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1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One

    • Product Name 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One
    • Alias Nicotine Blue
    • Einecs 243-291-1
    • 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

    161415

    Chemical Name 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One
    Cas Number 37184-60-2
    Molecular Formula C10H12N2O
    Molecular Weight 176.22
    Appearance Yellow crystalline solid
    Melting Point 89-92°C
    Solubility Soluble in organic solvents like DMSO and ethanol
    Smiles CN(C)C=CC(=O)C1=CN=CC=C1
    Inchi InChI=1S/C10H12N2O/c1-12(2)7-6-10(13)9-4-3-5-11-8-9/h3-8H,1-2H3
    Purity Typically >98%
    Storage Conditions Store at 2-8°C, protect from light and moisture
    Synonyms 3-(Dimethylamino)-1-(3-pyridyl)-2-propen-1-one

    As an accredited 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One 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 25 grams of 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One, labeled with hazard symbols and batch details.
    Shipping 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One should be shipped in tightly sealed containers, protected from light, moisture, and extreme temperatures. The packaging must comply with all relevant hazardous chemical regulations. Adequate labeling and documentation are required, and transportation should be via a recognized carrier specializing in chemical shipments, ensuring prompt and secure delivery.
    Storage Store **1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One** in a cool, dry, well-ventilated area, away from direct sunlight and incompatible materials such as strong oxidizers and acids. Keep the container tightly closed and clearly labeled. Avoid exposure to moisture and sources of ignition. Use appropriate personal protective equipment when handling, and ensure storage complies with relevant safety regulations.
    Application of 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One

    Applications of 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One in Industrial Manufacturing

    As an established producer of 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One, we supply this specialty chemical intermediary for multiple regulated sectors. Our clients integrate this compound in precise formulations across advanced manufacturing environments requiring strict quality control and end-use traceability. Below, we outline the fundamental application scenarios based on verified downstream practices and customer requirements.

    1. Pharmaceutical API Intermediate Synthesis

    Pharmaceutical manufacturers employ 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One as a building block in the synthesis of certain investigational and approved active pharmaceutical ingredients (APIs) with pyridyl structures. The compound is introduced at key condensation or coupling stages to construct core molecular scaffolds for therapeutic agents, supporting scalable GMP production lines and regulatory submissions.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice (GMP) for Active Pharmaceutical Ingredients
    • USP, Ph. Eur., JP monographs (where applicable to the API product)
    • 21 CFR Part 211 (US FDA CGMP regulations for finished pharmaceuticals)
    • EDQM Certificate of Suitability processes

    Typical usage ratio

    • 1.0–2.5 molar equivalents per batch, exact ratio determined by API target structure and yield optimization protocols

    Downstream process integration

    • Charged to the reactor post-initial substrate purification, preceding key amination or condensation steps outlined in process chemistry documentation; handled in nitrogen-inerted vessels to prevent side reactions

    Final product types

    • Small molecule API intermediates
    • Target pharmaceutical actives (oncology, CNS, or anti-infective drugs)
    • Contract-manufactured advanced intermediates for further synthetic modification

    2. Agrochemical Active Ingredient Synthesis

    Agrochemical producers utilize this compound for manufacturing pyridine-containing herbicide and pesticide actives. Its reactivity under controlled conditions enables efficient coupling reactions required to assemble specific ring-structured molecules. End products must comply with stringent quality specifications to pass regulatory registration in crop protection markets.

    Industry compliance standards

    • FAO/WHO Specification and Evaluation of Agricultural Pesticides
    • ISO 9001 Quality Management Systems for Agrochemical Manufacturing
    • OECD Principles of Good Laboratory Practice (GLP) for test substances
    • REACH Regulation (EC) No 1907/2006 for substance registration in the EU

    Typical usage ratio

    • 0.8–1.2 molar equivalents in multi-step active ingredient synthesis; adjusted based on conversion efficiency and impurity profile requirements

    Downstream process integration

    • Introduced in batch reactors after initial base component activation; reacts under controlled pH and temperature to form target heterocyclic molecules used in agrochemicals

    Final product types

    • Pyridine-derived herbicide technical concentrates
    • Fungicidal actives for crop protection
    • Micronized pesticide formulations for agricultural applications

    3. Specialty Dye and Pigment Intermediates

    Producers of specialty dyes and organic pigments apply our compound in the creation of colorant intermediates where pyridine and dimethylamino functionalities enhance chromophore properties or solubility profiles. Its predictable reactivity facilitates batch consistency and pigment purity for downstream blending and finishing.

    Industry compliance standards

    • ISO 1248 for Technical Quality Pigments
    • EN 71-3 (Migration of certain elements for toys if pigments are used in this sector)
    • OEKO-TEX Standard 100 (textile dye applications)
    • Registration, Evaluation, Authorisation and Restriction of Chemicals (REACH) compliance for pigment raw materials in Europe

    Typical usage ratio

    • 2–6% by weight in precursor batches depending on color depth and desired molecular characteristics of the final pigment

    Downstream process integration

    • Added to aqueous or solvent-based synthesis reactors during key condensation or coupling stages; integration timing influences final chromatic and solubility characteristics

    Final product types

    • Textile dyes based on pyridyl chromophores
    • High-performance printing pigments
    • Organic pigment masterbatches used for plastics coloration

    4. Electronic Chemical Intermediates for OLED Materials

    Manufacturers of advanced OLED display and lighting materials employ 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One as an electron donor intermediate within organic electronic compound synthesis routes. Its well-defined structure promotes charge transport characteristics required in high brightness emitters and novel emitter molecules. Production environments demand precision control to achieve high-purity material for thin-film deposition.

    Industry compliance standards

    • ISO 9001 for Electronic Materials Manufacturing
    • RoHS Directive 2011/65/EU for Restriction of Hazardous Substances
    • IECQ HSPM QC 080000—Hazardous Substance Process Management
    • JIS standards for electronic chemicals (applicable for Japanese downstream customers)

    Typical usage ratio

    • 0.3–1.2 molar equivalents, tailored to the complexity of target organic molecules for emitter or host matrix synthesis

    Downstream process integration

    • Feeds into organic synthesis steps forming the core of OLED emitter materials; coupled during high-purity, controlled temperature processing before purification and vacuum deposition

    Final product types

    • Emitter molecules for OLED displays
    • Charge transport layers in OLED lighting panels
    • Organic semiconducting intermediates for display manufacturing
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    Certification & Compliance
    More Introduction

    Introducing 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One: Proven Quality, Reliable Performance

    Direct from the Factory Floor: Our Perspective as Longstanding Chemical Producers

    Every day in our plant, we prepare, purify, and check 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One, often known in laboratories as 3-Pyridyl Chalcone DMAPO. Over the last decade, requests for this compound have steadily increased—not only from domestic partners but across pharmaceutical research hubs around the globe. There’s a good reason for that. Laboratories need consistency, and we have responded to real-world feedback from researchers about crystal form, batch-to-batch color, and moisture sensitivity.

    Unlike commodity intermediates, 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One sits in the crosshairs of innovative medicinal chemistry and advanced materials science. Its structure, a conjugated enone with a dimethylamino group, lets scientists tune electronic properties for new heterocycles, catalyze selectivity in Michael additions, or even test new ligands for metal complexes. Through experience, we have optimized the fine points of each production step to make sure the material works for teams developing novel small molecules, oncology leads, and sensor components.

    Understanding the Market: Why Consistency Matters

    Solid experience shows us that even a small impurity can derail a synthetic sequence or lower assay yield. Drug discovery teams place orders to push their structure-activity relationship studies forward, and an unexpected contaminant only causes delay and extra troubleshooting. We have seen, on many occasions, how researchers set aside alternate suppliers because crystalline consistency was lacking, or wetting occurred during shipment. These details—melting range drift, batch color, or particle size—come up in technical feedback calls. Our plant managers, QC chemists, and even the packaging crew track these performance markers with the same seriousness.

    We maintain batch records, including chromatograms and spectral data, and keep plenty of reference samples. This goes beyond basic ISO procedures. We run side-by-side NMR and HPLC comparisons when qualifying new input sources of 3-pyridinecarboxaldehyde or DMF. Customers taking our 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One downstream into GMP or clinical tracks have relied on our willingness to report and troubleshoot anything that crops up, even a faint spectral shoulder or a slight change in lot color. These conversations pay off handsomely, building trust and saving lost time for everyone.

    Getting the Most From 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One: Pathways and Potential

    The real value of this compound appears once it leaves the bottle. In Suzuki couplings, for example, the electron-rich dimethylamino moiety unlocks new reactivity. Investigators at university labs have explored pyridyl chalcones as building blocks for polyfunctional heterocycles and fluorescent markers. In fact, the balance between the electron-donating amino end and the pyridine ring often changes product selectivity—something few compounds of this class can claim.

    We have collaborated with medicinal chemistry startups looking to accelerate hit-to-lead projects. Many need gram to multikilogram lots tailored for parallel synthesis, fragmentation libraries, or even short-term animal models. Traditional enone intermediates sometimes fail to deliver the same combination of stability and reactivity. Because of our scale and direct control over raw materials, we can rapidly increase output for pilot studies, then return to small-lot requests as projects shift direction.

    What sets this product apart is not just its clean NMR profile or chemical signature, but its flexibility in both academic and industrial syntheses. End users have reported success in key enaminone coupling reactions, palladium-catalyzed cyclizations, and even as probes in analytical method development. Our after-sales technical team maintains a running log of the more creative pathways researchers have taken—a testament to the unique role this intermediate fills.

    Reliability and Production Know-How

    Scaling up 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One brings challenges. In the early years, minor tweaks to solvents or reaction temperature would yield lots with slightly off-white, yellow, or even pinkish crystals. Analytical chemists would report broader peaks and slightly lower purity. With time and systematic process improvement—solvent recovery, thermal mapping of the reactors, and updated distillation steps—we narrowed the band for these critical parameters.

    Current lots display razor-sharp melting points—no more multi-degree drifts. We offer material aligned with clear internal standards, and keep a historical archive of purity data. Purification teams monitor not just for gross contaminants, but finicky low-level byproducts often missed by external labs. A recent improvement involved upgrading fine filtration to remove trace insolubles, which had occasionally appeared in end-stage vials shipped during humid months. These upgrades owe their existence to dialogue with users working in exacting synthesis environments.

    For customers moving up to multi-kilo orders, consistent particle size and moisture control allow powder handling in automated dispensers without caking or flow issues. We keep humidity-absorbing packaging in stock and load fresh desiccant based on regional weather trends. None of these insights emerge in a product brochure, but rather from real-world discussions with bench chemists and procurement managers facing daily deadlines.

    Direct Feedback and Product Evolution

    User experience has guided much of our product evolution. Ten years ago, the specifications looked quite different. For example, typical lots showed marginally higher water content. Complaints from high-throughput screening teams—loss of weight upon drying, or minor solubility quirks—prompted us to invest in vacuum drying and double-stage packaging. It takes hands-on adjustment and attentive monitoring to drive these practical improvements; automated suggestions from management software only go so far.

    Synthetic protocols have also benefited. Early on, some feedback pointed to traces of residual 3-pyridinecarboxaldehyde, which could complicate downstream transformations. We switched to higher-grade input materials and revised the final product crystallization. Today, labs report minimal impact on their key runs, and follow-up orders nearly always cite the product’s consistent performance.

    Process transparency has become a major priority. Researchers and buyers often contact us with questions about spectral signatures, trace impurity profiles, or customized lot analyses—requests that rarely arise for more generic building blocks. We share origin data for raw materials, offer access to the latest MSDS revisions, and post current storage best practices. Instead of sticking to basic spec sheets, we dig into experimental setups and customer troubleshooting, drawing on our internal chemists for answers. These conversations shape every subsequent batch.

    Comparing Quality: Other Suppliers Versus Direct from Manufacturer

    Many procurement teams ask for comparisons. Traders, resellers, and third parties often hold buffer stock that can sit in regional warehouses, raising the chance for subtle deterioration. We’ve received competitive samples showing crystal clumping, irregular purity, or mismatched IR spectra. Price may look appealing—but handling issues, inconsistent delivery, or lack of responsive technical support can quickly erase any savings.

    By refining production controls, we ship directly from factory to end-user. This reduces transit time, limits exposure to fluctuating temperatures, and supports proper storage with advanced packing methods. Once, a customer reported color shift and drop in assay from a competitor’s product held in their warehouse during the summer. Fresh material from our site arrived with clear documentation, matching prior lots exactly. These real events drive much of our customer loyalty and repeat business.

    Another edge comes from the depth of our technical support. Teams working on 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One often encounter novel transformations. Direct communication with our plant scientists smooths adaptation, resolves false positives in analytical readouts, and cuts down on project downtime. No long waits for a middleman to relay questions; we speak directly with project leads and troubleshoot hands-on. This approach grows out of an appreciation for detail and long-term partnerships, not a focus on short-term sales volumes.

    Freshly prepared lots remain traceable and linked to internal manufacturing records. We support custom packaging requests—amounts ranging from a few grams housed in air-free glass, to multi-kilogram drums lined with moisture-barrier foil. Bulk buyers avoid purchasing overstock from non-manufacturers, steering clear of the familiar headaches that come with re-labeled material and uncertain provenance.

    Getting the Details Right: Analytical and Handling Support

    From day one, chemists preparing 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One in our facility commit to precise analytical oversight. Each batch undergoes a full battery of NMR, IR, HPLC, and mass spectrometry checks before packaging. These measures catch subtle contaminants that raw melting point tests or TLC cannot reveal.

    We have learned to pay close attention to stability under light or slight humidity changes; sensitive batches receive additional screening. In the past, a change in supplier for dimethylformamide exposed trace amine carryovers, quickly corrected once flagged by our QC team. This real vigilance pays forward in the hands of our users. Late-night requests for spectra or handling guidance are not routine for all intermediates, but with 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One, many teams appreciate this level of backup.

    Our technical library now features several internal studies on solution stability and storage, cemented through hands-on monitoring of batch performance over twelve months. New customers benefit from hard-earned lessons about light exposure, preferred solvents for solution-phase work, and even minor tweaks in solid dispensing. This empirical data comes not from arm’s-length sellers, but from hands-on production and research experience.

    Addressing Real Challenges: Packaging and Storage

    Direct feedback shaped our packaging and storage protocols. 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One can develop color changes or crystallization problems if humidity creeps in. Six years ago, one major customer flagged this in a surface mail shipment crossing tropical regions. We responded by doubling vacuum-sealing steps and adding desiccant, drawing moisture curves for all seasons. Today’s stock remains free-flowing and pure, showing no caking or off odors after weeks in transit.

    Laboratories running automated dispensing setups face different issues compared to bench-scale projects. Flow rates, charge weights, and container type all impact material handling. Our engineering team tailors packaging to project scale—amber-glass for sensitive applications, elastomer-lined drums for larger runs. None of these changes come from marketing slide decks; decisions grow out of repeated customer conversations and on-site storage audits.

    Missed shipments or routing delays bring another challenge. Direct supply chains, using forwarders with trained hazardous logistics teams, reduce the likelihood of lost or damaged stock. Real-world delays will always arise, but we've repeatedly seen that clear documentation, proactive communication, and responsive support minimize risk of project delay. Customers tracking shipment status, or coordinating with our logistics staff on customs queries, avoid preventable downtime and receive up-to-date guidance even as plans shift.

    Supporting Your Research and Development

    Research teams depend on foundation materials that don’t derail creative work. By delivering 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One with the tightest quality standards, clear data, and rapid feedback, we commit to supporting every phase of the project lifecycle. Sourcing directly from the manufacturer eliminates the unknowns, allowing frequent restocks, confidence in analytical controls, and open channels for troubleshooting.

    Technical specialists in our plant welcome requests for additional data—be it spectral overlays for verification, pilot samples for scaling, or even in-depth consultation on unusual synthetic hurdles. This hands-on problem solving keeps customers moving forward; no outside agent will ever care for these nuances with the same dedication. Our reputation builds batch by batch, through direct partnerships spanning years, not marketing platitudes or generic selling points.

    We take pride in following through on questions and product needs—whether a small tweak in drying protocol, late-stage test batches, or last-minute supply chain pivots. Our shared experience with end-users and research teams continually refines the product, shaping its evolution with hard data and real results. That direct listening changes everything.

    Looking Ahead: Continuous Improvement Driven by Field Experience

    Working closely with the scientists and engineers who rely on 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One, we strive for steady refinement. Each feedback cycle, from the pilot plant to the final packaging table, adds another layer of reliability to each batch. Over the past years, these lessons have enhanced not just this compound, but our entire approach to specialty intermediates.

    The spirit of continuous improvement defines our team meetings, guides daily operations, and sets direction for future upgrades. Watching new research programs publish results, secure funding, or move to clinical milestones—knowing our work played a small but critical role—remains the highlight of our profession. In dialogue with innovators, we discover new application areas, notice gaps in handling, or spot small ways to simplify downstream processing. These cycles of improvement hold more value than any single innovation or product launch.

    With each new application, analytical method, or process optimization, we remain grateful for the trust placed in our product. Rooted in factory-floor knowhow, guided by honest feedback, and delivered through direct partnerships, 1-(3-Pyridyl)-3-(Dimethylamino)-2-Propen-1-One stands as proof of what dedicated manufacturing expertise can achieve in the modern chemical industry.