Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

5-Amino-2,4-Difluorobenzotrifluoride

    • Product Name 5-Amino-2,4-Difluorobenzotrifluoride
    • Alias 5-Amino-2,4-difluorobenzotrifluoride
    • Einecs 615-129-2
    • 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

    169746

    Chemicalname 5-Amino-2,4-Difluorobenzotrifluoride
    Casnumber 86161-83-3
    Molecularformula C7H4F5N
    Molecularweight 197.11
    Appearance Off-white to pale yellow solid
    Meltingpoint 54-57°C
    Solubility Slightly soluble in water, soluble in organic solvents
    Purity Typically ≥98%
    Storagetemperature Store at 2-8°C
    Synonyms 5-Amino-2,4-difluoro-1-(trifluoromethyl)benzene
    Smiles Nc1cc(F)cc(F)c1C(F)(F)F
    Inchikey NYRYQXMHZVEJNO-UHFFFAOYSA-N

    As an accredited 5-Amino-2,4-Difluorobenzotrifluoride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 500g of 5-Amino-2,4-Difluorobenzotrifluoride is packed in a sealed amber glass bottle with a secure screw cap.
    Shipping **Shipping Description:** 5-Amino-2,4-Difluorobenzotrifluoride should be shipped in tightly sealed containers under ambient conditions. Ensure labeling complies with regulations. Store and transport in a cool, dry place, protected from direct sunlight and incompatible substances. Handle with care, following safety guidelines for chemicals with potential irritant properties. Consult SDS for detailed shipping and handling instructions.
    Storage 5-Amino-2,4-Difluorobenzotrifluoride should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers. Protect from moisture and direct sunlight. Label the container clearly, and ensure proper secondary containment to prevent leaks or spills. Store at room temperature unless otherwise specified by the manufacturer.
    Application of 5-Amino-2,4-Difluorobenzotrifluoride
    Purity 98%: 5-Amino-2,4-Difluorobenzotrifluoride with purity 98% is used in pharmaceutical intermediate synthesis, where it ensures consistent yield and product quality.Melting Point 66°C: 5-Amino-2,4-Difluorobenzotrifluoride with melting point 66°C is used in agrochemical formulation development, where it enables optimal processing during compound blending.Particle Size <10 µm: 5-Amino-2,4-Difluorobenzotrifluoride with particle size less than 10 µm is used in fine chemical manufacturing, where it improves dispersion and reactivity.Stability Temperature 120°C: 5-Amino-2,4-Difluorobenzotrifluoride with stability up to 120°C is employed in advanced polymer synthesis, where it increases thermal resistance of the final product.Moisture Content <0.5%: 5-Amino-2,4-Difluorobenzotrifluoride with moisture content less than 0.5% is used in electronics material production, where it prevents unwanted side reactions and enhances device reliability.Molecular Weight 213.1 g/mol: 5-Amino-2,4-Difluorobenzotrifluoride with molecular weight 213.1 g/mol is utilized in medicinal chemistry research, where it provides predictable pharmacokinetic profiles for lead compounds.
    Free Quote

    Competitive 5-Amino-2,4-Difluorobenzotrifluoride prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    5-Amino-2,4-Difluorobenzotrifluoride: Practical Experience from the Manufacturer’s Floor

    Keen Focus on Quality Production

    Every batch of 5-Amino-2,4-Difluorobenzotrifluoride that leaves our plant reflects the practical realities of chemical production. We’ve watched demand change from basic lab-scale samples to bulk deliveries as manufacturers have broadened their portfolios, especially in life sciences and advanced materials. Our process hinges on rigorous in-line analytical controls and well-trained teams who handle this compound daily; every drum, every kilogram, every sample gets checked not only for purity, but for residue profiles and stability under transport conditions. Standard models from our lines typically deliver purity at or above 99 percent by HPLC, but the value shows not just in the numbers, but in predictable behavior and consistency over time.

    Core Specifications, as Seen From the Factory

    Customers usually take delivery in white to off-white solid form, crystalline, with a chemical structure formula C7H4F5N. This product’s melting point falls in the 46 to 49°C range, which keeps things straightforward during storage and handling—no sweating in ambient warehouse conditions, no clumping or problematic absorption. The trifluoromethyl and difluoro substitutions are solidly bonded; GC analysis in-house checks every line for undesired byproducts, which means less troubleshooting later for both our production technicians and the end user.

    We maintain batch records that go beyond just purity metrics. Color, particle consistency, and residual solvent content sit as part of every lot’s signature. If you have tighter needs for residual solvents or trace impurities, it isn’t a theoretical challenge from our angle. Lab technicians, blending operators, and packaging teams work from the same spec sheets, making adjustments as requests change — we have watched clients move from 25 kg fiber drums to custom-packaged kilo bottles for specialty research fit.

    Real-World Applications and Why This Molecule Matters

    Throughout the past decade, 5-Amino-2,4-Difluorobenzotrifluoride has found persistent demand in pharmaceutical intermediates and agrochemical development. Several companies run it as a key step in API synthesis pathways where the precise pattern of fluorines and amino group shift reactivity without overcomplicating downstream reactions. We see customers combine this molecule to build up complex heterocycles, often for pilot projects that move to regular campaigns. On the bench, workers appreciate its manageable odor and low volatility, which keeps operator exposure risk lower in areas with less advanced ventilation.

    Research chemists usually report strong nucleophilicity from the amino group, but the difluoro and trifluoromethyl pattern blocks undesired side reactions. In screening programs, this product helps bridge the gap between aromatic amines and more reactive fluorinated partners. As a manufacturer, we see these benefits manifest in predictable cycle times and clean reaction profiles, minimizing downstream purification. 

    Hands-On Differences from Similar Fluorinated Amines

    In a market crowded by benzylic fluorides and other amino aromatics, 5-Amino-2,4-Difluorobenzotrifluoride stands out on the shop floor due to its stability. Operators rarely call in for clumping, caking, or bulk degradation when stored for months under standard dry conditions. Chemicals with similar substitutions often show a wider melting range or shift colors under UV. In our tank farm, this translates to less wasted material and fewer rejected lots, which directly impacts consistency and cost control.

    Some competitors offer closely related difluorinated benzotrifluorides, but there’s always a catch—often a shift in amine placement or missing fluoro substitutions. These changes make the material less fit for certain nucleophilic substitution or coupling reactions. Over multiple multi-tonne campaigns, we have encountered fewer storage hazards and cleaner handling with our product than with other substituted amines. Feedback from plant partners and end users point to fewer dusting incidents, smoother transfer, and quick dissolution in a range of reaction solvents from acetonitrile to DMF.

    How Decades in Production Shape Our Approach

    Long-running campaigns in the plant teach lessons that don’t always make it to technical sheets. Over years of manufacturing this compound, we’ve traced what happens if cooling rates are too rapid, or if solvent stripping goes unchecked—such errors can trigger batch failures or odd impurity profiles. Our adjustments moved in step with what the real-world customer needs—a product that arrives ready to use, requires no additional drying, and performs predictably under reaction conditions. 

    Regular hands-on reviews highlight physical properties: a batch sourced from less experienced outfits may show broader melting ranges, suggesting more unpredictable reactions on the user side. Early versions on the market sometimes had persistent odors or variable color, traced back to incomplete conversions or non-uniform crystallization. By refining our workups and drying steps, adopting anti-static handling, and investing in better in-line analytical tools, reliability shot up—not as a marketing tactic, but to meet our own operational efficiency targets.

    Practical Handling and User-Focused Packaging Insights

    Bulk handlers working with the compound appreciate straightforward storage and transport. Most users place it on regular warehouse shelving, and the stability record means no special warranties or rush shipments for winter delivery. From our angle, consistent particle sizing also improves pourability—during unloading, materials arrive evenly and don’t clog hopper lines. For our crew, this results in fewer transfer breakdowns, less cleanup, and minimal raw material loss across multiple production rounds.

    We field real questions about package sizing from R&D labs and scale plants. Over time, 1 kg and 5 kg steel bottles proved popular, tailored for smaller laboratories or process-development teams. At larger scales, 25 kg fiber drums balance ease of movement and operator safety—forklifts and pallet jacks handle these effortlessly. For specific solvent compatibility or tight-capped needs, we pivot quickly, drawing on in-house fabrication teams who outfit custom containers by request. Every alteration traces back to practical experience on floors, not in catalog copy.

    Tracing the Market Shifts in Sourcing Criteria

    As regulatory standards evolved, customers began scrutinizing sources more closely—auditing quality systems, checking for solvent management, and tracking impurity trends batch to batch. Our operational history lines up with supply chain traceability demands: full lot records for each drum, from source input to finished packout. This built-in discipline has more than once saved downstream customers untold hours on regulatory filings. Knowing the source and manufacturing pathway now carries as much weight as the product’s technical performance.

    Some firms try to fill similar needs with non-fluorinated or differently substituted benzotrifluorides. In head-to-head processing, ours holds up under harsher purification regimes and doesn’t degrade as easily during post-reaction workups. In pharmaceutical and crop-protection lines, a small shift in impurity profiles changes analytically significant results. Keeping our manufacturing under one roof—no outsourcing, no multi-country handoffs—lets us quickly address any change or complaint, and adjust process controls for the next run. 

    Worker Feedback and Consistent Process Yields

    Insights don’t just come from chemists and managers. Packaging and material handling staff notice, too. The low-dusting behavior of 5-Amino-2,4-Difluorobenzotrifluoride cuts down on respirator use, PPE fatigue, and workplace mess. Seasoned plant workers watch how powders flow from bag to intermediate blend—any trickle of fines or humidity-based caking slows production, not just in theory, but year in, year out. Our documented yield rates for bulk lots consistently hit over 95 percent—slashed downtime and faster line changeovers back up those numbers.

    New sites or short-run campaigns almost never see major loss in transfer steps, even in summer production windows. We reported lower frequency of vacuum-conveyance hiccups and filter blockage compared with other amine or difluorinated analogs. In turn, this reliability gives production planners the confidence to program longer runs, knowing that sublot variation or delayed shipments will not disrupt clients’ schedules.

    R&D-Centric Customization: An Embedded Advantage

    Years of close work with specialty chemistry teams have influenced our approach to customization. If a customer targets a unique impurity profile or needs unusually high amine stability for a longer storage window, we pull from process tweaks discovered through field requests. Unlike generic suppliers who treat every order as a black box, we rely on real-time input from client feedback and laboratory trials.

    Some product improvement suggestions started with an unusual trial—a client requested a finer particle size, but the initial grinding process led to dusting and agglomeration. By spinning up pilot lots, we learned that careful temperature control during micronization kept performance reliable without introducing new risks. These stories represent how iterative improvement, grounded in true manufacturing runs, beats any off-the-shelf approach.

    Understanding the Final End Uses: From API to Specialty Materials

    Customers using 5-Amino-2,4-Difluorobenzotrifluoride have brought cases from all over—some incorporate it to tweak electronic characteristics for specialty polymers, others rely on it as a gatekeeper in forming novel aromatic linkers for pharmaceutical precursors. No matter the end goal, behavior in process gives the best proof of quality: operators report fewer downstream side products, more consistent color and crystalline uniformity, and simpler reaction monitoring compared to other aminated aromatics.

    Where other substituted benzenes show loss of performance as storage time increases or after multiple container transfers, our offering holds stability. This impacts everything from accuracy in HPLC runs to savings on purification consumables. Plant engineers and QA managers report fewer rework cycles and less demand for troubleshooting unplanned variables from raw materials, reflecting our investment in precise synthesis and careful isolation.

    Continuous Improvement: Lived Lessons from the Manufacturer’s Side

    Improvement is more than a buzzword. Whole-plant reviews take place each quarter—process managers, analytical chemists, and material handlers check trends over months’ worth of output. We study repeated sampling data, time-of-flight MS checks, and physical inspections down to the pallet. This lets us spot where batches trend off-spec before it costs anyone time or reputation. Our solvent recovery and waste stream management practices grew from these plant-level reviews—less solvent waste, stronger bottom lines, and safer employee working conditions.

    Storage upgrades emerged after workers reported bottle damage during seasonal shifts. We trialed new drum types and oversaw temperature-logging on-site, proving that product longevity matches its official data. These are adjustments that save buyer dollars and reinforce the product’s role in critical syntheses.

    Beyond Price: The real value in direct manufacturer partnerships

    Buyers in this field often weigh price against reliability, support, and regulatory risk. As a direct producer, we support every order from input selection to shipping manifest. Equipment investments flow back into product consistency—high-vacuum distillation, upgraded storage, on-site analytical labs. This direct connection matters, especially when demand spikes disrupt the market or tighter specs suddenly take center stage.

    By being closer to the practical realities of daily production, we are able to improve both the product and the customer relationship without relying on intermediaries. Technical service requests, batch documentation, and even urgent last-minute batch reruns get immediate attention from our core teams. That responsiveness often proves more valuable than surface-level discounts, especially in regulated applications like drug research or proprietary material development.

    The Future Role of 5-Amino-2,4-Difluorobenzotrifluoride in Industry

    Looking at market forecasts, we see increased attention towards fluorinated intermediates in both pharma and advanced materials. Process teams in the field want products that offer real-world process stability and cleanliness. The increase in green chemistry initiatives and safer plant environments makes performance features like low dust, manageable odor, and robust shelf life all the more critical.

    New applications surface every year—from niche ligands for catalytic work to molecular building blocks for diagnostics—and every adjustment in our production line shapes how flexibly we can serve those demands. Our learning comes from seeing, daily, exactly how this chemical behaves in tanks, drums, reaction vessels, and final labs; changes here impact efficiency for dozens of downstream users.

    Final Thoughts from Years on the Manufacturing Side

    What distinguishes quality in chemicals like 5-Amino-2,4-Difluorobenzotrifluoride can’t be summed up by purity numbers alone. The lessons learned over decades—minimizing handling issues, managing impurity drift, building process resilience—compound each season. Users trust products built by teams grounded in daily operations, able to adapt line conditions and offer transparent documentation on demand.

    This approach gives end users the flexibility to meet tighter end-product specs, reduce time spent troubleshooting, and meet regulatory milestones smoothly. In a field where small variables lead to major downstream changes, groundwork at the manufacturing end turns a generic name into a practical, reliable solution for critical synthetic steps.