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4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde

    • Product Name 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde
    • Alias 4'-(Trifluoromethyl)-[1,1'-biphenyl]-4-carboxaldehyde
    • Einecs 696-159-5
    • 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

    995756

    Productname 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde
    Casnumber 87099-41-2
    Molecularformula C14H9F3O
    Molecularweight 250.22
    Appearance White to off-white solid
    Boilingpoint 354.7 °C at 760 mmHg
    Meltingpoint 92-95 °C
    Density 1.27 g/cm³
    Purity ≥98%
    Smiles C1=CC=C(C=C1)C2=CC=C(C=C2)C(=O)C(F)(F)F
    Inchikey BJAFUGVGASJGBE-UHFFFAOYSA-N
    Solubility Slightly soluble in water; soluble in organic solvents
    Refractiveindex 1.578

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

    Packing & Storage
    Packing The chemical is packaged in a 5-gram amber glass bottle, tightly sealed with a screw cap and labeled with safety information.
    Shipping **Shipping Description:** 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde is shipped in a tightly sealed container, protected from light and moisture. It should be transported in compliance with applicable chemical transport regulations, typically as a non-hazardous material. Ensure the package is clearly labeled, and shipping documentation includes the chemical name, CAS number, and handling instructions.
    Storage Store **4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde** in a tightly closed container, protected from light and moisture, in a cool, well-ventilated area. Keep away from strong oxidizing agents, acids, and bases. Ensure the storage location is equipped with spill containment. Clearly label the container and restrict access to trained personnel. Follow all relevant chemical safety guidelines and regulations.
    Application of 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde

    Applications of 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde in Industrial Manufacturing

    As a specialized manufacturer of advanced chemical intermediates, we deliver 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde for industrial use cases where traceability, regulatory compliance, and formulation precision are pivotal. Presented below are key sectors and scenarios where this compound enters value-added processing pathways, supported by application-specific data, regulatory frameworks, typical formulation ratios, production touchpoints, and representative finished goods.

    1. Liquid Crystal Display (LCD) Intermediate Synthesis

    This material plays a critical role as a high-purity intermediate in synthesizing complex biphenyl derivatives leveraged for the formulation of advanced liquid crystal compounds. Its electron-withdrawing trifluoromethyl group is essential for tuning dielectric anisotropy, viscosity, and thermal stability in display mixtures, which downstream manufacturers use for thin-film transistor (TFT) LCDs and related display technologies.

    Industry compliance standards

    • IEC 61747 (LCD Quality Standards)
    • Restriction of Hazardous Substances (RoHS) Directive 2011/65/EU
    • REACH Regulation EC 1907/2006
    • ISO 9001:2015 for production traceability

    Typical usage ratio

    • Integrated at 0.2–3.5% by weight in intermediate synthesis stages, with the exact ratio determined by target dielectric profiles and viscosity targets for specific liquid crystal formulations.

    Downstream process integration

    • Introduced during the condensation or coupling reaction phase for custom biphenyl-based mesogens; exact process step depends on intended feature such as nematic phase range adjustment.

    Final product types

    • Multi-component liquid crystal display fluids
    • High-resolution TFT-LCD glass modules
    • Advanced display substrates for automotive and industrial panels

    2. Pharmaceutical Intermediate for Active Pharmaceutical Ingredients (APIs)

    The compound is routinely employed as a building block in the targeted synthesis of fluorine-bearing pharmaceutical intermediates. It provides a stable aromatic aldehyde moiety, favoring selective reactions such as reductive amination or condensation in medicinal chemistry routes. Major API developers use it for skeleton construction in antihypertensive, antiviral, and CNS-active molecule projects.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice Guide for APIs
    • USP–NF (United States Pharmacopeia–National Formulary) monograph guidance for fluorinated aromatic compounds
    • 21 CFR Part 210/211 for Finished Pharmaceuticals

    Typical usage ratio

    • Applied at 0.5–7 mol% with respect to the core pharmaceutical intermediate backbone; ratio is adjusted per route-specific conversion efficiency, scalability requirements, and stage-gate yield optimization.

    Downstream process integration

    • Employed at the aldehyde activation or Grignard addition/condensation stage in the multi-step synthesis of fluorinated biphenyl substructures, followed by purification under GMP controls.

    Final product types

    • Fluorinated antihypertensive drug substances
    • Central nervous system active pharmaceutical intermediates
    • API batch samples for clinical trials

    3. Agrochemical Intermediate for Selective Herbicide Synthesis

    This aromatic aldehyde is a key fluorinated building block used by agrochemical companies in the synthesis of innovative selective herbicides targeting resistant weed species. The compound enters downstream synthesis pipelines to impart lipophilicity and boost environmental stability in pyridyl- and phenoxy-based herbicide molecules.

    Industry compliance standards

    • FAO/WHO Specifications and Evaluations for Agricultural Pesticides
    • OECD Principles of Good Laboratory Practice (GLP)
    • Registration, Evaluation, Authorisation and Restriction of Chemicals (REACH, EC 1907/2006)

    Typical usage ratio

    • Formulated in synthesis at 1–4.5% by total reactant mass, with precise dosing adjusted based on desired herbicide selectivity and environmental half-life properties sought by product developers.

    Downstream process integration

    • Added to the condensation or cyanation step during fine-chemical building block synthesis, entering the active ingredient assembly prior to formulation and emulsification.

    Final product types

    • Fluorinated pyridyl herbicide actives
    • Phenoxyalkanoic acid-type herbicide technical concentrates
    • Broadleaf weed control product pre-mix formulations

    4. Organic Light Emitting Diode (OLED) Material Precursor

    Leading manufacturers in the electronic materials sector employ this compound for synthesizing functionalized biphenyl derivatives essential in emitter and host layer molecules for OLED displays and lighting devices. Its role centers on fine-tuning charge transport and photophysical characteristics through precision functionalization, allowing custom design of emission wavelengths and device lifetimes.

    Industry compliance standards

    • IEC 62341 Series (OLED Display Performance and Reliability)
    • RoHS Directive 2011/65/EU for electronics
    • ISO 14001:2015 for sustainable end-use materials

    Typical usage ratio

    • Included at 0.7–2.2% by weight in initial synthesis batches; batch size and loading ratio are determined by luminescence target, host/guest configurations, and purity required for device performance.

    Downstream process integration

    • Incorporated at the selective functionalization or aldehyde-to-imine conversion stage in custom biphenyl building block synthesis; full characterization follows to meet device integration standards.

    Final product types

    • OLED emitter molecules for consumer electronics
    • Host materials for display and lighting panels
    • Precursor blends for ink-jet printable organic semiconductors

    5. Specialty Polymer Additive Formulations

    Chemical producers utilize this raw material in crafting specialty fluorinated polymers and advanced composite resins. It participates in the functionalization and crosslinking of aromatic polymer chains, enhancing chemical resistance and optimizing dielectric constants for high-frequency insulation materials and advanced engineering plastics.

    Industry compliance standards

    • ASTM D638 for polymer tensile properties
    • UL 94 standards for flame retardance
    • ISO 9001:2015 for batch consistency

    Typical usage ratio

    • Added at 0.3–1.6% by polymer precursor weight, with ratios tuned according to resin backbone structure and target crosslinking density for final dielectric or mechanical performance.

    Downstream process integration

    • Integrated during the copolymerization step, following pre-reactor blending with monomeric raw materials to achieve uniform distribution prior to polymerization or extrusion.

    Final product types

    • Fluorinated epoxy and polyester resins
    • High-frequency insulation sheets for electronics
    • Dielectric plastic films and industrial capacitor substrates
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    Certification & Compliance
    More Introduction

    4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde: Practical Value from the Manufacturer’s Bench

    Direct Insights Into Our Product

    Handling fine organic intermediates every day lets us see what stands out in a crowded landscape of specialty chemicals. 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde is a molecule we know well, and we take pride in supplying it to those pushing the boundaries of pharmaceutical, agrochemical, and advanced materials research. For us, it's not just another chemical structure—it’s the result of painstaking process control, consistent purification, and relentless attention to detail across multiple production runs.

    Molecular Structure and Consistency

    The core structure features a biphenyl backbone, with a trifluoromethyl group at the 4’-position and an aldehyde at the 4-position. This arrangement brings two key features. The electron-withdrawing trifluoromethyl group and the reactive aldehyde combine to offer unique reactivity and physicochemical properties. Day after day, we focus our energy on ensuring batch-to-batch reproducibility: purity not drifting from established norms, color remaining clear and pale, moisture content reliably low. These small things matter. Once a sample passes our in-house controls, we know it will perform predictably, whether you’re scaling reactions for process development or carrying out screening in discovery labs.

    Where Chemists Put It to Work

    Laboratory teams come to us because they’re exploring novel drug scaffolds or sharpening the resolution of liquid crystals. The aldehyde function makes a difference in cross-coupling chemistry or when building up more complex architectures. When used as a key intermediate for synthesis, the compound enables access to novel derivatives that cannot be achieved easily through other means. Often, combinatorial libraries start here—diversifying the biphenyl scaffold to discover new biological activities, especially where the trifluoromethyl moiety can tweak binding affinity or stability. With material from our reactors, researchers assemble anti-inflammatory leads, explore ligands for medicinal chemistry campaigns, and construct building blocks for OLED and advanced polymer studies.

    Choices and Purity: A Manufacturer's Perspective

    Those familiar with biphenyl chemistry appreciate how the trifluoromethyl group distinguishes this aldehyde from others. The inherent electron-withdrawing effect modifies both solubility and reactivity, shifting reduction and oxidation profiles compared to methyl or non-substituted analogues. Our customers report sharper selectivity in palladium-catalyzed couplings and more robust intermediates, especially in air- and moisture-sensitive protocols. For us, keeping impurities tightly controlled means synthetic operations run smoothly downstream. Our QC department doesn’t accept “good enough”—stray isomers or over-oxidation impact the entire project in the user’s hands. We’ve built our process to minimize side reactions and contaminants that can reduce yields and introduce unknown variables.

    Manufacturing Reliability—Learned By Doing

    No supply chain runs on promises alone. We’ve invested in robust cycling reactors, cleanroom environments, and walk-through audits to ensure scale-up integrity. Every kilo that leaves our facility holds the fingerprint of in-house crystallization, monitored by trained chemists, run through validated drying ovens, and sealed to prevent environmental uptake. Our attention to the aldehyde's lability—its tendency to oxidize or hydrate—comes from experience; poor storage can ruin an entire batch, which is why our shipping protocols are unrelenting. Customers know we don’t compromise with “just-in-time” shortcuts. Reliability wins trust over the long haul.

    Comparison With Other Related Molecules

    Biphenyl aldehydes form an important sector in specialty organics. What sets 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde apart isn’t only the fluorinated group on the aromatic ring—even seasoned chemists sometimes underestimate the impact trifluoromethyl substituents can have on reactivity and metabolic pathways. In applications like pharmaceutical lead development or agrochemical seed chemistry, subtle substituent changes mean the difference between life and death for a project. Our experience shows: non-fluorinated variants sometimes fall flat in structure-activity studies, while this molecule’s electron distribution creates richer opportunities for medicinal chemists working on kinase inhibitors and enzyme modulators.

    Process Control: More Than a Data Sheet

    We work in lockstep with our analytical team, adjusting parameters in real time as each batch grows. Tight control over reaction time, solvent quality, and temperature gradients helps lock in a white, crystalline end-product—with fewer colored by-products that signal incomplete purification or unplanned oxidation. Our reaction kinetics have evolved from years of hands-on troubleshooting: every adjustment stems from running real chemistry, not just reading a journal article. We’ve learned that polymorphs or oily end-products, which pop up from less disciplined syntheses, hinder downstream reactions. The fine details of our workflow translate to a higher rate of success for everyone involved.

    Customer Collaboration—Real-World Feedback

    We maintain constant dialogue with formulation teams and R&D centers who rely on our product’s purity and performance. More than once, feedback after long nights in the lab has led us to refine our drying protocols or tweak our packaging material. For example, one major project in OLED development pointed out that minor water ingress in transit led to later-stage yield issues—a detail we only caught by listening closely to those running pilot lines on the other side of the globe. Changes don’t occur overnight, but when results show up in their analytics, our trust earns a solid footing. Our investment in secure, non-reactive container options has come directly from such shared experiences.

    Practical Storage and Handling Experience

    Sensitive aldehydes require more than just “cool and dry” warnings. We’ve encountered the full range: from customers who store large volumes over winter and need long-term shelf stability, to startups running small parallel syntheses with strict audit trails. Through shared learnings, we’ve dialed in protocols that limit atmospheric exposure and pack materials under inert gas when requested. Storage stability data isn’t just a box-ticking exercise for us—lost material means lost work, wasted time, and unexpected delays. Our aim is always to set our users up for smooth handover, so nothing is left to chance after the container opens.

    Analytical Support and Real Batch Data

    Each lot comes with a full suite of analytic data—NMR, HPLC, GC, and, if clients have particular concerns, additional impurity or stability screens. We’ve worked with companies bound by strict regulatory requirements who need to see non-detectable levels of solvents or metals in their campaign materials. Over time, we’ve expanded our platforms; if a customer requests mass spectrometry confirmation, we respond directly with new batch data, not years-old sample runs. This transparency upholds reliability and keeps the project pipeline moving. Access to actual batch spectra reassures our partners that what they start with will stay consistent until their goals shift and they pivot to next-generation molecules.

    Adaptability Under Tight Timelines

    It isn’t uncommon for scale-up requests to arrive with little warning. Production scheduling for reactive, niche compounds means juggling customer timelines against aging stock, environmental controls, and equipment demands. Our operators know each product by its real-world quirks—how fast it dissolves, how quickly it oxidizes, which suppliers deliver the cleanest raw materials. Decades of lab work and manufacturing grind have taught us to move quickly on good information. Priority shipments leave our doors with the same careful documentation and attention to purity as long-term standing orders. The team has built in flexibility without sacrificing the standards that matter daily.

    Instrument Testing and Internal Quality Assurance

    Reliance on multiple lines of analytical screening cross-checks every batch we make. Chemists spend hours calibrating instruments, running control samples, and comparing fresh lots to historical data. For 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde, we focus on tight melting point ranges, clean NMR spectra, and single-peak HPLC traces. Our QC protocols weed out batches with even faint traces of by-products or over-oxidized material. If an outlier appears, we rerun or reprocess before any product ships. Over the years, the direct conversations between our analytical, production, and shipping staff have led to actionable improvements and built a reputation for products that simply work as promised—never as an afterthought.

    Understanding End-User Applications

    We never lose sight of what actually happens after our material leaves the warehouse. The compound moves into multi-step syntheses, where every impurity or unexpected property can throw off an entire campaign. In API development, unpredictable aldehyde stability leads to weeks of troubleshooting; in materials research, color impurities or trace acids can compromise device performance. Our experience working directly with these use cases has formed our process changes and set expectations for both new and returning clients. By listening to the details from the lab bench, we strengthen every batch we make.

    Minimizing Environmental and Occupational Hazards

    Our plant teams deal directly with handling, waste management, and air quality controls each shift. We operate under strict safety standards, auditing all major steps for possible exposure risks. Ventilation, dust collection, and vapor capture are daily points of focus. Our commitment to environmental stewardship means working within waste minimization frameworks and pushing for higher chip yields, not just higher batch quantities. Handling trifluoromethylated organics requires tight personal protective equipment discipline and hands-on safety training for everyone in the process.

    Tracking Regulatory Shifts

    Global regulations can change quickly, and as manufacturers with export experience, we keep pace with documentation and compliance updates. We maintain close ties with professional chemical associations, participate in regulatory roundtables, and flag any hazards or restrictions that shift in key markets. This steady investment in compliance pre-empts delivery issues for customers who rely on continuous supply for their R&D timetables.

    Collaboration Over Commodity

    We see ourselves as more than just a warehouse with a catalog. Each customer project approaches our team differently: some want in-depth technical support with documentation, others care about reliability in scale-up batches or need prompt answers in complex legal environments. Our long-standing relationships with partners in North America, Europe, and Asia have shaped what we offer as manufacturers. Our door is open for direct feedback—many process improvements start with a single phone call or an email describing an unexpected lab finding.

    Evolution of Specifications for Next-Generation Needs

    Material science moves fast, and we prioritize learning from those leading the charge. The move from pharmaceutical R&D to advanced display technologies, to next-generation conductive polymers—all of these shape our own standards and adjustment cycles. We don’t lock ourselves into a fixed product profile; instead, we fine-tune according to emerging demand. If researchers want higher purity or alternative particle sizing, our team investigates, pilots, and verifies before updating shipments. We’ve responded to requests for reduced trace acid levels, improved filterability, or tailored packaging options. The flexibility to adapt quickly gives our customers more control over their own innovation process.

    Shared Success Built on Stability

    Those who use 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde, from startups to established multinational labs, recognize that a consistent source pays dividends in fewer surprises and more reliable outcomes. The quality of any science project comes down to the sum of its parts—the confidence in starting materials saves time, money, and dead ends. By focusing relentlessly on purity, traceability, and hands-on support, we help researchers and engineers skip headaches and speed up breakthroughs. Continuous improvement isn’t a buzzword here—it's the only way we know how to work.

    Moving Chemistry Forward With Proven Processes

    Our experience, forged in the day-to-day of chemical manufacturing, has shown us that responsible production of 4'-Trifluoromethyl-Biphenyl-4-Carbaldehyde is more than the sum of its specifications. From tangible investments in analytical gear and people, to process tweaks born from hard-earned lessons, we view success one batch and one client at a time. To those determined to push lab discoveries toward real-world applications, we stand ready—bringing not just product, but the practical knowledge to make each run smoother, every time.