)phenol requires specialized knowledge and careful process control. In our facility, every batch goes through a tightly managed synthesis route that we have refined over years of production experience. Our chemists select high-purity raw materials and track every step, from hydrogenation of precursor intermediates to the final condensation reaction forming the phenol group. By controlling reaction temperature and pressure—and taking the time to run extended quality assurance at each stage—we minimize impurities that impact product performance down the line. Working hands-on with each reactor load, our team has found that attention to small details during distillation and crystallization leads to a more reliable, higher-grade material.

    Structuring the Molecule for Functionality

    The core value of 4-(Trans-4-Propylcyclohexyl)phenol lies in its unique molecular shape. With the propyl group mounted on a rigid cyclohexyl ring and a phenolic hydroxyl moiety, it stakes out physical and chemical properties not found in similar cyclohexyl derivatives or more common phenolic compounds. Unlike ordinary alkylphenols, this compound offers a robust steric hindrance that influences solubility, absorption, phase stability, and molecular interaction in complex mixtures. From long experience, we’ve noted how the trans configuration reduces torsional strain compared to the cis analogue, lending greater thermal resilience and a narrower melting range—a fact that matters tremendously for users blending it into high-performance liquid crystal mixtures, among other applications.

    Specifications That Matter in Real Use

    Chemical purity runs above 99% by gas chromatography, with residual solvents kept below regulatory thresholds. Water content stays under 0.1% by Karl Fischer titration. This consistency means fewer surprises in downstream processing—an insight we learned after years troubleshooting customer batch failures in sensitive formulations. By sticking to a narrow color and acid value range, we help clients avoid the need for expensive additional purification which not only improves their output, but also cuts waste costs. We supply the product as colorless crystals, which simplifies visibility checks for trace contamination. Each lot comes with a spectrum of NMR, GC, and UV-Vis data for scientists who need solid documentation.

    Utilization Across Diverse Industries

    In our own conversations with R&D chemists and process engineers, we hear repeated stories: specialty display makers turn to this molecule as a core dopant in advanced liquid crystal formulations. The propylcyclohexyl structure acts as both a property modulator and as a structure-directing agent. Because of its specific ring geometry, it supports accurate tuning of birefringence and viscosity, properties critical for fast-switching, high-contrast displays in next-generation screens. Our partners in coatings rely on the phenolic OH group to bind effectively during resin synthesis, strengthening crosslinking and enhancing chemical resistance. In pharmaceutical research labs, the molecule’s structural elements enable the construction of molecular scaffolds for targeted drug design, where shape and steric hindrance matter for binding affinity.

    Distinct Differences From Traditional Phenols

    Every few months, a new client comes to us after struggles with traditional linear alkylphenols. The conventional molecules often lack the rigidity required for high-precision applications—they melt too easily or break down under intense light or heat. In contrast, the cyclohexyl backbone of our product confers superior rigidity and resistance to photo-degradation. This often results in longer-lived devices or more robust intermediate products. For researchers who need both high purity and reliability under challenging conditions, these differences are not trivial—they drive project outcomes. Our team has also fielded questions about cross-reactivity or unwanted byproducts with standard base-catalyzed reactions. Thanks to the secondary structure and the trans orientation, our material minimizes these risks, based on both in-house pilot data and published reports from our customers.

    Comparing to Other Cyclohexyl Phenol Variants

    We frequently receive inquiries from teams deciding between alkyl substitutions on the cyclohexyl ring. Locating the propyl group at the 4-position on the trans isomer creates less steric congestion than bulkier alkyls, which can stifle reactivity for functionalization. This nuanced difference, only clear after significant bench and pilot-scale work, translates into smoother scale-up in polymerization processes and better reproducibility. In mixtures where optical properties are key—such as in LCD cells or novel optoelectronic devices—those who tried both variants report finer control over refractive index shifts using our product. Engineers working with cis-isomers often notice lower phase transition temperatures and less robust mechanical profiles, which limits utility when operating near the device performance limits.

    Supporting Process Integration

    We focus not just on the sale of a chemical, but on supporting our customers’ success in process integration. Teams in analytical labs benefit from consistent purity and narrow melting points, avoiding time-consuming lot testing common with off-spec phenols. Scale-up engineers report that our material dissolves more predictably in common industrial solvents, keeping batch-to-batch changes minimal. That’s a lesson we learned early: materials with even slight inconsistencies create headaches and cost overruns in production scheduling. Because we monitor trace metals and byproducts before every drum ships, electrical and electronic manufacturers trust our lots to have minimal conductivity impact. Research chemists, focused on catalyst or intermediate development, find the molecule’s predictability valuable for simplifying reaction planning.

    Avoiding Frequent Industry Pitfalls

    Switching from a commodity supplier to a dedicated chemical producer often functions as a turning point for our partners. They share stories of lost production time using generic alkylphenols or non-specific cyclohexylphenol analogues, leading to inconsistent test results and failed scale-up runs. In some cases, incorrect isomer ratios lead to unpredictable mechanical or electrical properties, forcing expensive reformulation. By controlling stereochemistry and impurity profiles, our 4-(Trans-4-Propylcyclohexyl)phenol reduces the need for costly troubleshooting. Because we operate our own reactors under tightly held process conditions, we address customer feedback directly and improve production runs based on operational data—not secondhand reports. This hands-on experience informs every lot.

    Focus on Research, Sustainability, and Collaboration

    More labs have turned to sustainable chemistry, and we have evolved our process accordingly. We source ring intermediates from sustainable vendors and reduce waste streams at each step by refining purification and utilizing closed-loop solvent systems. Our research team keeps tabs on new regulatory frameworks, ensuring that our material aligns with evolving standards for environmental and workplace safety. Several partners have integrated our molecule into environmentally preferred formulations for coatings or electronics, citing reduced hazardous waste and safer process conditions. There remains room for improvement: we continue to investigate lower-impact reagents and to share learnings from green chemistry initiatives across our customer base. These practical lessons create industry-wide momentum for more sustainable specialty chemical manufacture.

    Meeting Evolving Industry Demands

    In recent years, the pace of innovation in sectors using phenolic intermediates has accelerated. Requirements grow more demanding: from LCD panel production lines needing faster curing, to advanced MEMS manufacturers whose test cycles shrink every quarter. The unique molecular structure of 4-(Trans-4-Propylcyclohexyl)phenol matches this pace. As part of their feedback to us, device engineers highlight how even minor formula changes can make or break performance—meaning consistency, traceability, and communication between chemical maker and application team now matter as much as the raw chemical performance itself. As a direct manufacturer, we take pride not just in delivering a reliable product, but in backing customers with documentation, supply continuity, and technical know-how rooted in daily plant operations.

    Understanding the Needs of Niche R&D

    Academic groups and emerging start-ups often face obstacles in sourcing specialty phenolic compounds. We have collaborated with several university labs, tailoring small-scale runs and even adjusting purification protocols based on research feedback. Frequently, the difference between a promising pilot project and a grant setback hinges on chemical availability and reliable molecular structure. When research groups look for the specific trans-4-propylcyclohexyl backbone, experience has taught us that giving direct access to technical specialists shortens the learning curve and helps avoid repeat mistakes. In more than one case, our involvement early in the research cycle helped prevent weeks of reevaluation. Supporting the scientific community means sharing operational insight as well as product—it is part of the reason we invest in continuous staff training and knowledge exchange.

    Future Directions in Process and Application

    Looking ahead, we see a broadened field of possibilities for 4-(Trans-4-Propylcyclohexyl)phenol. New uses in high-index materials for advanced optics are under review, and customer prototypes point to opportunities in flexible electronics and responsive polymers. Our technical team remains engaged with these shifts—attending seminars, running joint experiments with industrial labs, and adapting reactor parameters in response to new application feedback. The customizability of this molecule, underpinned by process stability and quality control, gives us an edge in supporting clients as their needs change. Rather than sticking with static specifications, our development pipeline treats ongoing feedback as central. We recognize that future markets will demand more innovation, not less, and that sharing operational knowledge is just as important as refining chemistry.

    Building Confidence Through Consistency and Transparency

    Manufacturers choosing 4-(Trans-4-Propylcyclohexyl)phenol value confidence above all. They look for lot traceability, direct lines to production chemists, and disclosure of any process changes. Years in chemical manufacturing have taught us that trust forms the real foundation for long-term success in specialized segments. A quick response to performance questions, supply concerns, or regulatory updates helps customers stay on schedule. We treat transparency as a process, not a policy—updating partners with batch records, impurity profiles, and sourcing documents so that their own quality systems remain airtight. As our clients’ requirements have grown more rigorous, our own documentation and operational standards have expanded with them.

    Partnering for Long-Term Advancement

    In our daily work, commitment to robust and reproducible chemistry is central. Producing 4-(Trans-4-Propylcyclohexyl)phenol at scale means more than operating reactors and shipping drums. It includes continuous staff training, refinements to workflow, and the willingness to review and incorporate customer suggestions into each process stage. This dynamic approach underlies our ability to serve as both a supplier and a technical partner for those designing the next generation of high-performance materials. Our collaborations extend beyond the transaction into real support for clients looking to push the boundaries of what advanced cyclohexylphenols can do.

    Contributions to Broader Industry Knowledge

    Direct involvement in the manufacture of advanced phenolic derivatives gives us a unique vantage point into ongoing industry shifts. From the rise of more demanding display panel standards to the need for more reliable intermediates in medical device assemblies, each trend feeds back into our process improvements and communication strategies. We share insights through technical bulletins, open QA sessions, and regular industry dialogues, recognizing that shared expertise drives not only product improvements, but upstream and downstream process optimization. Our goal is to ensure that every customer benefits from lessons learned—both our own and from the wider field.

    A History of Responsive Production

    Over years of operation, we have weathered raw material shortages, evolving regulatory climates, and swings in customer demand. In each situation, staying close to the chemistry and nimble in production has allowed us to minimize disruption and retain product integrity. For a compound like 4-(Trans-4-Propylcyclohexyl)phenol, where trace impurity levels can mean the difference between a pass and a fail, attention to real-time process data, solvent recovery, and utility tracking remains critical. This hands-on engagement lets us offer consistency and timely feedback, giving downstream teams confidence that their formulations will perform as expected, even as the global chemical landscape evolves.

    Toward Increasing Value in Every Batch

    Producing specialty chemicals like 4-(Trans-4-Propylcyclohexyl)phenol, with a focus on purity, process insight, and technical knowledge, supports customers designing ever more advanced products, across a growing set of industries. In every batch, years of lessons in reaction control, purification, and quality management come together. By blending direct customer feedback with our own operational experience, we constantly seek both to solve current challenges and anticipate emerging ones. This commitment ensures that our product remains not just a raw material, but a foundation for innovation and progress across scientific and industrial fields.