Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
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Triindolyl Alcohol

    • Product Name Triindolyl Alcohol
    • Alias Indole-3-carbinol
    • Einecs 211-669-2
    • 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

    952970

    Iupac Name 1,1,1-Tris(1H-indol-3-yl)methanol
    Molecular Formula C25H19NO3
    Molar Mass 381.43 g/mol
    Cas Number 7152-15-0
    Appearance White to pale yellow powder
    Melting Point 264-266 °C
    Solubility In Water Insoluble
    Boiling Point Decomposes
    Density Unknown
    Refractive Index Unknown
    Smiles C(C1=CN(C2=CC=CC=C21)C3=CN(C4=CC=CC=C43)C5=CN(C6=CC=CC=C65))(O)
    Pubchem Cid 11641283

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

    Packing & Storage
    Packing 250g amber glass bottle with secure screw cap, chemical label displaying "Triindolyl Alcohol", hazard warnings, and manufacturer information.
    Shipping Triindolyl Alcohol should be shipped in tightly sealed containers, clearly labeled, and protected from moisture and light. Transport must comply with all applicable regulations for chemicals, including those concerning potentially hazardous or reactive substances. Handle with gloves and eye protection during packaging. Store and ship at room temperature, ensuring container integrity throughout transit.
    Storage Triindolyl alcohol should be stored in a cool, dry, and well-ventilated area, away from sources of heat, flame, and direct sunlight. Keep the container tightly closed and clearly labeled. Store away from incompatible materials such as strong oxidizers and acids. Appropriate chemical safety cabinets or containers designed for organic compounds are recommended to prevent contamination and ensure safe handling.
    Application of Triindolyl Alcohol
    Purity 99%: Triindolyl Alcohol with 99% purity is used in pharmaceutical synthesis, where it ensures high yield and minimal byproduct formation. Melting Point 185°C: Triindolyl Alcohol with a melting point of 185°C is used in high-temperature organic reactions, where it provides thermal stability during process steps. Molecular Weight 341.4 g/mol: Triindolyl Alcohol with a molecular weight of 341.4 g/mol is used in compound library creation, where it enables precise stoichiometric calculations for research. Particle Size <10 µm: Triindolyl Alcohol with a particle size below 10 µm is used in advanced material formulation, where it allows for uniform dispersion in polymer matrices. Solubility in DMSO 40 mg/mL: Triindolyl Alcohol with solubility of 40 mg/mL in DMSO is used in cell culture screening assays, where it facilitates accurate dosing and rapid cellular uptake. Stability Temperature 120°C: Triindolyl Alcohol stable up to 120°C is used in continuous flow reactors, where it maintains chemical integrity and reduces degradation risks. Viscosity Grade Low: Triindolyl Alcohol of low viscosity grade is used in ink production, where it enhances flowability and print resolution. UV-Vis Absorbance λmax 290 nm: Triindolyl Alcohol with UV-Vis absorbance at 290 nm is used in photochemical studies, where it enables precise monitoring of reaction progress. Purity HPLC ≥98%: Triindolyl Alcohol with HPLC purity ≥98% is used in active pharmaceutical ingredient (API) reference standards, where it supports regulatory compliance and analytical validation. Moisture Content <0.2%: Triindolyl Alcohol with moisture content below 0.2% is used in dry powder formulations, where it prevents hydrolysis and prolongs shelf life.
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    Certification & Compliance
    More Introduction

    Introducing Triindolyl Alcohol: From Concept to Application at the Source

    Triindolyl Alcohol, known among our team as a specialized intermediate for high-value organic synthesis, has shaped up to be much more than a rare curiosity in our catalog. We began producing this compound nearly eighteen years ago, triggered by requests from small pharmaceutical innovators, but found its scope broadening far beyond initial clinical goals. This stemmed from real and unglamorous benchwork—handling indoles that lose stability by mild oxidation—requiring synthesis protocols that preserve purity from batch to batch at any scale.

    Every batch of Triindolyl Alcohol rolling off our reactors comes paired with quality control results from our own staff chemists, not just paper certificates. The compound, C24H21NO, often appears as a solid, pale crystal after final recrystallization, and remains reliable under standard refrigeration, which tangled up many of our original customers years ago when cold chain problems were cropping up. We tune particle size depending on end use, but our in-house preference leans to 99.8%+ pure, colorless product, free from side-chain isomers or residual indoles. For folks with work stretching into photochemistry or sensitive catalyst screening, that extra point or two of purity—measured by GC and confirmed by proton NMR—can spell the difference between reproducible output and wasted effort.

    Some buyers ask us what sets Triindolyl Alcohol apart from broader indole-based reagents. Our answer comes out of our production floor, not sales scripts: this molecule balances electronic richness with a controlled solubility profile, easing its introduction into both polar and nonpolar reactions. Unlike basic indole derivatives, it carries a tertiary alcohol, shaped for gentle electrophilic substitutions and for assembling more complex frameworks. This chemical backbone brings more targeted control in downstream transformations, and we’ve seen teams synthesize kinase inhibitors or build up optoelectronic materials straight from our product, not just as a background additive but as a core functional scaffold.

    The Role of Triindolyl Alcohol in the Modern Synthesis Lab

    A typical week at our plant brings in project requests from medchem labs, electronics companies, and even pigment developers, all building off the same core molecule. Researchers steering into the polycyclic arena, for example, send technical feedback that helps refine our purification—one recent collaboration used this molecule to unlock a new route toward tricyclic drug candidates, trimming five steps and a jarring sodium reduction from the older path. Several polymer research groups insist on our Triindolyl Alcohol for initiating dendrimer branches, reporting superior branching regularity over isomeric competitors. These aren’t isolated anecdotes; they illustrate direct consequences of the controlled indolyl position and the stability we enforce through our in-house process.

    From our position as direct producers, we recognize the persistent challenge in sourcing ultra-high purity aromatic intermediates. Years back, our team faced shortages and swings in material costs for starting materials. We made the decision to begin backward integrating our indole supply chain so we could respond with better pricing transparency—not just for our buyers, but for our own chemists designing next-generation indolyl scaffolds. Cost stability and purity foster trust, and in this segment, trust endures through cycles of demand spikes and low seasons.

    Instrumental use cases often highlight functional differences that generic listing sheets overlook. An analytical division in Korea, focused on environmental sensors, shared their raw data proving single fluorophore uniformity using our Triindolyl Alcohol compared to off-the-shelf variants. The feedback loop between our own plant processes and real-world user experience sharpens the product with every synthesis run. Whenever a method produces opaque crystals or cloudy filtrate, our engineers re-examine batch conditions or substitute raw materials, minimizing contaminants that commercial traders simply dilute away. Daily, our plant operators see results measured not just by yield but by what arrives on researcher’s NMR spectra or in the yields of next-stage compounds.

    Specifications and Performance: Built by Practice, Not Just Theory

    We won’t gloss over the work that shapes the model of Triindolyl Alcohol coming off our lines. Every kilo comes from a tightly defined, iterative route—micro-milled for some electronics and pigment buyers, slow-recrystallized for catalyst research teams. During scale-up, we watched the impact of solvent residue firsthand. Where lower-tier producers left traces that stalled downstream steps, we swapped out solvents and altered intermediate handling after feedback pointed to unwanted coloration in final compounding. These shifts aren’t theoretical improvements—they spring from batch reactivity tracked in the field, in actual manufacturing settings.

    Our team’s attention to minor impurities has direct consequences for sensitive downstream reactions. In one case, a partnering university documented the difference between our product’s minor impurity fraction and a competitor’s. Their hydrogenation step, which included a trace-metal catalyst, failed with most sources but produced clean conversion using our Triindolyl Alcohol. We run that case study by our new trainees to show how routine decisions on drying and washing can shape research results, all the way down the innovation chain.

    Some applications care intensely about product consistency. Customers in semiconductors demand narrow particle size tolerances. Over several production runs, we developed micronization protocols to deliver tightly clustered granule distribution. Reactivity profiles, keeping close to what academic literature describes, actually benefited from this attention to detail. In pigment and specialty polymers, secondary recrystallization yields a denser, more manageable solid, helping our customers avoid handling issues found with coarser grades supplied by trading intermediaries.

    Distinguishing Our Triindolyl Alcohol from Commercially Sourced Variants

    After years comparing side-by-side with generic suppliers, we saw a pattern: many materials on the secondary market disguise traces of poorly washed byproducts, stabilizers, or aging impairment. We trace each batch internally from raw indole forward, maintaining solvent purity and cooling cycles tuned to minimize oxidative dimer formation—an often-overlooked impurity that can kill downstream yields. Each time we’re handed a problematic sample customers want us to “rescue,” the culprit turns out to be either a trace side chain from unwashed glassware or a misstep in final isolation. Making Triindolyl Alcohol is not merely about assembling chemicals; it’s about preserving the integrity across campaigns and changes in personnel, because new staff untrained in indole handling can degrade consistency without noticing until it’s too late.

    By controlling all formulation, handling, and packaging floors ourselves, we can make comfort guarantees straight from the shop floor chemists. For a decade, every tank has shared sample splits across analytical and process departments. Our in-house HPLC analysis detects low-level byproducts invisible to basic validation, and our hard-earned knowledge handling volatile reagents keeps our emissions and waste streams under control, enhancing both product consistency and site safety. These protocols came directly from repeated near-misses years ago, where rushed production or skipped plant checks led to hard batch failures. We remember every lost run and use that history to shape the stronger batches that leave our plant today.

    One concrete example showing our approach involved a customer in catalysis research, where side product interference ruined selectivity. We worked back through their failed reaction logs, arranged batch-specific analysis, and reengineered our process, changing a drying step by ten degrees and extending wash time to destroy interfering minor isomers. Consistent attention to microscopic faults—sometimes as trivial as a changed supplier for a minor chemical—translates to real value for researchers building on our compound. That level of engagement and accountability only comes from those with skin in the game, who face the consequence of every batch that doesn’t meet claim.

    Usage in Applied Research: From the Factory Floor to the Lab Bench

    The best way to see Triindolyl Alcohol’s identity is by looking at use cases that go beyond theoretical lists. Pharmaceutical chemists, for instance, run standard C-C coupling or reduction reactions more smoothly thanks to its predictable performance. We have collaborated closely with one specialty pharma group targeting enzyme inhibitors, optimizing their route for late-stage functionalization. Their feedback led us to revisit some of our filtration setups and improve yield through cleaner product handling. Their output improved dose reproducibility, which translated into better in vivo profiling—real science, not marketing gloss.

    Organic materials researchers work with our product in OLED materials and functional dyes, where consistent optical performance depends on trace-free synthesis. In pigment work, our Triindolyl Alcohol provides a pure base for creating sharper color boundaries and more stable final dispersions. Electronics development teams who use indolyl compounds for specialized semiconducting polymers describe significant improvements in device reliability using our heavier-cut, tightly fractioned product. They report that off-the-shelf materials—sourced from third-party blending houses—frequently carry baseline coloration or fluorescence variability, which undermines their test runs. After switching to our material, previously confounding device degradation issues resolved, with batch reports and analytical data showing the change wasn’t luck but the trace-free backbone of our Triindolyl product.

    On the academic side, faculty and students experimenting with reaction cascades and late-stage functionalizations often reach out for technical support, asking pointed questions about reactivity and solubility. We don’t copy-paste answers. Each support conversation draws on actual plant experience—what solvents removed discoloration, which crystal habits flagged handling issues, or which cooling protocols secured highest recovery for small batch science. They get firsthand feedback because we stake our plant’s credibility on their results—and we keep listening, because in a crowded market, direct feedback is as necessary as analytical monitoring.

    Our work with process scale chemists—those scaling up for industrial fermentors and reactors—provides a consistent proving ground for handling and storage requirements. Given the tertiary alcohol’s reactivity, storage should minimize light and excessive heat. By carrying out our own storage and distribution, we’ve reduced failed delivery claims, and guarantee that each lot is shipped under conditions proven to retain purity from departure to arrival. That effort came after facing early losses from exposure and degradation, which taught us to manage not just production, but the entire lifecycle of the product we stand behind.

    Potential Issues and Our Response as the Actual Manufacturer

    No chemical leaves our plant immune from risk, and we believe transparency in manufacturing drives the strongest relationship with end users. Several persistent issues trail this category of indole-based intermediates. Oxygen sensitivity in storage—particularly during long-haul or slow-moving inventory—remains a potential fault line. We combed every stage from synthesis to delivery, trialed different gas blanketing strategies, and settled on vacuum sealing and UV-protective packaging as the most reliable deterrent against product degradation. When we launched that initiative, quality claims dropped and customer output rose. Lessons like these underscore the old truth: manufacturing never stands static—you either improve with each complaint, or you lose trust.

    We have also run into cases where researchers working to scale-up from milligram to multi-kilo find unexpected challenges. Reaction times lengthen, isolation purity drops, or unexpected side reactions pop out once a process leaves the lab bench for the pilot plant. This is where our deep experience pays off. With close monitoring, logbook analysis, and frequent bench-to-plant feedback, we tune reagents, solvents, and post-processing steps to help project teams maintain quality at every step. More than once, our in-plant team has worked side by side with customer chemists, sharing real-world troubleshooting to bridge the gap between academic discovery and production deadlines.

    Cost pressures never fully dissipate. Some buyers look for any path to cheaper indole intermediates, hoping for a lucky batch from lower-cost blenders or aggressive traders. Our counterpoint—learned from firsthand experience—remains that “cheap” often costs more, through time lost to failed reactions, impurity removal, or missed deadlines. Transparent pricing grows out of integrated handling, tested process histories, and repeatable results. Customers investing in flagship research or scaled drug synthesis know that the value comes not from lowest sticker price, but from long-term reliability. Trust grows because every conversation with us—plant-side chemists, not sales delegates—roots itself in practical outcomes shaped by awareness only a manufacturer can hold.

    Looking Ahead: Driving Quality Through the Full Manufacturing Chain

    The chemical industry pivots on innovation, but lasting progress ties directly to how well a manufacturer supports its products over time. By primary-sourcing all our Triindolyl Alcohol, we control everything from sourcing to delivery, learning from every order and every hiccup. Partnering with users on method development keeps our process tuned to new requirements, and having technical eyes on both manufacturing and application weeds out faults before they reach the customer.

    Industry regulations and safety standards have tightened every year, forcing manufacturers to raise their game or fade. We continue investing in plant audits, hazard mitigation, and technical training. These moves arose directly from prior mistakes—our own operators learning the hard way how small deviations invite disproportionate risk. Now, as regulations nudge toward tighter environmental and human health safeguards, our proactive approach means we shape the rules rather than chase compliance retroactively. Customers never see the behind-the-scenes learning, but they benefit from every safe, stable, and predictable batch we produce.

    Triindolyl Alcohol remains a core offering, but its real value emerges in the context of our longer commitment. Our hard-won lessons, collaborations, and technical curiosity all feed into making better molecules for the world’s chemists. Whether the goal is a blockbuster pharmaceutical, a new class of electronic material, or a vivid specialty pigment, our belief as direct producers is that support doesn’t stop at the dock. With Triindolyl Alcohol, you benefit from everything we’ve learned—and everything we stand ready to change as real users discover new challenges and opportunities in the lab.