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Heptanophenone

    • Product Name Heptanophenone
    • Einecs 211-669-0
    • 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

    409732

    Chemical Name Heptanophenone
    Iupac Name 1-Phenylheptan-1-one
    Cas Number 628-99-9
    Molecular Formula C13H18O
    Molar Mass 190.28 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 290-292 °C
    Melting Point -8 °C
    Density 0.948 g/cm3 at 25 °C
    Refractive Index 1.489
    Smiles CCCCCCC(=O)C1=CC=CC=C1
    Pubchem Cid 12106

    As an accredited Heptanophenone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Heptanophenone is packaged in a 500 g amber glass bottle with a secure screw cap, labeled with safety and handling instructions.
    Shipping Heptanophenone should be shipped in tightly sealed containers, away from sources of ignition and incompatible materials. Transport under ambient temperature, complying with UN 2810 (Toxic liquids, organic, n.o.s.) regulations. Ensure clear labeling, include proper safety documentation (SDS), and follow all relevant international, national, and local hazardous materials shipping guidelines.
    Storage Heptanophenone should be stored in a tightly sealed container in a cool, dry, and well-ventilated area away from sources of ignition, heat, and direct sunlight. Keep away from incompatible materials such as strong oxidizers and acids. Ensure the storage location is clearly labeled and restricted to trained personnel. Follow all relevant chemical safety regulations and local storage guidelines.
    Application of Heptanophenone

    Applications of Heptanophenone in Industrial Manufacturing

    As a dedicated manufacturer of Heptanophenone, we supply this key chemical intermediate to a select group of high-value downstream sectors. The following application scenarios outline the specific integration of our product within various regulated, production-driven environments. Each section details validated industry standards, functional formulation parameters, integration into downstream manufacturing, and the final end-products supplied by our customers worldwide.

    1. Pharmaceutical Intermediate Synthesis

    Pharmaceutical companies employ Heptanophenone as a pivotal intermediate during the synthesis of complex drug molecules, especially in the production of certain corticosteroids and anesthetic agents. The ketone function enables precise chemical transformations required for high-value APIs, demanding stringent control of purity and traceability. Our material integrates directly into multi-step processes in GMP-certified environments, contributing to batch-to-batch consistency in regulated drug substance synthesis.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • EU GMP Directive 2003/94/EC
    • U.S. FDA 21 CFR Part 211
    • Relevant product-specific pharmacopeial monographs (USP, Ph. Eur.)

    Typical usage ratio

    • 2-8% w/w in active pharmaceutical ingredient (API) synthesis, adjusted based on molecular pathway and molar equivalents for sequential reactions

    Downstream process integration

    • Introduced during the core ketonation or alkylation step prior to downstream purification and crystallization of target API

    Final product types

    • Steroidal drug substances
    • Local anesthetic actives
    • Specialty analgesics
    • Other regulated pharmaceutical intermediates

    2. Agrochemical Active Ingredient Manufacturing

    Agricultural chemical manufacturers use Heptanophenone as an intermediate for the construction of specific ketone or alkyl-aryl based herbicide and fungicide molecules. Its reactivity allows efficient incorporation into multi-stage synthesis routes governed by strict environmental safety and residues protocols, ensuring hazard minimization in end-use formulations before field application.

    Industry compliance standards

    • ISO 9001:2015 for chemical process management
    • OECD Principles of Good Laboratory Practice (GLP) for residue and fate studies
    • EU REACH Regulation (EC) No 1907/2006
    • FAO/WHO specifications for pesticides (JMPS)

    Typical usage ratio

    • 5-12% by weight in active ingredient synthesis, fine-tuned according to target molecule and reaction scalability requirements

    Downstream process integration

    • Incorporated during the initial condensation or cyclization step, followed by intermediate purification and final formulation blending

    Final product types

    • Pre-emergent herbicide actives
    • Systemic fungicide active compounds
    • Seed treatment agents
    • Soil protection actives

    3. Fragrance and Aroma Ingredient Manufacturing

    In fine chemical and fragrance industries, Heptanophenone operates as a structural building block for high-value aroma compounds, leveraging its unique aliphatic ketone profile to impart specific scent characteristics. Regulations in this sector demand strict allergen and trace impurity control, guiding all compositional and formulation decisions.

    Industry compliance standards

    • International Fragrance Association (IFRA) Standards and Codes of Practice
    • EU Cosmetics Regulation (EC) No 1223/2009
    • IFRA/IOFI Labeling Manual
    • ISO 9235 for aroma chemical definitions and purity

    Typical usage ratio

    • 1-3% in fragrance intermediate batches; actual dose determined via proprietary olfactive evaluations and target concentration profiles

    Downstream process integration

    • Incorporated during molecular distillation and synthetic modification steps forming fragrance core structures, prior to compounding and blending

    Final product types

    • Synthetic musk precursors
    • Floral and woody aroma molecules
    • Fine fragrance oils
    • Personal care scent bases

    4. Polymer and Resin Additive Manufacturing

    Resin and plastic additive producers utilize Heptanophenone to enable crosslinking, UV-absorption, or functionalization in specialty polymer systems. Requirements for end-use stability, migration limits, and physical performance drive adoption in high-specification resin manufacturing for coatings and engineering plastics under established materials safety frameworks.

    Industry compliance standards

    • EN ISO 9001:2015 for quality processes
    • REACH substances of very high concern (SVHC) regulations (EC 1907/2006)
    • ASTM D256 or equivalent polymer test standards for performance verification
    • RoHS Directive 2011/65/EU for restricted substance content in electrical/electronic end-uses

    Typical usage ratio

    • 0.5-2% as a crosslinking or auxiliary agent in resin and plastic compounding; adjusted based on polymer matrix compatibility and end-product application

    Downstream process integration

    • Added during the compounding or prepolymer stage ahead of extrusion, molding, or curing, frequently in continuous feed systems

    Final product types

    • High-performance thermoset resins
    • Engineering plastics
    • Industrial coating additives
    • UV-stabilized films and panels

    5. Dye and Pigment Intermediate Production

    The fine chemicals sector applies Heptanophenone as a precursor or modifying agent in the synthesis of selected specialty dyes, particularly where extended alkyl chain ketone structures enhance solubility or shade depth. Precision in impurity control and batch reproducibility is essential to comply with dye industry quality protocols and downstream customer requirements in controlled color formulations.

    Industry compliance standards

    • ISO 9001:2015 for dye manufacturing
    • ETAD (Ecological and Toxicological Association of Dyes and Organic Pigments Manufacturers) Code of Ethics
    • OEKO-TEX® Standard 100 for restricted chemicals in textile dyes
    • REACH Annex XVII for restricted aromatic compounds

    Typical usage ratio

    • 0.8-1.5% by weight in batch syntheses, varying using coloration depth and performance targets

    Downstream process integration

    • Employed during core condensation steps and sometimes post-treated for increased chroma or photostability prior to final blending

    Final product types

    • Solvent dyes for industrial coatings
    • Specialty pigments for plastics and inks
    • Textile reactive dyes with advanced fastness
    • Organic colorants for automotive finishes
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    Certification & Compliance
    More Introduction

    Heptanophenone: Straight from Our Manufacturing Plant

    Bringing Heptanophenone to Industry Needs

    Making Heptanophenone has taught us plenty about process integrity, consistent purity, and the detailed requirements our partners face. In chemical manufacturing, so many things come down to experience and clean execution. Heptanophenone isn’t a commodity where shortcuts deliver value. Rather, its worth comes from outputting reliable, high-grade product batch after batch. Our hands-on experience with this compound, C13H18O by formula, goes back years—long before it became a, say, “trendy” starting point for several downstream syntheses.

    Bulk Manufacturing: From Raw Materials to Consistency

    Every batch of Heptanophenone we send out starts with unembellished, raw hydrocarbons. There’s a common misconception among newcomers that any supplier can provide the same compound at the end of the day—chemically speaking, maybe. But what matters most to our clients in fine chemicals, agrochemistry, and fragrances isn’t just the general identity of Heptanophenone, but reproducible profile and traceability. For those unfamiliar, Heptanophenone, also known as 1-phenyl-1-heptanone or simply phenyl heptyl ketone, offers a distinctive structure: a linear heptyl chain linked to a phenyl group through a carbonyl. Functional group placement and straight alkyl chain allow for predictable reactivity in specialized synthesis work.

    Manufacturing at scale, purity levels regularly hover at or above 99%. Analysis after distillation runs on GC consistently confirm this, and we monitor the whole process with in-house analytical chemists. Water content and residual solvents always stay well below tightest customer demands—for many, sub-0.05% moisture with no detectable aromatic hydrocarbons outside the product scaffold. We don’t use blending or masking—just tight control in each process phase and enough batch-to-batch data to keep unexpected variability far from final containers.

    Specification Standards Based on Real Manufacturing Challenges

    In our experience, buying agents usually care most about accurate assay numbers and the physical appearance: a clear, colorless to pale yellow liquid, aromatic faint scent, and liquid at ambient conditions. Where our manufacturing stands apart comes from how much we invest in analytical confirmation as a matter of pride, not just regulatory minimums. Every run logs full spectra, and we retain batch samples according to internal protocols. Chemical shifts on NMR and exact mass also routinely tie to internal markers, so when customers call about nuanced property shifts, we always have a reference point back to original runs.

    Heptanophenone easily meets the core expectations for organic intermediates, but that doesn’t capture the full story. Laboratory-grade product and kilogram quantities for pilot work each have unique challenges. On kilo scale, trace resin-forming side products crop up if distillation cut points get too aggressive—a mistake that happens when scale-up runs take shortcuts. Large vessel syntheses, especially those using older Friedel–Crafts acylation methods, create more tetrasubstituted byproducts. Our proprietary tweaks have practically eliminated those by optimizing reaction time, temperature, and molar ratios. These same practices keep out 2-phenylheptanone isomer contamination, a headache for downstream catalysis and specialty formulation.

    Real Differences: Why Customers See Results

    Sourcing Heptanophenone from a manufacturer means you can get gravelly honest answers on lot reproducibility, purity claims, and logistics. Traders relying on “repacked barrels” or aggregated lots lose track of subtle but critical details—how exactly was the product made, analyzed, and stored? From direct control, we’ve ensured cold storage for buyers who expect exact appearance, and we cycle our storage to minimize air and moisture exposure. Our staff pull random retention samples to spot check for ages beyond the short-term shelf life cited by others.

    Compared to similar aromatic ketones on the market—like 2-octanone, acetophenone, or technical chain-length analogs—Heptanophenone provides a unique solvent/nucleophile combination. Peers in the industry often treat acetophenone as an interchangeable cousin, so we’ve spent time explaining how the longer heptyl chain alters boiling point, miscibility, and downstream application. Its higher molecular weight translates to a sharper, heavier fraction profile in distillation columns, so many customers find their formulations behave more predictably, especially in high-temperature reactions.

    Another key contrast appears in environmental controls. Unlike some short-chain aromatic ketones, Heptanophenone doesn’t readily volatilize under typical handling conditions. This lowers fugitive emissions in the plant and creates a safer work environment. Storage drum design and gasket choice matter far less, reducing maintenance down the road—something we discovered after learning from the heavy service rigors in our own loading bays.

    Heptanophenone’s Uses: Bringing Versatility to Industrial Chemistry

    Heptanophenone drives plenty of interest from flavor and fragrance houses due to its subtle aromatic note—a character that sets it apart from boxier, shorter ketones. We’ve seen more volume in the past decade diverted to specialty intermediates, particularly where the straight chain and carbonyl function as anchor points in multi-step syntheses. It reacts smoothly in Grignard additions for alcohol production, and as a starting block for more complex branched aromatics.

    In pharmaceutical intermediate preparation, several clients purchase Heptanophenone for its ability to act as a building block—an acylating agent or even a core for new molecular scaffolds. It offers advantage over branched ketones by offering consistent, predictable behavior in stereospecific reactions. Catalytic hydrogenation or halogenation with this compound leads to well-defined products, which cuts back on purification costs on the downstream end.

    In our own test applications, we’ve directly compared Heptanophenone to similar alkyl-aryl ketones and have logged higher conversion rates and lower impurity profiles in controlled bench-scale runs. For those pushing scale above pilot or kilo-lab, Heptanophenone’s relatively high flash point translates to safer, smoother process management around real-world reactors—not just theoretical data sheet numbers.

    Handling, Packaging, and Logistics—The Real-World View

    The physical nature of Heptanophenone makes it a straightforward material to store and ship, but only if handled in clean, moisture-free containers. Early on, we noticed viscosity can shift subtly with trace water pickup, so all fills occur under dry-air blanketing. Packing signals quality: we use steel or HDPE drums with inner seals to protect from trace volatilization, and outer labeling comes straight from our own printing—the batch and lot information are kept in our own electronic management database. No guesswork, ever.

    We’ve invested in ISO-level storage facilities and maintain climatic controls to reduce thermal cycling in the warehouse, especially during summer swings. We made those upgrades not because regulators said so but because plant managers saw viscosity and clarity issues on hot days. We also offer customized drum and intermediate bulk container sizing for customers scaling up, based on firsthand feedback from over the years. Delivery times depend heavily on batch scheduling, not reselling inventory—so you know who you’re buying from and how old the product is when it lands in your facility.

    Supporting Customers Beyond the Bulk Drum

    Clients ask our technical team about drop-in replacement for higher priced cyclic ketones, or even other medium-chain phenyl alkyl ketones. Every season, new applications emerge. We support R&D labs with select purities and smaller run size, so start-ups and major brands both have the supply reliability they count on. Every technical file comes with spectral printouts, and we log customer feedback in real time to refine our QC. In one memorable case, a customer saw off-specification coloration in a trial. We traced it not to production, but to inadequate nitrogen blanketing in the receiving tanks on their end—a fix we helped implement after sharing our data.

    Experimentation with reaction conditions isn’t just academic. Our own process scale-up has taught us both where side products arise and how tight process control translates to reliable output. When small changes in temperature or reactant ratio produce unwanted byproducts, we’re able to adjust in-house with pilot line trials rather than guesswork—so finished product stays as expected, whether the order’s for a few pails or a full container.

    Heptanophenone in Comparison to Other Building Blocks

    Heptanophenone’s straight-chain configuration means greater molecular flexibility than cyclic ketones such as cyclohexanone or aromatic methyl ketones like acetophenone. For solvent or intermediate use, the heptyl group imparts both a higher boiling point and lower water solubility—a fact commercial formulators prefer when they need to run processes in high-heat, hydrophobic environments. Many competitors’ phenylalkyl ketones with shorter chains end up phase separating in systems where we see full integration, and our technical staff observed this first-hand years ago in blending trials.

    Analytical differences also show up in NMR and IR fingerprinting—the stretching frequencies and chemical shifts translate to cleaner, more definitive signals during QC of finished goods. This isn’t just an academic point; our customers in API synthesis request these summaries to set up their own analytical protocols and avoid costly procurement errors. Another subtle difference shows up in odor threshold. We’ve handled reference samples straight from several other makers, and across the board, ours carries a lighter, less intrusive character appropriate for fragrance-grade uses.

    The consistently lower impurity levels present in direct-from-manufacturer Heptanophenone mean that post-reaction clean-up—across extraction, distillation, or crystallization—runs both more efficiently and with less waste. Over time, this translates into both better margins and easier scaling for most of our buyers.

    Environmental Responsibility in Heptanophenone Manufacturing

    Direct manufacturing control in-house means our team can target process emissions, optimize yield efficiency, and reduce raw material excess. We use in-line monitoring on both the main reaction stream and vented gases. Since Heptanophenone lacks the high volatility of some similar products, we rarely see operator workplace exposures exceeding internal limits; our own continuous air monitors verify as much. Waste streams from the process are less aggressive than those from shorter-chain aromatic ketones, simplifying solvent reclamation and post-processing.

    Choice of raw materials and catalysts also impacts environmental impact. Years ago, we switched from corrosive Lewis acids to greener, high-turnover catalysts—a move that cut both byproduct residues and energy input. Not all third-party suppliers make those same investments. By handling these process innovations directly, we’ve sidestepped many legacy environmental headaches, and maintain transparent records, which external auditors can check any time. We introduced closed-loop solvent recycling back in 2015, and that reduced both raw solvent purchasing and waste generation by a measurable margin month by month.

    Safety Takes Center Stage

    The hands-on experience we bring covers worker safety protocols around medium-chain ketones—not just paperwork but daily routine. Our technicians wear tested chemical-resistant gloves, and local exhaust at key points tackles airborne vapors during transfer. We train every new crew member in handling both finished goods and byproduct streams—not because the rulebook told us to, but because we’ve seen how small lapses can snowball quickly. The MSDS supports every load leaving our plant, but those documents sit alongside real operational knowledge passed down since our earliest days with this product.

    Fire risk management goes far beyond standard requirements: every batch filling happens in non-sparking areas, and our fill lines carry auto shut-offs so that operators don’t have to worry about accidental drips or overflows. Early on we learned not to trust package seals from outside vendors—so we run our own QC lockers and rotate stock based on real decay rates, not arbitrary supplier recommendations.

    Trusted Support Throughout the Customer’s Lifecycle

    We’ve built longstanding partnerships with formulation teams, process engineers, and supply leads—from global chemical companies to smaller specialty players. Buyers checking traceability for compliance trust our granular records. Over 20 years, we’ve handled everything from surprise regulatory audits to last-minute loadouts. It all circles back to owning our process and experience in manufacturing. Every inquiry gets a reply from a staff chemist, not a call center or an outsourcer. Adjustments for packaging, documentation, or technical support are made in real time, so your deadlines are met.

    Working directly with users of Heptanophenone lets us see how the compound drives practical benefits—lowered cleaning needs, fewer evaporative losses, clearer product reporting, and robust material safety oversight. We routinely collaborate on specialty blends or high-purity variants for those with niche needs, leaning on our deep bench of plant staff and process chemists to deliver the right product, not just the right paperwork.

    Looking Ahead: Research, Feedback, and Collaboration

    We treat every order as a two-way conversation. Feedback about properties, packaging, or batch behavior cycles straight into our next run, tightening the feedback loop between frontline use and plant operation. Our R&D group constantly reviews literature and customer case studies to refine each production cycle. Each improvement—whether in yield, storage, analytical reporting, or logistic efficiency—started from an actual discussion with a practical user.

    By staying close to the raw process and knowing the details that matter, we help put reliable, high-quality Heptanophenone into more hands—enabling both everyday production and new breakthroughs. Our story as a producer sits in every tank, drum, and sample we send out, and we are ready to tackle each new requirement as the field evolves. Experience in the manufacturing hall, honest technical support, and a willingness to invest in quality—these are what make direct-from-plant Heptanophenone something more than another line on a spreadsheet. If you’re formulating, scaling, or simply looking for a new supplier who gets the details right, our team stands ready to help.