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1-Bromo-4,4,4-Trifluorobutane

    • Product Name 1-Bromo-4,4,4-Trifluorobutane
    • Alias 1-Bromo-4-(trifluoromethyl)propane
    • Einecs 216-522-8
    • 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

    587525

    Chemicalname 1-Bromo-4,4,4-Trifluorobutane
    Casnumber 461-96-1
    Molecularformula C4H6BrF3
    Molecularweight 190.99
    Appearance Colorless liquid
    Boilingpoint 110-112 °C
    Meltingpoint -80 °C
    Density 1.552 g/mL at 25 °C
    Refractiveindex 1.386
    Flashpoint 32 °C (closed cup)
    Solubilityinwater Insoluble
    Vaporpressure 12 mmHg at 25 °C

    As an accredited 1-Bromo-4,4,4-Trifluorobutane 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 100 mL of 1-Bromo-4,4,4-Trifluorobutane, sealed with a tamper-evident cap and labeled for laboratory use.
    Shipping 1-Bromo-4,4,4-Trifluorobutane is shipped in tightly sealed containers, compliant with local and international hazardous material regulations. It is classified as a flammable liquid and may pose environmental or health hazards. Proper labelling, documentation, and protective packaging are required. Transportation is typically by ground or air, depending on destination and quantity.
    Storage 1-Bromo-4,4,4-Trifluorobutane should be stored in a cool, dry, well-ventilated area, away from sources of ignition, heat, and incompatible substances such as strong oxidizers. Keep the container tightly closed and properly labeled. Store in a chemical-resistant, corrosive-proof container to prevent leaks. Protect from moisture and direct sunlight. Use only in areas with appropriate chemical safety controls.
    Application of 1-Bromo-4,4,4-Trifluorobutane

    Applications of 1-Bromo-4,4,4-Trifluorobutane in Industrial Manufacturing

    As an established producer specializing in halogenated intermediates, we supply 1-Bromo-4,4,4-Trifluorobutane to several core industrial fields. Each sector leverages this material based on its distinct chemical behavior, regulatory landscape, and processing demands. Below we detail proven downstream scenarios, manufacturing steps, and compliance controls that guide responsible usage and performance assurance for our direct customers.

    1. Agrochemical Intermediate Synthesis

    Leading agrochemical manufacturers use 1-Bromo-4,4,4-Trifluorobutane as a key alkylating reagent in the production of fluorinated herbicide and fungicide actives. During early-stage synthesis, it enables the introduction of stable trifluorobutyl groups onto aromatic or heterocyclic cores, significantly modifying bioactivity profiles and degradation kinetics. Process control focuses on safe halogen handling, regulated reactor conditions, and precise feed ratios to avoid off-target reactions and ensure yield purity. Residual starting material limits must meet both local and export market requirements.

    Industry compliance standards

    • REACH Regulation (EC) No 1907/2006
    • US EPA regulations for pesticide precursors (40 CFR 712/721/799)
    • ISO 9001 Quality Management for Raw Material Traceability
    • China GB 2763 Maximum Residue Limits for Pesticides

    Typical usage ratio

    • 0.3–0.7 molar equivalents per target molecule, adjusted according to substitution pattern and downstream conversion efficiency

    Downstream process integration

    • Alkylation step after initial core synthesis, typically in the first or second synthetic stage
    • Followed by purification, post-treatment (e.g., hydrolysis, oxidation), and active formulation

    Final product types

    • Fluorinated sulfonylurea herbicides
    • Triazole-based fungicides
    • Selective weed control actives
    • Co-formulated agrochemical APIs

    2. Pharmaceutical API Intermediate

    In pharmaceutical process chemistry, this compound serves as an intermediate for constructing trifluorobutyl-substituted heterocycles and saturated chains in small molecule APIs. Medicinal chemists value its reactivity in nucleophilic substitution protocols, especially in the final or penultimate step, where stringent traceability and impurity controls apply according to cGMP. Handling and documentation follow validated process sheets, with closed-loop transfer and in-process purification to limit operator exposure and ensure consistency batch-to-batch. End users require full impurity profiling and lot-based certification.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • USP <823> and Ph. Eur. 5.4 guidance for intermediates
    • 21 CFR Part 211 Finished Pharmaceuticals
    • ISO 22716 GMP for raw material handling and audit

    Typical usage ratio

    • 1.05–1.20 equivalents per coupling partner, excess adjusted for conversion targets and downstream purification capacity

    Downstream process integration

    • Late-stage alkylation in API synthesis, introduced after chiral or core scaffold construction
    • Followed by crystallization, drying, and release for pharmaceutical use

    Final product types

    • Fluorinated nervous system drugs (e.g., CNS actives)
    • Antiviral and oncological small molecule APIs
    • Intermediates for final-hydrochloride, tartrate, or sulfate API conversion
    • Advanced building blocks for medicinal chemistry

    3. Electronic Material Synthesis

    The electronics industry sources high-purity 1-Bromo-4,4,4-Trifluorobutane for producing advanced dielectric and photoresist components used in semiconductor manufacture. Its trifluorobutyl group provides increased thermal and chemical stability, critical for thin-film process reliability. Usage requires ultra-trace heavy metal and halide control. Process loops operate with vapor-phase or solution-phase alkylation under strictly controlled atmosphere, followed by multi-stage distillation and quality monitoring against electronics standards. All supply must document contamination risk and chain-of-custody to the finished wafer-level product.

    Industry compliance standards

    • SEMI C3 (Chemical and Gases Purity Specifications)
    • IEC 60749 for Material Moisture Sensitivity
    • ISO 14001 Environmental Management Certification
    • RoHS EU 2011/65 for hazardous substance limits

    Typical usage ratio

    • 0.2–0.6 molar equivalents per polymer or crosslink target, specified by final property requirements in high-performance films

    Downstream process integration

    • Primarily used during monomer functionalization, either before polymerization or as a post-polymer modification
    • Includes closed-transfer, distillation, and particle-size grading before blending

    Final product types

    • Photoresist precursors
    • Microelectronic grade dielectric polymers
    • Specialty fluorinated films for semiconductor fabrication
    • Coating materials for MEMS and advanced circuitry

    4. Specialty Fluoropolymer Chain Extension

    Major fluoropolymer producers utilize this bromo-trifluorobutyl compound as a chain-extension and termination agent during the synthesis of advanced elastomers and thermoplastics. Its function tailors mechanical and surface properties, improving resistance to solvents and thermal degradation. Dosing requires calibrated feed based on target molecular weight and polymer branching goals. Regulatory scrutiny focuses on occupational health in closed-reactor environments, as well as full documentation of product identity for further downstream distribution. Manufacturers must validate each batch for residuals and impact on melt viscosity.

    Industry compliance standards

    • ASTM D2116 for fluoropolymer quality
    • ISO 10993 for indirect device contact
    • OSH Act guidelines for halogenated workplace exposure
    • UL 94 Flammability Ratings for end-use applications

    Typical usage ratio

    • 0.1–0.5 wt% of total monomer charge, modulated according to desired polymer chain length and flexibility

    Downstream process integration

    • Added after main monomer feed as a terminal/branching agent in emulsion or solution polymerization
    • Polymer is then precipitated, washed, and pelletized

    Final product types

    • High-performance fluororubber compounds
    • Specialized thermoplastic fluoropolymers
    • Chemical-resistant tubing and sheets
    • Automotive and aerospace sealing materials

    5. Fine Chemical Building Block in Flavors and Fragrances Synthesis

    A select group of fine chemical houses employ the material to construct specialty fluorinated molecules for use as safe, non-reactive carriers and fixatives within professional flavor and fragrance compositions. Here, reactivity and odor neutrality are essential, with careful process conditions in place to eliminate halo byproducts and achieve cosmetic grade purity. Compliance extends from raw material supply through finished blend release, subject to global food and cosmetic regulations. Each batch supplies traceability and full analytical certification.

    Industry compliance standards

    • IFRA Standards and Guidance
    • US FDA 21 CFR Parts 170-199 (Indirect Food Additives)
    • EU Regulation (EC) No 1334/2008 for Flavorings
    • ISO 22716 Cosmetic GMP

    Typical usage ratio

    • 0.5–3.0 wt% of total carrier base, refined per final blend performance and fixation time requirements

    Downstream process integration

    • Initial synthesis as building block, followed by coupling and purification toward final fragrance carrier base
    • Added during fixative blending, then stabilized and checked for contaminant-free status prior to packaging

    Final product types

    • Professional fragrance fixatives
    • Flavor carrier bases for food-grade applications
    • Encapsulation intermediates for slow-release scent compounds
    • Cosmetic delivery systems for volatile actives
    Free Quote

    Competitive 1-Bromo-4,4,4-Trifluorobutane 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.

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    Certification & Compliance
    More Introduction

    Introducing 1-Bromo-4,4,4-Trifluorobutane: Real Insights from Our Production Floor

    A Closer Look at What We Craft

    In this industry, we meet demand head-on with a blend of precision, long-term know-how, and a careful eye for improvement. 1-Bromo-4,4,4-trifluorobutane isn’t some mystery reagent to us—it’s a staple we’ve made for years, a fine example of synthetic chemistry meeting the grit of daily manufacturing. The way our team approaches this product sets it apart from material pushed through a trading desk or scooped up from an interchangeable source. We’ve invested in the details, right down to each batch on the line, and backed every bottle with hands-on know-how.

    Our Approach to Model and Specification

    We call this model 1-Bromo-4,4,4-trifluorobutane, defined by the CF3CH2CH2CH2Br structure and the unique blend of reactivity and physical characteristics that come from that molecular design. Decades of direct production experience have seen us optimize our process, where purity is not simply a target, it’s a result of clear protocols through all phases—starting from feedstock selection, right through to final packaging. Our team relies on GC analysis for every drum, consistently driving purity above 98% unless a customer’s process sets another target. Water content stays low, as we use proven drying methodologies after synthesis. We aren’t theorizing from behind a desk—we’re measuring, adjusting, and running every detail ourselves.

    Why It Matters in Synthesis

    Buyers come to us aiming to add a trifluorobutyl group or a bromobutyl chain to existing backbones, usually in agrochemicals, specialized polymers, or pharmaceutical intermediates. Some find that 1-bromobutane doesn’t give enough fluorination, others see 4,4,4-trifluorobutanol lacks the aliphatic chain structure they need for their chemistry. What 1-Bromo-4,4,4-trifluorobutane offers lies in the balance—access to SN2 chemistry on the primary bromo group, the bulk and electron-withdrawing punch of the trifluoromethyl, and a volatility that doesn’t run you into headaches common with more fragile bromides. The difference gets noticed in reaction yields and less fuss during purification steps.

    Handling Practicalities: Produced for Reliability in the Plant

    Scale never stays still in this market; one year it’s kilogram lots for a specialty customer, the next it’s multi-ton orders heading to a global polymer player. The design of our plant ties directly into how 1-Bromo-4,4,4-trifluorobutane holds up over time. Bottling in amber glass or poly drums prevents UV breakdown. The drums are nitrogen-purged before closure, limiting oxidation which can creep up and create off-odor or brown tinge in untreated samples. We see stability that holds for months under our standard storage, verified by our internal QA team running periodic retests from stored samples. Supporting repeat users relies on this backbone of logistical consistency as much as the molecular structure itself.

    Application Insights Straight from Feedback Loops

    Fine chemical and pharmaceutical customers are constantly adapting, running new chemistry through multi-step cascades or shuffling protection strategies. We stay plugged into their real experience: someone working a Grignard addition, another needing a direct displacement for heterocycle building blocks. The recurring message? This molecule delivers higher selectivity compared to generic alkyl bromides, with limited by-product from over-alkylation or cleavage, which can save hours on downstream column work. Differences from cousin products like 1-bromopentane or 4-bromobutanol appear stark when complex fluorinated side chains are non-negotiable for function.

    From Our Bench: Manufacturing Reflections on Safety and Sustainability

    Solvent handling and by-product management go together with hazardous raw materials in specialty bromination chemistry. Our synthesis choice cuts out common side reactions with water or alcohol traces, reducing hydrolysis to a trace level by using rigorously dried lines and vessels. Workflows sit on the foundation of mandatory PPE, fume control, and close monitoring, but daily repetition proved to us that robust housekeeping organizes both quality and safety gains.

    Disposal matters. Bromine and fluorinated waste streams aren’t handled lightly. Recovered solvents are sent for external incineration under strict controls, with direct records kept on quantities for both regulatory and ESG reporting to our clients. We’ve shifted large portions of facility cooling to glycol-based closed-loop systems, stripping back older water-cooling methods to minimize effluent. Our production approach aims at minimizing excess, closing the loop where possible, and keeping trace residuals as low as process chemistry allows.

    The Value in Long-Term Process Experience

    Markets chase new derivatives with speed, but most buyers circle back if the source misses on reliability or shelf life. Our repeat customers come in from as far as Japan and Germany after running side-by-side comparisons. Many mention that, with other options, they see the color darken over time even sealed under nitrogen, or they detect background peaks in the NMR showing up as unknown impurities. Transparent batch certificates help, but what matters more is our phone lines and email staying open for troubleshooting. If a customer catches an off-note or a cloudy appearance, we trace it back through our logs, batch samples, and talk through solution pathways.

    We keep extra reference samples from every major lot. If there’s ever a dispute, those benchmarks put any speculation to rest. No third-party rep handles these calls; the actual production chemists and QA analysts follow through themselves.

    Lessons Learned from Process Improvements

    A few years back, we faced a challenge: trace bromide by-products showing up in a customer’s GC after long-haul shipping through the tropics. Instead of sweeping the issue aside, we switched to an alternative synthetic route, using a cleaner precursor and a milder bromination agent. To control moisture, we replaced open drum transfers with closed-loop loading and in-line drying columns. The number of product complaints from this region dropped by over 80% in the following year. These changes didn’t just help our bottom line—they shifted expectations in the market. Some customers now ask for the newer grade by name, having tasted the consistency difference first-hand.

    Where 1-Bromo-4,4,4-Trifluorobutane Fits Beside Similar Building Blocks

    A question often lands in our inbox: “Can we swap this for 1-bromobutane, or maybe a fluorinated alcohol?” Chemically, small differences in structure drive big changes. The trifluoro group isn’t just a pretty substitution; it affects lipophilicity, boiling point, and reactivity curves in measurable ways. People testing a direct substitution in early-stage reactions learn fast that yields or selectivity slide, sometimes to the point of making isolation not worth the extra cost. Downstream, the chemical stability of the final product gets an extra boost—pharmaceutical chemists especially notice the metabolic resistance conferred by the CF3 group.

    Physical handling steps differ as well. Our product’s volatility always stands below light alkyl bromides yet offers more air stability than many bromoalcohols. The net result: simpler storage, fewer transport hurdles, and an overall reduction in wastage from loss or decomposition. Microbatch users and bulk processors both see value in that predictability, without stepping back from performance gains.

    Regulatory and Analytical Readiness

    Standards rise year after year. Our QC methods keep pace, regularly audited alongside local environmental authorities and multinational partners. Each batch run receives an in-process analytical dossier, not just a boilerplate certificate. Spectroscopic identity confirmation, GC impurity profiles, and detailed trace water/organic acid reports are all generated in-house. Analytical standards are regularly validated, compared against external reference material, to keep our data above audit thresholds. Customer trust grows from this transparency, and our analytic staff stand ready to walk through test details if auditor questions or nonconformances ever arise downstream.

    Industry Demand Shifts and Tailored Applications in Perspective

    Emerging markets in advanced polymers, lithium battery solvents, and ag-chem driven crop protection solutions continue to push new uses for trifluorinated building blocks like 1-Bromo-4,4,4-trifluorobutane. In recent years, we’ve seen more requests for custom packaging, especially antistatic options or metric-only drum sizes to fit specific site requirements. Each special request leads our engineers to rethink packaging logistics, not as a sideline but as a crucial finishing step to safeguard high-value material all the way through a global supply chain.

    We see downstream synthesis shifting as well—green chemistry principles are driving customer interest in low-waste protocols and alternative, less hazardous solvents for both their own processes and ours. Our customer support team shares best-practice findings in these areas, from recycling dehydrogenation catalysts to optimizing reaction scale-up, when our user base asks for advice.

    Direct Connections: Why Being the Manufacturer Matters

    Buyers often ask about traceability, documentation, or supply chain stability after tough lessons learned during market shortages or regulatory bottlenecks. Unlike product reps or distant resellers, we issue direct logs and traceable batch records down to raw material origin for every shipment. Having complete oversight cuts out months of runaround if a purge, recall, or minor rework becomes necessary. We have handled direct remediation or compensation in the rare event of nonconformance, shipping replacement drums or refunding transactions directly, and these actions helped us collect on-the-ground insights into what customers really need in a pinch.

    Our synthesis experts spend hands-on time not only in the plant but also consulting on production issues unique to each customer’s formulation process. This might look like adapting additive loading, discussing storage improvements, or mapping out new analytical tests specific to a customer’s end-use. Our credibility is built on all of this—not just the molecule, but the experience and response at every stage from order to application troubleshooting.

    Preparing for the Future: Technical Investment and Market Accountability

    New regulations on brominated and fluorinated substances demand advances in both purity and data transparency. Our team collaborates with process engineers, environmental scientists, and external consultants on process optimizations that anticipate global regulatory changes. Beyond compliance, these improvements often reduce energy input or limit hazardous waste output. Our R&D pipeline includes piloting continuous rather than batch-based production for key intermediates, which leads to more precise temperature and reactant control. This added control pays off in batches free from surprise by-products that smaller or outsourced facilities may not catch.

    Customer education remains a continual theme. Direct feedback from buyers about solubility, waste, and performance steers our technical documents and informs new FAQ developments. No outside agency interprets these details—we gather, troubleshoot, and publish ourselves based on cumulative production and client experience. This loop of iterating on the practical details, without glossing over problems, has strengthened our standing as a reliable manufacturer in a global market filled with unknowns.

    Closing the Loop: Our Promise to Customers and End Users

    Whether a client runs novel research or a 24/7 synthesis plant, we serve each with direct accountability, insight, and manufacturing transparency. Every bottle of 1-Bromo-4,4,4-trifluorobutane reflects a process designed by people who have seen it work in every possible scenario and have changed it when cleaner, safer, or more robust solutions come to light. The reliability, quality, and technical backup attached to every order are hard-won and sustained by continual reinvestment and open communication between our chemists, production leads, and the end users putting this compound to work around the globe.