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HS Code |
788337 |
| Chemical Name | 3-Indoleacetamide |
| Cas Number | 1742-47-2 |
| Molecular Formula | C10H10N2O |
| Molecular Weight | 174.20 |
| Appearance | White to off-white solid |
| Melting Point | 187-191°C |
| Solubility | Soluble in dimethyl sulfoxide (DMSO), slightly soluble in water |
| Purity | Typically ≥98% |
| Synonyms | Indole-3-acetamide, IAA-amide |
| Storage Conditions | Store at 2-8°C, protect from light |
| Smiles | CC(=O)Nc1c[nH]c2ccccc12 |
| Inchi Key | KEWIBFLWHIHRSC-UHFFFAOYSA-N |
| Usage | Intermediate in the biosynthesis of indole-3-acetic acid (IAA) |
As an accredited 3-Indoleacetamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 3-Indoleacetamide is packaged in a 25g amber glass bottle with a secure screw cap, labeled with safety and product information. |
| Shipping | 3-Indoleacetamide is shipped in tightly sealed containers, protected from moisture and light. It is packaged according to standard chemical safety protocols to prevent leakage or contamination. The product is labeled with hazard information, and transport complies with local, national, and international regulations for non-hazardous organic chemicals. |
| Storage | 3-Indoleacetamide should be stored in a tightly sealed container, protected from light and moisture. Keep it in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizing agents and acids. Ideally, store it at room temperature and label the container clearly. Prevent exposure to heat and direct sunlight to maintain chemical stability. |
Applications of 3-Indoleacetamide in Industrial Manufacturing3-Indoleacetamide functions as a crucial intermediate in fields requiring strict formulation, controlled reactivity, and consistent batch quality. Our facility delivers this material to buyers who integrate it into high-value production chains, focusing on chemical synthesis, plant growth regulators, pharmaceutical standards, specialty reagent preparation, and academic research supply. Below we detail major industrial use cases based on real downstream demand. 1. Agrochemical Synthesis: Indole-3-Acetic Acid (IAA) ProductionIn the agrochemical sector, 3-Indoleacetamide plays a vital role as a direct precursor for the synthesis of Indole-3-acetic acid, a widely recognized plant growth regulator. Our customers employ strictly controlled hydrolysis and oxidation routes to convert this material, taking advantage of its predictable reaction behavior and high conversion rates. Downstream, the manufactured IAA integrates into plant hormone products for crop yield management and tissue culture, ensuring precise application rates mandated by agricultural regulations. Industry compliance standards
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2. Pharmaceutical Intermediate for Active Pharmaceutical Ingredient (API) SynthesisPharmaceutical companies rely on 3-Indoleacetamide as a key intermediate during the multi-step synthesis of indole-based APIs and investigational drugs. It supports high-yield formation of the indole core, allowing downstream modification and functionalization critical for pharmacological activity. Our customers’ processes demand stringent quality assurance, traceability, and adherence to validated GMP manufacturing practices, particularly when supplying later clinical or commercial stages. Industry compliance standards
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3. Synthesis of Specialty Indole Reagents for Chemical IndustryChemical manufacturers utilize 3-Indoleacetamide to synthesize advanced indole derivatives needed for analytical reagents, dye intermediates, and fine chemical applications. The controlled reactivity profile of the material permits selective modifications, supporting tailored reagent development for laboratory and industrial chromatographic systems. Our QC-driven process ensures batch uniformity, allowing downstream formulators to achieve trace-level detection standards and specified impurity thresholds for reagent-grade products. Industry compliance standards
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4. Research and Academic Reference Standard SupplyUniversities and research institutes request high-purity 3-Indoleacetamide as a standard compound for biochemical, plant physiology, and organic synthesis projects. Our facility ensures each batch meets analytical-grade specifications, providing detailed certificates, spectral data, and documentation for peer-reviewed research. Researchers use the material to elucidate metabolic pathways, create reference samples for quantification, and validate synthetic protocols in development of new indole compounds. Industry compliance standards
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As a chemical manufacturer, producing 3-Indoleacetamide opens a door to both plant science and agricultural progress. In our plant, formulation starts with raw materials that undergo monitored synthesis steps, checked at every stage under strict quality protocols. Where our team of chemists have spent years refining the process, every batch leaves our floor with an assurance of purity, stability and predictable performance. From the controlled reaction temperatures to the precise pH adjustments and the final crystallization, each detail shapes the product’s consistency. This hands-on approach makes a difference that customers notice in downstream applications.
3-Indoleacetamide, often abbreviated IAA-amide, stands as a key precursor and metabolite related to indoleacetic acid, an auxin that regulates plant growth. The physical appearance of the product is a pale white to off-white crystalline powder, with tested purity levels exceeding 98%. We routinely conduct High Performance Liquid Chromatography (HPLC) and Mass Spectrometry analyses to ensure this purity because laboratory, commercial, and greenhouse applications depend on it.
Rather than market-driven repackaging, we focus on chemistry that solves real-world demands. Over the years, our collaborations with crop scientists and academic researchers have steered our attention toward the batch characteristics that matter most—solubility in ethanol and dimethyl sulfoxide, ease of dilution, and reliable turnover in plant metabolic pathways. The best results emerge not from reselling bulk commodity goods, but from thoughtful manufacture and open feedback with end users.
Plants rely on trace amounts of auxin analogs to trigger germination, root initiation, shoot elongation, and fruit set. 3-Indoleacetamide enters this story as a stable intermediary compound, utilized by professionals aiming to study the biosynthetic route from indole acetonitrile to physiologically active indole-3-acetic acid. Agronomists and plant physiologists often add it into experimental soils or hydroponics as a substrate, tracking how plants transform it under different stress or nutrient conditions.
One common question asks what sets a purpose-made, high-purity indoleacetamide apart from commodity indole acetic derivatives. The difference starts at reaction yield, which we’ve tuned so side products like 3-indoleacetic acid and indole are kept well below detection thresholds. Each batch comes with analytical traceability, so researchers and agricultural technology companies avoid introducing unknowns to sensitive trials. Inconsistent or lower grade lots, on the other hand, can contain oxidized byproducts that confound plant absorption and metabolic profiling.
Our current production model positions 3-Indoleacetamide for practical use by both high-throughput research labs and commercial growers. Each lot arrives in moisture-sealed packaging that extends shelf life, since contact with ambient humidity or excess light causes slow decomposition to indole acetic acid. Chemists with us have monitored this transformation over time, routinely storing control samples in varied conditions and confirming less than one percent loss per year under our recommended storage tips. These details help end users rely on their dosing protocols month after month.
Other manufacturers sometimes offer generic 3-Indoleacetamide products pressed into pellets or mixed with excipients, which adds risk for laboratories that operate analytical balances at the microgram scale. In contrast, our team maintains an unblended, crystallized product as the straightforward choice for making master solutions or serial dilutions. No binders, no unnecessary fillers, and no variable dissolution rates; just a consistent baseline that doesn’t surprise anyone halfway through a plant development trial.
Making 3-Indoleacetamide from raw aniline sources calls for vigilance during each phase of synthesis. In our plant, every vessel and batch reactor has continuous monitoring for temperature, pH, agitation and time, recorded digitally and manually. We’ve seen, in practice, how seemingly minor fluctuations can alter the color, melting point, and final yield of a run. Technicians calibrate analytical instruments weekly, and quality managers review chromatograms for contaminant traces. This rigorous approach allows us to issue certificates of analysis that match the rigorous expectations of academic laboratories and commercial partners alike.
Some new customers have asked us why these controls are not present from every supplier. The fact is, shortcuts at the chemical reactor stage lead to small but impactful variances in the resulting indoleacetamide. For example, incomplete filtration introduces metallic ion traces that can inhibit plant growth at microgram levels. We have accumulated years of plant bioassay results showing that meticulous separation and solvent removal pays off in downstream accuracy and plant health outcomes.
3-Indoleacetamide has found footing in more than one application. In research, it helps trace the conversion of tryptophan-based compounds through intermediate products and final active auxins. Technicians growing Arabidopsis, rice, and maize can use it to track how certain gene knockouts alter plant hormone metabolism. Breeding programs utilize the compound in propagation media to stimulate root formation and improve cloning rates among recalcitrant species. On a larger scale, producers of rooting agents use it as a foundational ingredient that undergoes further transformation before reaching end-use farms and nurseries.
Manufacturing in-house means we monitor supply chain stability and raw material sources. This lets us buffer against market disruptions and keep consistency batch after batch—a quality that checks out in longitudinal experiments across planting seasons. As a supplier trusted by both global labs and local greenhouses, we get direct feedback about how each batch performs through all stages of the growing process. It is this long-view perspective that keeps us improving our protocols, balancing environmental impact with scientific output.
Some may wonder where 3-Indoleacetamide stands compared to other indole derivatives. For growers and laboratories demanding fine-tuned control over hormone concentrations, this compound’s structural stability and low contamination rate deliver peace of mind. It isn’t susceptible to rapid oxidation like many open-chain indolic acids, and it dissolves reliably in most laboratory solvents. Instead of intermittent spikes in active hormone seen with crude extracts or unrefined powders, users can predictably influence plant auxin availability.
Other products, especially those made through decentralized supply chains or small-batch improvisation, come with inconsistent color, crystal size, and solubility profiles. We put each production batch through extended heat, cold, and humidity trials to document these traits, minimizing surprises at the point of use. As we continue to scale production, we keep transparency and traceability at the front of our operation. Each lot number ties back to documented raw materials, process steps, analytical results, and ongoing stability tests.
We understand that regulatory landscapes change, and researchers across the globe operate under different standards for chemical handling and use. Each year, we consult with safety experts and regulatory specialists to ensure that our handling, packaging, and documentation meet the most up-to-date requirements for both laboratory and agricultural environments. Shipment labeling includes best-practices for storage, and our support staff answer real-world questions about scales of use, waste minimization, and environmental stewardship.
Small batch laboratories and large commercial agronomists want a product that won’t introduce variances into their data or crop outcomes. They rely on the certainty that comes from a manufacturer who sees their stakeholder needs as more than numbers on an order form. Our approach emphasizes clear communication, regular quality assurance updates, and prompt response to user questions. We see science as a partnership, not a transaction.
One major priority for our team has been direct investment in ongoing research projects. Working alongside university biology departments and commercial growers, we contribute both materials and technical expertise to experiments that dissect the minute details of plant hormone metabolism. These investigations sometimes reveal minor impurities that can make or break a particular bioassay. We take these lessons back into our synthesis process and documentation, so subsequent batches reflect the latest insights and method improvements.
Working at the manufacturing level, we focus less on sales volume, more on long-term results and user outcome. Researchers and growers bring unique questions each season—questions we answer by maintaining meticulous laboratory records and building flexible supply relationships. Our staff visit testing sites, study long-term results, and occasionally help troubleshoot anomalies in biomarker readings. The information we gather from these collaborative checks feeds directly back into our internal chemistry.
Our production process minimizes byproduct generation and energy use, choosing greener solvents and closed-loop systems where possible. Solvent recovery and waste treatment operate hand-in-hand with synthesis, so we keep emissions and discharge within strict tolerances. By documenting our resource streams, we can adapt quickly to new sustainability guidelines and offer product certification to customers wanting clear proof of responsible sourcing.
In a marketplace filled with relabeled and third-party distributed chemicals, direct-from-manufacturer supply matters. This lets us respond directly to large swings in global demand, coordinate shipment logistics, and offer technical documents containing detailed batch analytics, not just generic “meets specification” notes. Each shipment ties to a process lineage that end users can fact-check, trace, and audit as research standards and regulatory rules evolve.
Feedback from users forms the backbone of our manufacturing and quality refinement. Growers have shared time-lapse photos tracking root and shoot growth after incorporating 3-Indoleacetamide into propagation substrates. Lab researchers have demonstrated clear correlations between application rates and marker enzyme expression, uncovering subtle insights into auxin transport and stress adaptation. Our role does not stop at delivery—every cycle of use, test, observation and improvement shapes the chemistry that comes next from our reactors.
Some customers come to us after failed runs with unknown-source materials, seeking confidence that each gram they dose into their systems holds true to published specifications. Others look for bulk-scale reliability to meet industrial planting schedules. We keep open lines for all, documenting adjustment strategies and sharing peer-reviewed findings. Whether analyzing degradation kinetics under variable humidity, or refining solubility protocols for novel hydroponic systems, we remain present at each step.
Manufacturing 3-Indoleacetamide pushes our team to stay ahead of both scientific expectations and marketplace changes. New crop genetics, regulatory shifts, and changing soil profiles ask for a compound that holds up analytically and logistically. As climates and agricultural patterns evolve, feedback from growers on emergent crop stresses informs how we refine our process and product packaging.
Our promise grows from this direct involvement in the chemical lifecycle. Process design, raw material selection, production standards, and technical support all flow from firsthand knowledge. With every compound made and shipped, we commit not just to impurity thresholds or solubility charts, but to the results that matter—a greenhouse full of viable plants, a laboratory generating reproducible data, and an innovation pipeline fueled by open exchange. In a world pressed for both yield and certainty, direct manufacturing delivers value that endures.