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4-Methoxyphenylacetone

    • Product Name 4-Methoxyphenylacetone
    • Alias PMA
    • Einecs 211-478-2
    • 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

    274283

    Chemical Name 4-Methoxyphenylacetone
    Synonyms p-Anisylacetone, 1-(4-Methoxyphenyl)propan-2-one
    Molecular Formula C10H12O2
    Molar Mass 164.20 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point 265-267 °C
    Melting Point N/A (liquid at room temperature)
    Density 1.07 g/cm³
    Solubility In Water Low
    Cas Number 122-84-9
    Smiles COC1=CC=C(C=C1)CC(=O)C
    Inchi InChI=1S/C10H12O2/c1-8(11)7-9-3-5-10(12-2)6-4-9/h3-6H,7H2,1-2H3

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

    Packing & Storage
    Packing The 100g bottle of 4-Methoxyphenylacetone comes in a sealed, amber glass container with a tamper-evident cap and hazard labeling.
    Shipping Shipping for 4-Methoxyphenylacetone requires secure packaging, compliant with international and local regulations for chemical transport. The product is dispatched in leak-proof, labeled containers, protected against light and moisture. Appropriate documentation and handling instructions are included to ensure safe transit. Only authorized carriers with hazardous material certification are used.
    Storage 4-Methoxyphenylacetone should be stored in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers. Keep the container tightly closed and protected from light. Store at room temperature or as recommended by the manufacturer, ensuring the storage area is secure, labeled properly, and compliant with relevant chemical safety regulations.
    Application of 4-Methoxyphenylacetone

    Applications of 4-Methoxyphenylacetone in Industrial Manufacturing

    4-Methoxyphenylacetone serves as a functional intermediate in specialized chemical production. Its reactivity and substitution properties enable precise conversions in various high-value industrial sectors. We control quality and compliance requirements directly from synthesis to meet stringent downstream application needs. Below are key focus areas where 4-Methoxyphenylacetone supports compliant, practical, and scalable manufacturing processes.

    1. Pharmaceutical Active Ingredient Intermediates

    Manufacturers utilize 4-Methoxyphenylacetone as a controlled intermediate during the synthesis of complex pharmaceutical molecules, specifically in phenethylamine and amphetamine-class drug pathways. The compound participates in selective alkylation, reductive amination, and further functionalization steps under strictly monitored GMP conditions. With clear regulatory requirements and residue limits, this chemical allows tight route optimization in pharma synthesis, supporting reproducible, auditable batch records that satisfy global regulatory agencies.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • 21 CFR Part 210/211 (US FDA Current Good Manufacturing Practice)
    • EU-GMP Annex 8 (Pharmaceutical Excipients and Intermediates)
    • Controlled Substances Act compliance (if applicable as precursor)

    Typical usage ratio

    • 0.8–1.1 molar equivalents based on final active ingredient target
    • Quantity adjusted for stoichiometry in reductive amination or condensation sequence
    • Material recovery and conversion yield >95%

    Downstream process integration

    • Charged at ketone introduction stage in multi-step organic synthesis
    • Participates in batch-wise or continuous amination or condensation reactions
    • Intermediate purification through distillation or crystallization
    • Residual monitoring per process validation protocol

    Final product types

    • Phenethylamine derivatives
    • Analgesic intermediates
    • Central nervous system (CNS) drug intermediates
    • Reference standards for pharmaceutical quality control

    2. Perfume and Fragrance Synthesis

    In aroma chemical manufacturing, this ketone functions as an important intermediate for developing complex musk-type and floral-fruity notes. Downstream formulators use it to introduce specific aromatic groups through condensation and cyclization reactions, enabling extended stability, lasting olfactory effects, and improved fragrance performance profiles. Process controls ensure compliance with safety, allergen labeling, and environmental emissions standards relevant to global fragrance markets.

    Industry compliance standards

    • International Fragrance Association (IFRA) Standards and Amendments
    • EU CLP Regulation (EC) No 1272/2008 for classification, labeling, packaging
    • REACH Regulation (EC) No 1907/2006 pre-registration for raw material usage
    • IFRA Transparency List

    Typical usage ratio

    • 0.5-2.0% of fragrance concentrate formulation before downstream reaction
    • Adjusted based on target fragrance intensity and reaction efficiency
    • Batch optimization via GC-MS product profiling

    Downstream process integration

    • Introduced via aldol or condensation chemistry in aroma compound production
    • Reacted with aldehydes or alcohols to construct macrocyclic or linear notes
    • Purified and tested for stability and organoleptic performance
    • Blended with fixatives in final perfume oil synthesis

    Final product types

    • High-end perfume bases and concentrates
    • Floral and musk aroma compounds
    • Personal care fragrance additives
    • Functional fragrances for cosmetics and home care

    3. Agrochemical Synthesis Intermediates

    Specialty agrochemical producers incorporate 4-Methoxyphenylacetone during the multi-step synthesis of advanced crop protection agents. The aromatic ketone structure enables high-yield introduction of functional groups necessary for enhanced bioactivity in certain pesticide and herbicide classes. As a result, manufacturers must maintain robust traceability, environmental containment, and alignment with raw material restrictions issued by active ingredient governing bodies in agriculture.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • ISO 9001:2015 Quality Management for crop chemicals
    • Globally Harmonized System (GHS) for labeling and transport
    • Local agrochemical registration requirements (EPA, EU Pesticide Database)

    Typical usage ratio

    • 0.4–0.9 equivalents, depending on specific herbicide or insecticide scaffold
    • Process optimization via LC-MS target product monitoring
    • Waste minimization through tee-reactor or continuous flow processes

    Downstream process integration

    • Added at arylation or ketone functionalization stage during synthesis
    • Feeds into downstream etherification or amide coupling reactions
    • Purified intermediate stored under inert gas for stability
    • Integrated into multi-kilo production scale for technical-grade actives

    Final product types

    • Precursor intermediates for selective herbicides
    • Pesticide and insecticide precursor compounds
    • Fine chemicals supporting regulated crop protection
    • Seed-coating additives

    4. Specialty Dye Intermediate Manufacturing

    In technical dye synthesis, downstream manufacturers utilize 4-Methoxyphenylacetone for preparing structurally diverse chromophores. The intermediate’s methoxy function supports electron richness for targeted color development, particularly in azo and anthraquinone dye classes. Strict control of reaction conditions and batch records ensures that end-use dye materials fulfill textile and plastics sector requirements, including compliance with global bans on hazardous aromatic amines.

    Industry compliance standards

    • Oeko-Tex Standard 100 – Class I and II
    • ZDHC MRSL v2.0 for input chemical conformance
    • REACH Annex XVII restrictions (aromatic amines in dyes)
    • ASTM D4968 (Standard Test for Colorfastness of Dyes)

    Typical usage ratio

    • 0.6–1.3 molar equivalents relative to primary amine reactants in synthesis
    • Ratio adjusted to color depth required and kinetic conversion rates
    • Final yield optimization at >90% by HPLC assay

    Downstream process integration

    • Engaged at coupling or nucleophilic aromatic substitution stages
    • Enables modification of chromophore backbone for color tuning
    • Continuous inline analysis during batch production
    • Intermediate storage in corrosion-resistant containment to prevent degradation

    Final product types

    • High-performance textile dyes
    • Plastic colorants for automotive and packaging applications
    • Special-effect pigments for inks
    • Electronics-grade display dyes

    5. Laboratory Reagent Synthesis and Research Chemicals

    Research and development laboratories, chemical production upscaling teams, and custom synthesis providers rely on this aromatic ketone for reaction optimization and development of new structure-activity-relationship (SAR) studies. It serves as a foundation for generating building blocks and reference materials crucial for analytical method validation, mechanistic study, and pilot lot production, under closely monitored laboratory safety and quality system protocols.

    Industry compliance standards

    • ISO/IEC 17025:2017 (General Requirements for Testing and Calibration Laboratories)
    • OECD Good Laboratory Practice Principles
    • Hazard Communication Standard (29 CFR 1910.1200)
    • Local workplace safety and chemical inventory controls

    Typical usage ratio

    • Variable, typically 0.1–2.0 mmol per bench-scale organic synthesis
    • Scaled to reaction screening, reference standard development, or pilot program needs
    • Exact batch records required for traceability

    Downstream process integration

    • Charged in combinatorial chemistry as building block
    • Utilized for analytical testing method validation
    • Used to prepare reference compounds for structure elucidation
    • Stored in controlled-access chemical libraries

    Final product types

    • Analytical reference materials
    • Research-scale intermediates for method development
    • Combinatorial screening compounds
    • SAR test compounds for discovery programs
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    Certification & Compliance
    More Introduction

    4-Methoxyphenylacetone: Building Reliable Foundations through Genuine Production Experience

    Understanding 4-Methoxyphenylacetone in Real-World Manufacturing

    On the shop floor of a chemical plant, few things matter more than getting every batch right. The story of 4-Methoxyphenylacetone, also known as p-methoxyphenylacetone, begins long before a sample bottle gets labeled for shipping. As a manufacturer who handles this compound from the receipt of the raw anisole and acetic anhydride, through multi-stage synthesis and purification, the technical puzzle it presents leaves no room for shortcuts. Over the years, we have come to respect how the simplest decisions in the early stages affect the end-user’s results.

    We produce 4-Methoxyphenylacetone mainly for research and chemical synthesis environments. Chemists often choose this molecule as a significant intermediate, and its applications span from complex pharmaceutical routes to advanced materials synthesis. Its value comes from its combination of a methoxy substituent on the aromatic ring, which modulates reactivity, and a phenylacetone core structure that enables diverse chemical transformations. From past runs, it has proven itself both in versatility and in how sensitive it is to impurities. Even small variances in purity, color, or water content shift downstream yields in ways end-users do not forget. Our role as the actual maker is to keep these differences tightly controlled, anticipating the pain points faced by those who trust our material in their laboratories.

    The Importance of Consistent Material: Why Synthesis Starts with Quality

    Making 4-Methoxyphenylacetone isn’t about repeating recipes from literature. Commercial synthesis begins with the selection of process solvents that suit both large-scale safety and downstream recycling. Trace metal removal, usually dealt with using specific filtration resins and tight temperature control, is part of every batch. Slower stir rates at key steps control side-product formation. The net result is a product that reliably delivers the right reactivity for further steps like reductive amination or coupling reactions.

    We track every synthesis parameter because impurities, unreacted starting material, or over-oxidized byproducts have shown up in our customers' analytics. These contaminants push up chromatography times. They complicate waste disposal. If our product does not match the targeted assay and byproduct limits, everything downstream—from pilot batch to scale-up—hits a wall. As a manufacturer, we live through these pain points and see the numbers on the sheets as real laboratory losses, not just out-of-spec data on a QC report. Our production staff know this, and it shapes the way we maintain our equipment, calibrate our reactors, and handle materials.

    From Factory Floor to Final Application: The Road of 4-Methoxyphenylacetone

    Once synthesis wraps up, our work turns to purification and packaging. During distillation, we run a fine balance: removing all volatiles that could decompose under vacuum without drifting the product onto a tarlike residue that ruins the next batch. Glassware, stainless steel, and carefully chosen PTFE-lined systems prevent catalytic degradation or product adhesion—and we log every temperature, every pressure, every time. Water removal in final steps remains a hurdle, demanding rotary evaporation and vacuum drying times adjusted to the seasonal humidity. The routine sounds simple, but each run exposes new challenges. One year, a batch handled during a wet monsoon led to unacceptable clumping from moisture ingress, a costly lesson for both us and the chemists relying on smooth, pourable product.

    Our 4-Methoxyphenylacetone, packaged in amber glass to avoid photochemical changes and stored under inert atmosphere, avoids problems seen in poorly controlled supply chains. Unlike bulk traders blending batches from multiple origins, we follow each bottle from our reactor to the shelf, logging batch codes and QC signatures. Customers call us months later to trace back results to specific syntheses, and this level of backtracking is only possible when you keep the process in-house.

    What Sets Real Manufacturing Apart: Specifications with Consequence

    The usual product specification sheets—90-99 percent purity, light yellow oil, characteristic odor—fail to capture the real pain or progress in this market. In experience, purity alone does not predict user satisfaction. We have seen material meeting the specification on one apparatus fail in another due to micro-impurities: traces of unreacted methylating agents, residual acids, or dust from transfer points. Screening for these has come from both experience and customer feedback. Laboratories running sensitive catalyst reactions cannot afford off-spec amines, and pharmaceutical clients demand confirmation on residual solvents by HS-GC. Most resellers cannot address such issues without direct process control. Here, ownership of every production detail allows us to tweak upstream neutralization, drying steps, and container handling in response.

    Seasoned chemists and new entrants alike recognize the difference between a batch that behaves predictably and one that throws off side reactions. The real-world differences are plain—unexpected color formation, non-homogenous product, or accelerated decomposition. Experienced manufacturers do not treat these as paperwork issues; they drive root-cause analysis with batch records, tank cleanliness logs, and change control meetings involving synthesis operators, not just executives. These are not abstract “quality assurance” statements; they’re a record of hard-won lessons—each deviation logged, each cause traced back to something as specific as a miscalibrated temperature probe.

    Applications That Rely On Accuracy: Where 4-Methoxyphenylacetone Makes a Difference

    Working with 4-Methoxyphenylacetone is about more than just supplying an aromatic ketone. In practice, it is central to several synthetic routes targeting advanced specialty chemicals. It often serves as a key precursor in the selective reduction steps to produce amines and other related derivatives. These end products form the scaffolds of biologically active molecules in pharmaceutical discovery, and in high-performance material development in the electronics sector.

    Our long-standing customers in the research and pilot-scale pharmaceutical industry depend on every lot to behave the same way—solubility in specific solvents, clarity of solution, and reproducibility in subsequent reactions. Internal tests, such as NMR, GC-MS, and LC purity profiling, keep us honest. Our technical staff often troubleshoot with users when a downstream reaction throws up an unexpected intermediate. Over time, we have built up a troubleshooting knowledge base that encompasses not just our own processes but the ripple effects through the supply chain—common problems like persistent color, haze in solution, and even subtle variances in viscosity that indicate water content higher than declared on a spec sheet.

    Differences That Matter: Comparing with Other Manufacturers’ Material

    In an open market, users often encounter 4-Methoxyphenylacetone from gray channels, spot traders, or inconsistent resellers. Our years in the industry have shown us what arrives at labs when a manufacturer is missing, and it is a tough lesson. Incomplete drying leaves product holding more water, which causes problems in coupling steps sensitive to hydrolysis. Colorant or stabilizer addition, a tactic some agents in the market use to mask off-character batches, does not belong at pure substance levels. Cheaper input routes carry over trace byproducts that haunt downstream analytics, seen only after time and effort lost in the customer’s hands. We have run comparative analyses on competitor samples to understand what users actually receive; most show higher variance in both purity and impurity profiles, and sometimes even byproduct carryover into the final lot.

    Owning the full production process means we catch these before a bottle ever leaves our facility. Routine checks, including moisture content by Karl Fischer titration and visual assessment under calibrated lighting, build real confidence. Our QC team has sent back entire lots rather than risk a shipment embedding a slow start to someone’s project. This is the difference between being a manufacturer and just a packager. In our world, each deviation, no matter how small, gets recorded, investigated, addressed. This is not marketing—it’s a hard fact, and it sets apart reliable supply from variable one-time offers.

    Handling and Storage: More Than Just a Label

    Materials like 4-Methoxyphenylacetone may seem straightforward to store and transport, but decades of experience say otherwise. The compound’s slight volatility and reactivity under strong light or oxygen mean that we cannot cut corners on packaging integrity. Using amber glass and sealing with PTFE liners preserves the oil’s stability over months and years. We have tracked our warehouse conditions carefully: seasonal changes in humidity and temperature contribute to subtle differences in how product ages. Even storage away from direct light inside the warehouse matters. We learned the effect of an errant skylight the expensive way, after a set of cases changed color on the top shelf while those at the bottom kept their pale-yellow clarity.

    We track each bottle’s history. If a client returns a report of off-odor or unexpected shift in chromatographic profile, we check the original storage lot, pull parallel retained samples, and walk through the full timeline from final synthesis to shipment. With in-house production, this traceability is not a paperwork exercise but the practical backbone of customer support. No explanation replaces direct evidence when troubleshooting. Our systems, built out over years, allow rapid response that a repackager cannot match.

    Safety and Environmental Considerations Come From Daily Practice

    Beyond just meeting regulatory standards, our site operates with a deep awareness of safety, because handling phenylacetone derivatives creates practical hazards every day. Handling, transfer, and waste disposal protocols evolve not just from rulebooks but from incident logs. Solvent recovery units capture waste streams, precipitators handle vented vapor, and workers receive continuous training in spill response and exposure control. When you make, package, and ship, every accident or near-miss demands new safeguards. For us, Environmental, Health, and Safety is neither an abstract compliance point nor a bullet point; every mistake shows up in the plant log, every improvement gets built into the next batch run.

    On waste management, each kilogram of off-spec or spent material is neutralized and tracked for downstream treatment, not just for permits but as a business necessity. Our solvents are recycled, with careful monitoring for trace contamination. Long-term, it saves money and supports neighbor relations, especially in areas where chemical manufacturing faces scrutiny. This relentless focus on both product purity and environmental responsibility has helped us maintain trust with both regulators and customers.

    Investing in Progress—Continuous Process Improvement

    Chemical manufacturing never stands still, especially in fine and specialty chemicals. Over the years, we have retooled portions of our process to improve yields, reduce byproduct formation, cut solvent usage, and minimize waste. Adoption of inline spectroscopy, better automated temperature and pressure controls, and in situ monitoring of reaction endpoints all started with the need to deliver product closer to target every time. Unlike distributors, our facility absorbs these investments directly because they cut future cost, prevent lost batches, and reinforce our long-term reliability. Our staff, some of whom have watched half a lifetime of improvements, understand what worked, what failed, and why today’s material performs better than yesterday’s. It reflects in every bottle we deliver.

    Pushback from process operators, not just management, shapes how we change. Debrief meetings after difficult campaigns gather input from everyone—from raw material handlers to QC analysts—to hunt down the real cause behind a tough batch. One improvement, adding a haze test to the visual inspection before bottling, came straight from a technician who spotted recurring clarity issues. Every successful round makes the product more predictable for our users.

    User Feedback Shapes the Next Batch

    We urge real feedback from our customers. Whether a batch enabled a breakthrough synthesis or caused unexpected difficulties, this information cycles straight back to the production floor. Reactions that lag, detectable odor changes, or downstream color issues all become focal points for troubleshooting. Our relationships with users extend across years, not just single invoices. Chemistry is a challenging field, filled with uncertainties, but by listening to customers’ real laboratory experiences, we adapt and improve run after run.

    Building 4-Methoxyphenylacetone from start to finish means direct accountability. We do not deflect tough questions to a supply chain black box. If an order brings unexpected results, we have the plant records, the test data, and the technical team ready to help. This transparency sets manufacturers apart from those who just pass boxes along. Chemists, engineers, and analysts in-house know the realities confronted by end users, because we stand on the same ground, learning from every molecule we make.

    The Ongoing Challenge of Sourcing: Looking Past Short-Term Savings

    Markets tempt buyers with bottom-dollar offerings, but based on years of industry experience, few savings survive after the full cost of failed experiments, wasted time, and lost production. Direct manufacturing means lessons from every batch roll into the next run, so product quality rises over time. Strip out this learning loop, and quality becomes frozen at yesterday’s lowest common denominator. Our clients have confided after hard lessons: a cheap source that fails QC or behaves unpredictably in synthesis quickly costs far more in delays, process cleanup, and frustrated reporting than the upfront savings ever promised.

    Building trust takes consistent delivery. Our plant does not rely on fly-by-night traders or blend-and-relabel strategies. We know the cost of each grade change, every purity increment, and every new test method. Suppliers who lack this visibility into their own materials cannot give it to users either. As more industries demand transparency, audit trails, and proof of stewardship, those who actually make the product own an increasingly clear responsibility—to guarantee not just compliance, but traceability and practical results.

    4-Methoxyphenylacetone and the Value of Real Manufacturing

    Every bottle leaving our facility represents a series of decisions, missteps, improvements, and learned expertise from people who craft chemicals every day. 4-Methoxyphenylacetone, with its subtly demanding properties and clear applications across advanced synthetic routes, challenges us each batch to deliver the right outcome. Our reputation, the foundation of return business and lasting partnerships, builds not from broad claims but from the shared recognition that genuine manufacturing makes a difference—in purity, consistency, and real-world troubleshooting. The difference is tangible for those who use our products, and it comes from standing at the reactor, monitoring every step, and taking pride in getting each molecule right.