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HS Code |
189529 |
| Chemical Formula | C10H16ClNO |
| Molecular Weight | 201.7 g/mol |
| Appearance | White to off-white solid |
| Purity | Typically ≥98% |
| Solubility | Soluble in water, slightly soluble in ethanol |
| Melting Point | Approximately 190-195°C (decomposes) |
| Cas Number | 50870-24-5 |
| Storage Conditions | Store in a cool, dry place, tightly closed |
| Synonyms | 6-Amino-2-isopropyl-5-methylphenol hydrochloride |
As an accredited 6-Aminothymol Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 6-Aminothymol Hydrochloride, 25g: Supplied in a sealed amber glass bottle with a tamper-evident cap and clear labeling. |
| Shipping | 6-Aminothymol Hydrochloride is shipped in tightly sealed, chemically resistant containers to prevent contamination and moisture exposure. Packaging complies with safety regulations for chemical transport. It is labeled according to hazard requirements, with appropriate documentation provided. During transit, it is usually kept in a cool, dry environment and handled by authorized personnel. |
| Storage | 6-Aminothymol Hydrochloride should be stored in a tightly sealed container at room temperature, away from moisture, heat, and direct sunlight. Keep in a cool, dry, and well-ventilated area, separate from incompatible substances, such as strong oxidizers. Ensure the container is clearly labeled and avoid exposure to air and humidity to prevent degradation or clumping of the chemical. |
Applications of 6-Aminothymol Hydrochloride in Industrial Manufacturing6-Aminothymol Hydrochloride serves as a specialized chemical intermediate across select pharmaceutical and specialty chemical manufacturing scenarios. Its use extends to active pharmaceutical ingredient (API) synthesis, diagnostic reagent development, and niche areas of colorant and fine chemical production. We supply this material directly to formulation plants and production facilities, supporting precise process needs and compliance with regulated quality standards. 1. Pharmaceutical Intermediate for Anti-Infective API SynthesisDownstream API manufacturers incorporate 6-Aminothymol Hydrochloride as a core building block in the synthesis of certain anti-infective agent classes, including specific sulfonamide and related heterocyclic compounds. The compound enters the nucleophilic aromatic substitution stage, enabling site-selective introduction of amino groups within the final API scaffold. The usage concentration depends on the target API synthetic route, and tight process controls monitor impurity fate throughout the conversion. Final APIs undergo rigorous quality release according to pharmacopeial specifications. Industry compliance standards
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2. Diagnostic Reagent Manufacture for Quantitative Analytical KitsSpecialty chemical plants utilize 6-Aminothymol Hydrochloride in the preparation of analytical reagents, particularly in the synthesis of colorimetric indicators and enzyme substrates for diagnostic kits. Its defined reactivity and high purity enable reproducible color development in test strips and plate-based assays. QC teams implement incoming lot qualification to guarantee chromophore yield and batch-to-batch consistency, supporting downstream clinical laboratory applications. Industry compliance standards
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3. Synthesis of Specialty Dye Precursors for Textile and Printing InksColorant manufacturers integrate 6-Aminothymol Hydrochloride as a key amine source in the development of azo dye intermediates and specialty colorant molecules. The aromatic amine structure allows fine-tuning of hue and lightfastness properties for niche high-washfast textile dyeing and water-based inkjet printing applications. Formulation chemists determine precise ratios based on desired color depth, migration resistance, and processability across customers' production lines. Industry compliance standards
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4. Fine Chemicals for Photostabilizer and UV Absorber ProductionProducers of UV absorbers and photostabilizers for plastics and coatings sectors employ 6-Aminothymol Hydrochloride as a functional intermediate in light-absorbing molecular scaffold synthesis. The compound provides controlled introduction of amino groups necessary for forming chromophoric systems that absorb and dissipate UV energy, extending polymer service life in outdoor applications. Exact process ratios depend on product grade requirements and performance certification for end-use industries. Industry compliance standards
Typical usage ratio
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Our team began developing 6-Aminothymol Hydrochloride to address a straightforward problem—most available aminothymol compounds on the market fell short in purity or batch-to-batch reliability. In pharmaceuticals, research, and fine synthesis, unpredictability in even minor impurities leads to unreliable results and costly setbacks. Instead of chasing after elusive “one size fits all” grades, we focus on one thing: a product that meets strict technical standards every time. Each lot leaves our main plant after rigorous in-house testing that covers melting point, trace metals, and moisture.
Chemists often spend hours troubleshooting mystery peaks during HPLC or GC analysis, only to discover later that the culprit was inconsistent or contaminated starting material. We have been there in our own labs, running the same TLC plate or column twice and getting different results. That frustration shaped how we approach every batch. We chose equipment and workflows that cut down both particulate and cross-contamination risk. Our team members document every batch parameter—temperature, pressure, solvent residue—so users don’t face surprises later.
The key properties of 6-Aminothymol Hydrochloride matter whether you handle milligram or kilogram quantities. Based on real practitioner input, we offer both research and technical grade, with most orders fulfilled at 98% minimum purity (by HPLC). We verify melting range, manage inorganic impurity load below industry-accepted thresholds, and confirm identity using both FTIR and NMR. Consistency between batches is not a marketing point, but a daily expectation.
When specifying water content, we keep the window narrow. Our drying protocol prevents hygroscopicity and agglomeration—common headaches chemists face with lower-cost imports—so the powder remains free-flowing up to its stated shelf life. We share each lot’s loss on drying and chloride assay data on request, because in the lab, this data means more than a generic COA.
Good chemistry starts with good starting material. Years ago, our partners in peptide research described how low-grade starting reagents threw off yields, introduced contaminant peaks, and ultimately forced repeated purification. Every unnecessary chromatographic run chews up time, solvents, and money. Over dozens and often hundreds of syntheses, small purity differences pile up. Using material that meets consistent specifications the first time frees up both staff and equipment for the next project instead of troubleshooting ongoing quality failures.
In dye chemistry, 6-Aminothymol Hydrochloride provides a platform for coupling reactions thanks to its amine group and structural stability. A stable amine hydrochloride salt resists degradation better during storage, making it suitable for both bench work and scale-up. With trusted composition, our customers have reported smoother upscaling in both batch and flow reactions, as they don’t have to recalibrate starting concentrations to adjust for unpredictable impurities.
The chemical landscape is littered with amine-containing heterocycles. What puts 6-Aminothymol Hydrochloride in a distinct class is the methyl substitution at the 5-position, coupled with a thymol backbone. Compared to 4-aminophenol hydrochloride or simple aminophenols, the extra methyl group not only adjusts electron density but also impacts solubility and reaction selectivity. In typical azo coupling or diazotization, the shifting of functional groups changes yield and intermediate stability. From our own side-by-side tests, substitutions can increase or decrease product formation time based on reactivity with acid chlorides, aldehydes, or activated acyl donors.
On a practical level, generic aminothymol grades often contain higher inorganic chloride or sulfate. These impurities create downstream compatibility problems in sensitive paths like API synthesis or analytical reference work. Products marketed by aggregators or repackagers often lose lot-specific traceability. When an unreliable drum appears halfway through a multi-step synthesis, the losses mount quickly. We keep a single-source chain between our raw material intake and your final container, so troubleshooting never turns into months of supplier back-and-forth.
Decades in synthetic chemistry have taught us that the less time spent chasing down invisible process errors, the more time goes into solving actual scientific problems. Our long-term collaborators in drug development and technical dye manufacturing expect fast answers if something looks wrong on their side. Spotting an unknown impurity at the analysis stage no longer requires requesting a dozen COAs or wrangling with overseas brokers. With our process, every batch can be traced back to precise supplier and date, and process notes are archived for opening access—practices we wish we had in our own problem-solving days.
Years spent in university and private R&D demonstrated how capricious supply chains upend entire months of careful planning. Reagents arrive and fail to meet stated specs. Hasty substitutes mean process changes, reordered tests, and a rush of new quality documentation. That “oh no” moment in the lab—opening a bag and finding material that clumps, smells off, or gives a cloudy solution—drove us to keep batch samples under tight climate control. We regularly test stored lots to be certain nothing happens between dispatch and delivery. Our warehouse team maintains full sample retention for every lot sent out to customers, allowing rapid cross-checking for any future performance questions. In our own early years as chemists, this level of traceability wasn’t an option, but we believe all labs deserve these standards today.
Our 6-Aminothymol Hydrochloride often finds use in pharmaceutical method development, academic research on heterocyclic scaffolds, and as a building block in fine chemical intermediates. Researchers told us about their focus on reactivity and downstream modifications—each synthesis step depends critically on the quality of raw materials. In azo dye research, the nuanced difference in electronic properties of our aminothymol hydrochloride shows up in observable shifts in wavelength absorption and color stability. We worked with teams optimizing diagnostic reagents using the compound’s unique solubility and salt stability. Small changes in the starting amine’s activity influence spectral response, reactivity, and finished product shelf life.
Process engineers testing scale-up reactions highlighted clear advantages from reduced number of purification steps and improved filterability. Reduced baseline impurity means less silica, less solvent, and fewer hours lost to post-reaction cleanups. On our side, we keep in close feedback loops with larger industrial partners, running comparative pilot lots to ensure the specifications we maintain actually make a tangible difference on complex reaction lines. One surprising outcome was the robust salt stability across warehouse temperature and humidity extremes, a property absent in more generic amine salts that rapidly clump or hydrolyze under mild stress.
We’ve learned from our own experiences and the setbacks of older manufacturing practices that transparency means more than just an up-to-date certificate. Real reliability demands batch records, chromatograms, NMR data, and trace impurity analysis. This is more than regulatory box-ticking; for customers running costly multi-step intermediates, every fraction of a percent of unknowns scales into lost product. On request, every shipment comes with full analytical datasets—NMR spectra from both proton and carbon channels, elemental analysis, and HPLC purity traces. We offer guided review calls with our laboratory managers for users with highly specialized data needs. This direct line stems from our own days navigating unclear documentation, understanding how one missing spectra can ruin weeks of synthetic work.
We train our production operators on the unique challenges of amine hydrochloride chemistry. Unlike with bulk commodity organics, trace water, airborne amines, and glassware residues leave lasting fingerprints. After repeated failures early on, we installed continuous environmental controls in our packaging suites, maintaining tight windows on both temperature and humidity. Our team measures and logs each critical environmental variable before, during, and after packing, leaving no grey areas for quality doubts. Our on-site analytical chemists frequently share process learnings at internal reviews, alerting supervisors to trends that could impact future batches.
Purchasing agents frequently struggle to differentiate between similar amine salts and thymol derivatives. On the surface, catalogs list near-identical names, but the real proof comes in live performance. Compounds like 2-aminophenol hydrochloride or N-methyl analogs differ by only a methyl group or backbone position, yet those changes shift reaction rates, yields, and solubility. We have generated systematic comparative data on these molecules, sharpening our production targets based on real reaction feedback in acid-catalyzed, oxidative, and condensation synthetic systems.
Generic “multi-use” aminothymol hydrochloride typically shows greater batch variability—both visually and by quantifiable analytical properties. During our raw material audits, lots from secondary sources commonly fail on color, contain higher iron or copper by ppm, and exhibit poor shelf stability. Our approach isolates individual batches and reduces atmospheric variables common in warehouse-style operators. As a result, users report fewer repeat syntheses, tighter spectra, higher recovery during downstream reactions, and lower waste streams.
Safe production and shipment of amine salts requires more than locked cabinets and warning labels. We’ve dealt with cases where unlabeled contamination traced back to poor airflow, oxidized surfaces, or accidental commingling during handling. Our teams maintain regular glovebox and workbench cleaning routines, logging all spills and equipment swaps. Building on our own lessons from early missteps, we fixed air monitoring at sensitive prep and packaging lines, ensuring both workplace safety and batch stability through real-time detection systems.
We believe environmental responsibility goes side by side with top-quality production. We source precursor materials from vetted partners with strong environmental compliance records. In the past, we occasionally faced inconsistent supply chains; now, we maintain diversified sourcing and have implemented regular audits of our upstream suppliers to guarantee traceability and minimize ecological footprint. Solvents used in our 6-Aminothymol Hydrochloride production run through closed-loop recovery, further reducing emissions and downstream waste.
Many users told us of unreliable suppliers who simply repackage and ship out imported material without relevant hazardous substance training, often overlooking exposure risks to their own staff and logistics partners. Our own family members and friends work our lines—we made it a point that safety protocols, PPE, and exposure controls meet the strictest regional standards. We audit and refine procedures every year, not just for the insurance forms but because safety failures impact people we see every day.
What we see as the backbone of our success isn’t endless scale or market coverage, but the disciplined improvement of small details. We review each process run internally, seeking ways to lower batch-to-batch spread, cut cycle times, and improve user experience in both benchtop and full-scale applications. Our chemists regularly collaborate with application-focused customers—sharing tips, troubleshooting strategies, and best practices to maximize their own process success. Many academic partners engage our analytical group for pre-publication results confirmation, ensuring experimental data cleans up before peer review. Practitioners value not just a reliable product but an equally responsive support team—something we wished we had as end-users early in our own careers.
Every batch of 6-Aminothymol Hydrochloride is a product of lived experience—learning from frustrations in QA/QC, investing in instrumentation over short-term margin, and collaborating openly with downstream users. This compound reflects our commitment to turning precision chemistry into real-world reliability. Our daily goal is simple: chemists and engineers using our material can spend less time trouble-shooting and more time building what’s next. We know the costs of uncertainty and delays first-hand, which is why we never ship a batch without being willing to use it ourselves.