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HS Code |
706640 |
| Chemical Name | 2-Tert-Butyl-1H-Indole |
| Molecular Formula | C12H15N |
| Molecular Weight | 173.25 g/mol |
| Cas Number | 25956-17-6 |
| Appearance | White to off-white solid |
| Melting Point | 97-99°C |
| Density | 1.09 g/cm³ (estimated) |
| Purity | Typically ≥98% |
| Solubility | Slightly soluble in organic solvents (e.g., DMSO, ethanol) |
| Smiles | CC(C)(C)c1cc2ccccc2[nH]1 |
| Inchi | InChI=1S/C12H15N/c1-12(2,3)10-7-8-13-11-6-4-5-9(10)11/h4-8,13H,1-3H3 |
As an accredited 2-Tert-Butyl-1H-Indole factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle, tightly sealed, labeled with chemical name and hazard warnings, containing 25 grams of 2-Tert-Butyl-1H-Indole. |
| Shipping | 2-Tert-Butyl-1H-Indole is typically shipped in tightly sealed, chemical-resistant containers to prevent contamination or moisture absorption. It should be carefully packaged in compliance with local and international regulations, and transported under ambient conditions unless specified otherwise. Appropriate hazard labeling and documentation are included to ensure safe handling during transit and upon receipt. |
| Storage | 2-Tert-Butyl-1H-Indole 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 when not in use. Store it in an approved chemical storage cabinet, preferably under an inert atmosphere or desiccator, and protect it from light and moisture to maintain stability. |
Applications of 2-Tert-Butyl-1H-Indole in Industrial Manufacturing2-Tert-Butyl-1H-Indole serves as a critical intermediate for specialty chemicals and high-purity compounds across several industrial sectors. Our direct manufacturing ensures consistent supply and traceability from synthesis to customer application. 1. Pharmaceutical Intermediate for API SynthesisThis indole derivative plays an important role as a building block in targeted small-molecule pharmaceutical synthesis, especially in oncology and CNS drug programs. Downstream manufacturers use it for constructing specialized scaffolds in multi-step reactions. Our QC system allows precise control of impurity profiles to meet demanding regulatory requirements in the synthesis of active pharmaceutical ingredients. Industry compliance standards
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2. Specialty Agrochemical IntermediateDownstream agrochemical producers utilize 2-Tert-Butyl-1H-Indole as a core component for functionalizing novel pesticide and herbicide molecules, including indole-based plant protection agents. As a manufacturer, we ensure consistent supply chain traceability and support custom impurity specifications for field registration. Industry compliance standards
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3. High-Performance Dye and Pigment ManufactureColorants producers employ this material as a precursor in the design of high-performance dyes and pigments, especially for advanced textile coloration and specialty plastics applications. Stringent in-process QC controls guarantee batch-to-batch reproducibility in downstream formulation. Industry compliance standards
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4. Electronic Material Intermediate for Organic SemiconductorsProducers of OLEDs and organic electronic components consider this indole derivative a valuable intermediate for constructing high-mobility conjugated molecules and functional polymers. Our manufacturing provides high-purity grades, with trace element testing to meet electronics industry standards. Industry compliance standards
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5. Fine Fragrance and Aroma Chemical IntermediateSelective fragrance ingredient manufacturers use this specialty indole to introduce a unique floral and animalic note in high-value fine fragrance bases, leveraging its reactivity for further alkylation and esterification. Rigorous traceability documentation and allergen control are maintained throughout the process chain. Industry compliance standards
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6. Research and Analytical Reference MaterialAcademic and industrial R&D laboratories purchase this material as a reference compound and building block for developing libraries of indole derivatives. As a direct manufacturer, we guarantee full batch documentation and analytical characterization, including HPLC, GC-MS, and elemental analysis. Industry compliance standards
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Every batch of 2-tert-butyl-1H-indole coming off our production lines reflects years of hands-on synthesis, repeated quality trials, and plenty of shop talk on how to finetune yield and purity. This compound, a substituted indole, stands out in lab development circles. Our operators know the quirks of each reaction—how small shifts in temperature or solvent choice nudge the outcome. Chemists and process engineers compare notes every week, always pushing for higher selectivity, fewer byproducts, and a cleaner workup. None of this gets solved by copying a supplier’s catalog; it takes evolving the recipe, adapting to fresh starting materials, and troubleshooting new equipment as standards move forward.
2-tert-butyl-1H-indole, CAS 31318-85-1, doesn’t come to life just by ticking off a spec sheet. Here, the indole core forms the backbone of a wide set of final products—pharmaceutical intermediates, agrochemical candidates, or dyes. Try finding a synthetic research bench that doesn’t call for indole chemistry at some point in the route. The tert-butyl group at the 2-position gives it unique reactivity compared with the straight 1H-indole or other substituents like methyl or isopropyl. Our process engineers chase that reactivity for good reason: the steric protection blocks nucleophilic attack at the 2-position, opening selective downstream reactions elsewhere on the molecule.
People in the trade sometimes confuse a direct chemical manufacturer with a trader. True manufacturing has its own habits and challenges. We buy raw materials in bulk, keep an eye on price swings for tert-butyl chloride, anilines, or indole starting compounds. Real chemical manufacturing means we own the reactors, train teams on process safety, and invest in waste treatment for every campaign. The work stretches across setting process limits, handling batch-to-batch recordkeeping, and keeping scrupulous documentation for audits.
We take pride in how we run pilot production for 2-tert-butyl-1H-indole before scaling up. The team cleans reactors between switches, troubleshoots filtration, and studies the distillation curves. Every process tweak matters—cost, yield, and purity rise or fall by the choices we make in the plant. Quality assurance walks through with gas chromatography and NMR checks, spotting any drift in the route. Compared to trading or repackaging, chemical production asks for accountability at every checkpoint, both for us and our customers.
In form, 2-tert-butyl-1H-indole typically appears as a pale yellow crystalline solid, sometimes with an off-white tint in the presence of minor impurities. You can tell a lot from a scoop of the raw compound—clumping means too much residual solvent, while a too-fine powder can make filtration a headache. We run melting point determinations for each lot, cross-checking against references to confirm identity and purity before any product ships.
Chemists downstream rely on this predictability. In practice, mixtures that are off-color or oily hint at poor process control somewhere up the line—for us, that goes back to real-time sampling and tightening every process parameter. Only a hands-on producer understands how even a brief equipment breakdown can throw off crystal formation, solvent ratios, or even product odor.
Our team knows from experience that 2-tert-butyl-1H-indole stands apart from its close cousins. Talking about differences isn’t just hairsplitting. Chemists order 2-methyl-1H-indole or 2-isopropyl-1H-indole for similar building-block uses, but the tert-butyl group brings a bulkier effect, offering greater resistance to oxidation and side reactions during key steps. Unlike some indole analogs, the tert-butyl group presses space around the 2-position, so it shapes reactivity and selectivity down the synthetic pathway.
This is more than a textbook difference—in the reactor, this variation saves time and cuts cleanup. With other groups, unwanted reactions at the 2-position demand extra purification and lower overall yields. For manufacturers like us, less side-product means less solvent, faster washing, and reduced waste. We hear from customers that the right choice of indole derivative can make or break a scale-up, which dovetails with what we see running our own pilot lines.
The use of 2-tert-butyl-1H-indole shows up wherever practitioners search for functional materials, bioactive compounds, or new pigments. In pharmaceuticals, its protected 2-position helps chemists build molecules stepwise; it sits in many patent filings as a core motif or masked intermediate. Our customers in custom synthesis pass on their own stories: using the tert-butyl block to safeguard from overreaction, engineering more selective insertions at other sites, or just minimizing byproducts that drag down yields.
In agrochemical research, the value of this indole lies in its flexibility—chemists can swap in new groups at the nitrogen or other indole positions, giving rise to herbicide or fungicide leads. During method development, we talk with researchers who value starting material consistency batch-to-batch, as changes in side reactions hit their purification at the end.
Some customers head into dye chemistry, chasing chromophores where the indole ring tunes color properties. Here, tert-butyl gives stability under UV or storage, setting it apart from more reactive derivatives that sometimes degrade or oxidize. Discussing applications, the feedback always points to the practical advantage: each chemical transformation works better with fewer surprises when the input material acts predictably, every time.
One challenge in making 2-tert-butyl-1H-indole comes from the byproducts, particularly the possible formation of isomers or overalkylated side-products. Our senior chemists remember early campaigns where too much heat, or an off-spec solvent batch, led to double-alkylation or residual starting material showing up in the final drum. Small changes turn into big headaches—fouled glassware or hours lost to column purification. Over the years, dialing in the reaction timing, controlling reagent addition rates, and constant monitoring have pushed our typical purity levels above those found in “off-the-shelf” sources.
Every kilo leaving our facility has a clear history—synthesis logs, analytical runs, and user feedback from years of partnerships. Trouble with off-colors, unfamiliar odors, or even minor solvent residue doesn’t slip through the cracks because we learn from every issue. Customers know which runs came off which reactor, traceable by batch numbers right back to the steel tanks in our plant. In our view, this direct tie between product, process, and user marks the difference between true manufacturer and third-party trade.
Large-scale chemical production means talking straight about waste management and personal safety. We’ve built up protocols from tough lessons—organic bases like those used in indole syntheses can run hot, and solvents like toluene or DMF carry hazards that need respect. Experienced crews monitor venting, maintain backup containment, and run regular compliance checks. Plant managers design each synthesis route with the downstream impact on emissions, water use, and chemical waste in mind.
On the environmental side, each campaign generates both experience and spent solvents. Recovery teams collect these for reprocessing, and ongoing work with local partners lets us minimize waste at source. By investing in treatment facilities and closed-loop solvent recovery, we cut risk while keeping operations sustainable over the long haul.
There’s always a better route or more efficient clean-up waiting to be discovered. Teams take real input from every plant run. Pump failures, heat exchanger fouls, or small tweaks in catalyst addition all feed into process improvements. For 2-tert-butyl-1H-indole, this means regular cross-team meetings after production campaigns. Operators bring up snags that slowed drying, chemists propose new purification tricks, engineers assess whether new equipment allows tighter control, and everyone revisits the yield data against last month’s numbers.
This culture of thorough, open feedback means recipes get rewritten, new standard operating procedures drafted, and everyone learns. One operator reported faster filtration with a slow temperature ramp; another flagged a subtle impurity profile in a small pilot that led to better temperature control in the main batch. These details, passed along over years, lead to a more robust process and consistent material.
We hear from technical teams in customer labs. Sometimes a research chemist can’t reproduce a literature result because their indole derivative came from a batch with hidden impurities or unexpected moisture. In those moments, having direct line-of-sight to the actual producer matters—you get troubleshooting from someone who has seen dozens of campaigns, rather than a distant warehouse clerk with no context. We support R&D teams by sharing test conditions and offering advice on purification, stability, or solubility. If a process issue arises, we can look back through our logs and suggest adjustments or alternative routes.
Custom synthesis and scale-ups rely on confidence at each step. For 2-tert-butyl-1H-indole, small differences in reagent age or blender speed can throw off a whole run. By dealing with the source, customers gain from the experience stored in every production notebook—not just a bag in a box, but a set of solutions shaped by practical knowledge.
In a competitive market, companies sometimes race to the bottom on price, sacrificing oversight or quality. By keeping our attention on the full product life—from raw input through finished compound, delivered straight from our facility—we hold onto a different reputation. We keep production under one roof. This takes more direct responsibility, but control pays off in consistent feedback and product reliability.
We build longer partnerships when performance and specification hold true across orders, and we’ve seen customers who switched from repackaged lots or unknown sources because issues arose with scale-up, yield, or stability. Our plant tours and real-time data sharing underscore the value in maintaining direct relationships, and customers trust that our batches neither become unrecognizable over time nor change without notice. Each drum shipped links back to a team who understands what went into it below the surface, not just what gets printed on the label.
International chemical supply chains sometimes fray under regulatory changes, pandemic disruptions, or raw material shortages. As direct manufacturers, we respond by holding inventory for core intermediates, qualifying multiple suppliers, and running redundancy in our critical process steps. 2-tert-butyl-1H-indole has run through years where one key starting material dried up. We responded by reviewing alternative synthetic routes, checking compatibility with existing equipment, and managing through with safety stock and scheduling adjustments.
We also keep close watch on compliance updates across borders. Our team tracks regulatory changes for handling indole derivatives in major markets, adjusting documentation and safety practices when the goalposts move. We invest in better worker training, update process controls, and document every step so both our auditors and customers can see how quality and safety come together in the plant.
The future of 2-tert-butyl-1H-indole chemistry will bring fresh opportunities and hurdles. As end-users search out greener chemistry, our R&D teams review alternative catalysts and safer solvents with lower environmental footprints. The push to lower energy use and water input in our synthesis has started changes in both raw material choices and downstream purification. Chemists in our plants experiment with new crystallization aids, improved waste separation, and closed-loop heating and cooling setups.
Feedback from the ground always steers the company. While technical journals or regulatory frameworks shift the landscape, day-to-day practice on the factory floor often points the way forward first. By learning from each run—whether it’s scrap, yield losses, or a record-setting batch—our staff grows expertise that no specification sheet alone can offer.
To outsiders, 2-tert-butyl-1H-indole may appear as another step in synthetic chemistry or a simple commodity. Inside the plant, it becomes a benchmark for process discipline, creative troubleshooting, and industrial know-how. Producing a consistent, high-purity batch is a mark of a team’s skills, and every improvement, from reactor design to batch tracking, helps chemical users achieve their own results in medicine, agriculture, or industry.
Years of feedback, hands-on production, and troubleshooting plant floor problems have shaped our approach. The team’s experience flows into every drum and bottle. We see each lot as more than a simple product. Every batch has a story—process trials, operator insight, customer feedback, and a vision for making the next run even better.