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2,2,7-Trimethyl-3,5-Octanedione

    • Product Name 2,2,7-Trimethyl-3,5-Octanedione
    • Alias Diisobutyryl acetone
    • Einecs 217-299-2
    • 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

    529885

    Chemicalname 2,2,7-Trimethyl-3,5-Octanedione
    Molecularformula C11H20O2
    Molecularweight 184.28 g/mol
    Casnumber 1070-10-6
    Appearance Colorless to pale yellow liquid
    Boilingpoint 227-229 °C
    Density 0.904 g/cm3 (at 20 °C)
    Meltingpoint -10 °C
    Refractiveindex 1.444
    Solubility Insoluble in water; soluble in organic solvents
    Flashpoint 98 °C
    Purity Typically >98%
    Odor Mild
    Stability Stable under recommended storage conditions
    Storagetemperature Store at room temperature

    As an accredited 2,2,7-Trimethyl-3,5-Octanedione factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A 500-gram amber glass bottle with a secure screw cap, labeled "2,2,7-Trimethyl-3,5-Octanedione" and hazard information.
    Shipping 2,2,7-Trimethyl-3,5-octanedione is shipped in tightly sealed containers, typically made of glass or high-density polyethylene, to prevent leakage and contamination. The chemical should be stored and transported in a cool, dry, and well-ventilated area, following all relevant regulations for safe handling and shipment of organic compounds.
    Storage 2,2,7-Trimethyl-3,5-octanedione should be stored in a tightly sealed container, in a cool, dry, well-ventilated area away from direct sunlight, heat, and sources of ignition. Keep away from incompatible substances such as strong oxidizing agents. Ensure that the storage area is equipped with proper spill containment measures, and label the container clearly. Handle using appropriate personal protective equipment.
    Application of 2,2,7-Trimethyl-3,5-Octanedione

    Applications of 2,2,7-Trimethyl-3,5-Octanedione in Industrial Manufacturing

    As an original manufacturer specializing in the production of 2,2,7-Trimethyl-3,5-Octanedione, we support a range of industrial supply chains. Our focus is on real downstream sectors where this diketone intermediate has established value in chemical synthesis, formulation, and specialty production. The following application scenarios outline distinct compliance, process, dosage, and product details based on actual market and regulatory requirements.

    1. Agrochemical Intermediate Synthesis

    2,2,7-Trimethyl-3,5-Octanedione serves as a core synthon in the manufacture of specific herbicide and pesticide intermediates, especially for pyrazole and triketone-based actives. Chemical process engineers introduce the diketone during the formation of heterocyclic building blocks via condensation or cyclization. Downstream products undergo integration into regulated agricultural chemical portfolios, following strict impurity and trace metal controls from raw material to batch release.

    Industry compliance standards

    • ISO 9001:2015 Quality Management System
    • FAO/WHO Specifications for Pesticide Ingredients
    • REACH Regulation (EC) No 1907/2006 for intermediate notification
    • OECD Guidelines for the Testing of Chemicals

    Typical usage ratio

    • 10–35% by mass, optimized per synthesis yield and purity requirements for each downstream compound.

    Downstream process integration

    • Direct addition to multi-stage condensation reactors following initial charging of amine or ketone co-reactants.
    • Careful temperature and pH control to ensure diketone stability and maximize conversion.
    • Used under nitrogen blanket when necessary for oxidation-sensitive transformations.
    • Sampling protocols in-process to monitor residual diketone and control batch transition to subsequent reactions.

    Final product types

    • HPPD-inhibitor herbicide actives (e.g., mesotrione, tembotrione intermediates)
    • Pyrazole-pyridine fungicide intermediates
    • Pesticide regulatory submission samples for compliance batches
    • Custom agrochemical research compounds

    2. Pharmaceutical Chemical Building Blocks

    Pharmaceutical synthesis laboratories utilize 2,2,7-Trimethyl-3,5-Octanedione as a diketone source for preparing complex cyclic or bicyclic intermediates. Medicinal chemistry teams integrate it into SAR programs targeting nitrogen- or oxygen-heterocycle APIs. Process development groups rely on its consistent carbon framework for scale-up and regulatory documentation, especially in impurity-profiling workflows.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • USP/NF & EP guidelines for pharmaceutical raw materials
    • FDA DMF support for advanced intermediates
    • ISO 14001:2015 Environmental Management where required

    Typical usage ratio

    • 5–25% relative to target molecule mass; adjusted according to protection/deprotection sequence and scale.

    Downstream process integration

    • Introduced at ring-formation or functionalization step of multi-step synthesis.
    • Reacts with amine, hydrazine, or other nucleophilic reagents under catalytic conditions.
    • Incorporation tracked by HPLC and GC-MS to control for downstream impurity carryover.
    • Adherence to closed-system charging during handling for pharmaceutical QC compliance.

    Final product types

    • API (Active Pharmaceutical Ingredient) building blocks
    • Regulatory starting materials for generic drug dossiers
    • Specialty research chemicals for clinical candidates
    • Process impurity standards and control samples

    3. Fragrance and Aroma Chemical Manufacture

    Leading fine chemical producers utilize the ketone for the synthesis of musky, woody, or amber-like aroma chemicals. Its structure fits as a key component in cyclization and alkylation steps yielding macrocyclic or polycyclic aroma ingredients. The raw material’s purity impacts downstream color, volatility, and olfactory group compliance. Batch documentation aligns with IFRA and other fragrance industry requirements for global fragrance compound registrations.

    Industry compliance standards

    • IFRA (International Fragrance Association) Standards
    • REACH Substance Registration for aroma chemicals
    • ISO 9235:2013 (Aromatic raw materials – Nomenclature)
    • SAFETY DATA SHEET (GHS/CLP) requirements for transport and labeling

    Typical usage ratio

    • 2–15% as starting material concentration; adjusted for target aroma strength and final product volatility limits.

    Downstream process integration

    • Charged during organic synthesis of macrocyclic ketone or lactone aroma components.
    • Reacts with alkyl halides, acids, or alcohols using acid/base catalysis.
    • Purification stage includes fractional distillation to meet olfactory quality standards.
    • Olfactory QC and residue analysis to support IFRA submissions and batch history.

    Final product types

    • Synthetic musk or ambergris substitutes
    • Woody and cedar aroma isolates
    • Fine fragrance base compounds
    • Flavour & fragrance compound libraries for perfumery

    4. Specialty Polymer Additive Production

    Chemical process engineers formulate 2,2,7-Trimethyl-3,5-Octanedione into specialty additive packages for certain high-performance polymer systems. As a diketone compatibilizer or cross-linker precursor, it enables improved pigment dispersion and enhances UV stability in polymers for automotive, technical, and packaging applications. All integration steps follow current plastics and material safety regulations to ensure raw material continuity into finished goods.

    Industry compliance standards

    • ISO 9001 Quality Management for polymer additives
    • EU Plastics Regulation 10/2011 on additives for food contact materials
    • RoHS 2011/65/EU for non-hazardous substance content
    • ASTM D5630:2013 (Standard for Additive Content in Plastics)

    Typical usage ratio

    • 0.1–1.5% loading by polymer weight; determined by end-use property targets and polymer compatibility.

    Downstream process integration

    • Added to polymer melt/blend during extrusion or compounding phase.
    • Mixer or twin-screw extruder introduction, followed by rapid dispersal analysis.
    • Monitored for residual diketone in final masterbatch via GC or HPLC.
    • Product tracking by lot/batch system for traceable supply to converters.

    Final product types

    • UV-resistant automotive polymer components
    • Technical thermoplastic masterbatches
    • Specialty packaging films with improved stability
    • High-purity engineering plastic parts
    Free Quote

    Competitive 2,2,7-Trimethyl-3,5-Octanedione 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 2,2,7-Trimethyl-3,5-Octanedione: A Manufacturer’s Insight

    Real-World Value of 2,2,7-Trimethyl-3,5-Octanedione

    Naming a chemical often does little to convey its true industrial worth. Behind the chemical name 2,2,7-Trimethyl-3,5-Octanedione lies a specialty diketone with utility across multiple production chains. Many know it under various identifiers in procurement documents, but our team is not just blending or trading—every batch starts with quality-controlled reactions, real people in the plant, and a deep-rooted awareness of what end-users need.

    Chemical Profile and Model

    2,2,7-Trimethyl-3,5-Octanedione has the formula C11H20O2, with a molecular weight of 184.28. Working with this material in our facility has shown us how critical tight quality windows remain. The base material for this diketone always undergoes rigorous selection before any reaction takes place. This dedication ensures the octanedione meets performance metrics not possible with lesser inputs.

    We offer the product as a clear to pale yellow liquid, typically achieving purity above 98% GC, while limiting water and acid content well below critical thresholds. It is supplied under our in-house “TMOD-198A” model, which originated from incremental improvements based on decades of plant-level experience. By preserving the three methyl branches at 2, 2, and 7 positions on the octane backbone, the structure maximizes stability while keeping unwanted reactions at bay in the most demanding environments.

    Why Industries Rely on 2,2,7-Trimethyl-3,5-Octanedione

    Plenty look at the catalog and wonder where these specialty diketones go. In actual production, this compound does more than fill a shelf space—it acts as a raw material and an intermediate in numerous value chains, including pigment manufacture, fine chemicals, plastics modification, and organic synthesis.

    Factory engineers use this diketone to create chelating agents, pigment stabilizers, and sophisticated flavor and fragrance bases. The robust carbon backbone and methyl-substituted positions yield low volatility and strong solubility in most organic solvents, simplifying incorporation into custom formulations. Since the dewaxing and crystallization properties support smooth downstream isolation, our version holds up well even during multi-stage production runs or continuous feed blending, a claim not all suppliers can stand behind.

    Differentiating Ourselves from Basic Suppliers

    Not all 2,2,7-Trimethyl-3,5-Octanedione is made equal—years of working with technical directors and R&D chemists have shown us as much. Many off-the-shelf options fall short, especially products sourced through multiple layers of traders. They might show reasonable purity on a certificate but lack consistency batch-to-batch, forcing users to tolerate unexpected color bodies, elevated water content, or even trace metal contamination. Each of these can stall a process or degrade final product shelf life.

    Our approach doesn’t chase the lowest price point. Every drum meets spec because of hands-on protocol—direct on-site distillation, and real-time monitoring of reaction profiles, not just spot checks at the end of a run. Feedback from customers in pigment dispersant manufacture and specialty resins regularly drives us to review and adjust our purification steps, so the diketone remains reliable under tightest QC scrutiny.

    Impact on Downstream Performance

    Every process line tells its own story, and 2,2,7-Trimethyl-3,5-Octanedione’s impact ripples across them. Pigment makers using our TMOD-198A cited improved color density and more predictable viscosity in finished dispersions. One polymer plant reported that earlier batches from an offshore aggregator often had to be double-refined, as their octanedione left troublesome residuals during polymerization, causing aberrant tack or cloudiness. With our material, downstream reprocessing saw a marked drop, reducing waste and enhancing throughput.

    Consistency drives process efficiency. The correct purity profile, without excess acid or metallics, brings peace of mind when formulating masterbatches or resins demanding exact melting points. Customers avoid the hassle of repeat testing or production stoppages, and we share in their relief each time a delivery passes their most exacting standards.

    Comparison with Alternative Ketones and Diketones

    In specialty chemistry, alternatives pop up as practices and global prices shift. Acetylacetone, diisobutyryl methane, and even simple 2,4-pentanedione occasionally substitute for our octanedione. Some companies choose these for easier supply or marginal price differences. Yet, feedback from those who switched away and then returned highlights a recurring theme: alternatives sacrifice chemical stability, shelf life, or downstream function.

    The three methyl branches at unique positions lend the 2,2,7-Trimethyl-3,5-Octanedione molecule extra steric protection. During chelation chemistry or condensation reactions, it resists side reactions, outlasting less hindered diketones. While the alternatives degrade or yellow under long-term storage, our product’s structure keeps it approachable for extended inventory periods. In pigment and ink synthesis, the balanced volatility limits unwanted odor and emission, granting a smoother user experience both at the plant and for end customers.

    Commitment to Responsible Manufacturing

    End users increasingly want details about where their chemicals come from, the conditions under which they are made, and the real environmental impact. Our team tracks not just product purity but all waste and emission points during batch runs. By integrating solvent recycling, low-energy reaction paths, and proper by-product capture, we minimize environmental impact and promote safer workplaces.

    This translates into a cleaner product—near-zero impurities, fully compliant with modern regulatory requirements, and aligned with best practices in occupational health and safety. The shift away from unsupervised contract manufacturing reduces both the carbon footprint and the risk of cross-contamination. We welcome factory visits, so end-users see firsthand the quality safeguards in place, reinforcing trust at every transaction step.

    On-the-Ground Solutions to Typical Industry Headaches

    Raw material delays and specification drift hurt everyone—no one knows that truth better than a plant engineer or lab chemist dealing with a failed lot late at night. The hunt for root causes, be it water ingress or trace metal impurity, always circles back to supplier quality.

    By owning the process from raw material intake through packaging, we eliminate handover points where quality can slip. In the event of any deviation, we trace the batch within hours—a vital step when a downstream user experiences an out-of-specification result. A standing internal review board meets regularly, not just for compliance paperwork, but to scrutinize every customer complaint or reported irregularity. Continuous operator training ensures no surprise contaminants or procedural shortcuts creep into the system.

    Working Through Scale-Up and New Applications

    Production is not static. Each year, specialty applications emerge, and formulation requirements shift. Customers in electronics chemistry or high-performance adhesives often request tighter impurity control or custom packaging solutions. Reacting to those, we adjusted filtration fineness, upgraded our drying systems, and partnered directly with formulation chemists on pilot-scale blends.

    This approach avoids one-size-fits-all solutions—every improvement responds to a practical challenge. For example, pigment additive projects revealed small amine contaminant traces could impact light-fastness. After a joint review with users, additional process steps isolated the source, leading to a clear improvement in final product stability. In another case, requests for specialized drum liners emerged from customers concerned about potential cross-reactivity during transport. The collaboration led to a new packaging protocol now adopted for critical export orders.

    Meeting Regulatory and Safety Benchmarks Head-On

    Global regulations never rest. Responding to data requests from European, Asian, and North American customers requires complete transparency. Each campaign keeps full material characterization on hand—purity, composition, residue profile, and batch history. Documentation is updated regularly and covers all relevant chemical inventory listings when applicable.

    Safety goes deeper than paperwork. Teams working with batch preparations wear full PPE, and all transfer stations feature spill containment and real-time vapor monitoring. Every plant operator spends time in recurring safety drills. By reducing operator error and focusing on equipment precision, workplace accidents diminish, and ultimately, the confidence in outgoing product remains high.

    End-User Knowledge Drives us Forward

    Experience on the manufacturing floor revealed early that customer knowledge often equals or exceeds that of raw material producers. We learn as much from those using 2,2,7-Trimethyl-3,5-Octanedione in real-world syntheses—especially in labs scaling small-batch pilot runs to full manufacturing lines—as from any internal development. Regular technical surveys and follow-ups confirm what works and expose where incremental refinement matters most.

    A recent instance involved an automotive coatings manufacturer discovering a minor residue in their cross-linking formulation. Working in partnership, we compared their process contaminant readings with our own, traced it to vapors in bulk transport vehicles, and introduced rapid cross-purge before loading. This kind of field feedback loop keeps materials—and relationships—moving forward.

    Supply Chain Resilience: Lessons from Disruption

    Recent years introduced logistical challenges never seen before. Global shipping delays, container shortages, and sharp swings in feedstock cost could cripple production if not handled with diligence. Our response centered on redundant raw material sourcing and expandable local warehousing.

    Realistically, every buyer needs confidence their supplier will deliver, not just once but every time, regardless of external turbulence. We invest in on-site storage for key intermediates and maintain shipping partners experienced with bulk liquids. Shipping documents, regulatory paperwork, and tracking information remain available in real-time—a relief to purchasing managers who can track inventory levels and incoming delivery with zero lag.

    One unforeseen outcome: end-users increasingly request resilient supply arrangements, including just-in-time scheduling and backup batch release. We developed modular batch production workflows, so emergencies or surges do not overwhelm system capacity. This approach proved its worth as we delivered partial lots to critical users through multi-modal logistics during peak disruption windows.

    Longstanding Partnerships and Technical Support

    Reliable supply comes from strong partnerships. We make it a point to offer onsite or virtual technical assistance, walking through formulation hurdles side by side. If unique filtration or reagent compatibility concerns emerge, our technical staff run compatibility checks and troubleshooting, not abstract counsel from afar but hands-on troubleshooting in real-world process settings.

    Many customers say support from a direct manufacturer saves them weeks compared to dealing with faceless intermediaries. Having a team that knows both the plant realities and the upstream chemistry means adjustments and recommendations arrive quickly and are grounded in experience, not guesswork.

    Conclusion: Delivering Confidence in Every Drum

    2,2,7-Trimethyl-3,5-Octanedione is more than a line item on a datasheet. For every purchaser and process engineer who relies on material arriving on time and to spec, there’s value in working with a manufacturer who takes responsibility for every step. Through hands-on quality assurance, open collaboration, and flexibility in the face of challenge, we build lasting trust—batch by batch, year after year. Each drum shipped reflects our belief that specialty chemicals should be as reliable as the team standing behind them.