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HS Code |
252741 |
| Iupac Name | 2-Methyl-1-phenyl-2-propanol |
| Molecular Formula | C10H14O |
| Molar Mass | 150.22 g/mol |
| Cas Number | 617-94-7 |
| Appearance | White to off-white crystalline solid |
| Boiling Point | 245-247 °C |
| Melting Point | 53-55 °C |
| Density | 1.01 g/cm³ |
| Solubility In Water | Slightly soluble |
| Smiles | CC(C)(CO)C1=CC=CC=C1 |
| Pubchem Cid | 12021 |
| Refractive Index | 1.526 (at 20 °C) |
| Flash Point | 109 °C |
| Synonyms | alpha,alpha-Dimethylbenzyl alcohol |
As an accredited 2-Methyl-1-Phenyl-2-Propanol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250g of 2-Methyl-1-Phenyl-2-Propanol in an amber glass bottle with a secure screw cap, labeled with hazard warnings. |
| Shipping | 2-Methyl-1-Phenyl-2-Propanol is typically shipped in tightly sealed containers, protected from light, moisture, and incompatible substances. It is transported according to local regulations for organic chemicals. Proper labeling, use of secondary containment, and documentation are required to ensure safe delivery and to prevent spills, leaks, or accidental exposure during transit. |
| Storage | 2-Methyl-1-Phenyl-2-Propanol should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from sources of heat, sparks, or open flames. Protect from direct sunlight and incompatible materials such as strong oxidizing agents and acids. Ensure proper labeling and keep away from food and beverages. Use proper chemical storage protocols and personal protective equipment when handling. |
Applications of 2-Methyl-1-Phenyl-2-Propanol in Industrial Manufacturing2-Methyl-1-Phenyl-2-Propanol is an aromatic tertiary alcohol with proven value in niche chemical industries. Our expertise as a direct manufacturer supports consistent supply and reliable process integration for demanding industrial clients worldwide. 1. Fragrance Ingredient Synthesis for Fine PerfumeriesOur material functions as an important structural intermediate in the custom synthesis of aromatic esters and acetates used by leading fragrance houses. Chemists utilize its tertiary alcohol group to introduce steric effects and modulate volatility and tenacity in perfume bases, particularly within woody and balsamic accords. Compatibility with downstream aldehydic fixation chemistries allows controlled reactivity during coupling reactions. Regulatory compliance with allergen labeling is critical for usage in retail fine fragrances. Industry compliance standards
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2. Intermediate for Antihistamine Pharmaceutical SynthesisThis intermediate finds industrial use during the multi-step synthesis of select sedative antihistamine APIs, including derivatives where the phenylpropanol moiety enhances pharmacological properties. We supply material to pharmaceutical plants that incorporate it via controlled Grignard or Friedel-Crafts alkylation to form benzhydrol analogues. Compliance with established pharmacopoeia specifications is mandatory at this stage to ensure approval for API synthesis. Industry compliance standards
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3. Additive in High-performance Polymer PlasticizersOur manufacturing clients in the polymers sector incorporate this compound as a modifier for engineering plasticizers, especially where aromaticity and branching are desirable for softening and flexibility. The alcohol group participates in esterification with phthalic anhydride or related acids to yield non-phthalate plasticizer esters with improved migration resistance. Custom usage depends on resin compatibility and regional regulations for consumer and automotive use. Industry compliance standards
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4. Solubilizer and Modifier in Agrochemical FormulationsProducers involved in crop protection products utilize our material as a co-solubilizer and adjuvant in concentrated EC (emulsifiable concentrate) and SC (suspension concentrate) pesticide formulations. Its aromatic alcohol structure aides in the emulsification of active ingredients and enhances dispersion stability, particularly for difficult-to-dissolve technical-grade actives. Processing requires strict QC to avoid residual contaminants affecting regulatory approvals for agricultural use. Industry compliance standards
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5. Performance Additive for UV-curable CoatingsThis tertiary alcohol finds use as a reactive diluent and performance enhancer in UV-cured coating manufacturing. Industrial formulators exploit its aromatic backbone for improved surface hardness and chemical resistance, as well as its role in reducing VOCs when compared with lighter aliphatic alcohols. End-use coatings benefit from controlled viscosity and reactivity, especially in protective finishes for electronics and automotive plastics. Industry compliance standards
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Working with specialty alcohols year after year, a manufacturer develops insights that move beyond the generic. 2-Methyl-1-Phenyl-2-Propanol, which some customers know by trade abbreviations or alternative chemical names, commands respect in our operation for its precise synthesis requirements and longstanding value in several industries. Engineers and chemists in-house see firsthand where the rigor of controlled production delivers a product beyond commodity-grade alcohols.
Our team supplies this compound by batch-CAS registration and tracks every stage from raw aromatic input to fractional distillation. Where exacting applications dictate no tolerance for off-spec side products, this molecule consistently delivers, and we know why. In each reaction vessel, stringent parameters shape the outcome: moderate pressure, purified benzene-free feedstocks, and no shortcuts. Distillation columns run for hours, not minutes, ensuring removal of lower-boiling impurities and stabilizing the final purity. NMR, GC-MS, and Karl Fischer titration confirm our endpoints without guessing. Over time, process optimizations let us supply high-purity material at scale, keeping batch differences negligible.
From our experience, actual user requirements for 2-Methyl-1-Phenyl-2-Propanol often focus less on broad specs and more on what the numbers mean in the field. Purity above 99% seems like an obvious box to tick, but we see that unmeasured impurities, even under 0.5%, can derail a crucial reaction step or introduce unwanted color or odor. Optical clarity and water content make a difference, especially in pharmaceutical syntheses or active ingredient blending. We invest in analytical runs and drying steps to keep water content in the parts-per-million range, not simply because the numbers look good, but because our customers tell us exactly where higher water or side aromatics have caused “ghost” peaks on their QC traces.
Our standard model arrives as a clear, colorless liquid—this outcome comes only with clean pumping, glass-lined reactors, and a tightly observed loading protocol. GC traces look bare, a detail that matters in high-precision work such as chiral synthesis or fragrance intermediate preparation. It’s one thing to offer a 200 kg drum, another to guarantee every drum shows batch consistency and lab data to match.
End users span from large-scale pharmaceutical producers to small-batch specialty chemical formulators. Each group approaches this molecule a little differently, though similar demands echo across industries. Many run alkylation or condensation reactions where this alcohol acts not as the star reagent, but as an irreplaceable partner in making active or chiral intermediates. Some processes count on its secondary alcohol group and bulky methyl and phenyl rings to supply selectivity where lighter alcohols would react the wrong way or introduce instability.
We’ve watched formulators in the fragrance trade tap into its mild, pleasant scent as a fixative for delicate blends. Others incorporate it into fine chemicals, plasticizers, or specialty coatings, closely watching both volatility and residue. Laboratory scale-up clients commonly mix it with reactants to exploit its polarity and hydrogen bonding profile, pulling reactions toward cleaner final products or sharper physical properties. In a handful of cases, biological labs select 2-Methyl-1-Phenyl-2-Propanol for its lack of reactivity with harsh enzymes or proteins, requesting bottles as small as 500 mL to meet their scale.
Through feedback loops, we’ve changed our own QC practice: tighter control of peroxide content and the use of inert atmosphere packaging, both lessons taken from a handful of real-world mishaps. We see that quality is not simply purity, but how robustly the product works in downstream chemistry—clarity, flow properties, and time-to-degrade all affect yield and performance long after our drums leave the facility.
Having produced a range of secondary and tertiary aromatic alcohols, we see clearly where 2-Methyl-1-Phenyl-2-Propanol separates from the pack. Isopropanol and benzyl alcohol, though familiar to most, can’t match the bulk and resonance effects of this compound. In catalytic reductions and protection steps, the extra methyl-group on the secondary carbon tightens selectivity and helps avoid over-reduction or unwanted rearrangements. Many customers run comparison tests—results keep swinging back toward our product where precise, predictable behavior matters.
For those considering bulkier or more substituted alcohols, price and performance swing the calculus. 2-Methyl-1-Phenyl-2-Propanol offers a mix of manageable volatility and solubility; you gain more than with propanol on volatility, but see better stability and fewer by-products than heavier aromatic alcohols. There’s also less handling concern compared to some close relatives—solid or waxy aromatic alcohols create headaches in tank pumping and in cleaning out process lines. Ours pours brisk, requires no special heating, and resists crystallization even in cooler storage.
We've developed multiple process trials where 2-Methyl-1-Phenyl-2-Propanol narrowly averted a problem caused by using a more basic alcohol. In one factory, a client reported that swapping out their former alcohol caused unwanted yellowing in their finished goods. Trackback identified trace oxidation products. Our analytical team replicated those conditions and confirmed what our customer saw—then refined our own stabilization process to minimize that type of oxidation even in rigorous storage heat and humidity.
Real-world manufacturing rarely runs on theory alone. Some customers report minor batch-to-batch variability with similar compounds purchased from other suppliers. This disrupts product flow, especially for automated filling or blending lines, or, worse yet, product recall because of odor or viscosity drift. Our plant maintains a continuous feedback loop between process engineers and the in-house QC team, which helps us catch subtle problems before a single liter leaves the gate.
Early on, customers flagged issues around long supply chains: interim handlers sometimes repackaged the alcohol in sub-standard containers, leading to contamination and off-odors. We consulted on storage upkeep and upgraded our drum liner stock to a higher grade, learning that the right container can matter just as much as production chemistry. We've also shifted storage protocol so that no pallet sits exposed to direct sunlight or drastic shifts in temperature. Shipments leave with full traceability back through the chain of custody.
Another point that often surfaces deals with regulatory paperwork and compliance. Our long-term team stays fluent with REACH and local frameworks, streamlining the audits that pharmaceutical, food additive, and fragrance clients face. Documentation isn't just a box for us; each file reflects a line in the process backed by batch-tested evidence, all compiled by professionals who handled the production and analysis firsthand.
Environmental regulations sometimes tighten or shift unexpectedly, especially for aromatic compounds. Our company tracks solvent emissions and waste profiles closely to avoid regulatory slip-ups. We've developed in-house solvent recovery and neutralization steps, which mean our manufacturing footprint remains lower than industry averages. Customers appreciate this forward-thinking stance, and it builds relationships that last through years of mutual audit.
Over the years, our experience shows end users are growing less forgiving about variation and “good enough” product. Demand swings push order sizes higher, sometimes with tighter lead times, especially where seasonal or cyclical production matters. We’ve invested in production scheduling and capacity buffers, so even urgent runs of 2-Methyl-1-Phenyl-2-Propanol get full QC without slip-ups or shipment delays, no matter how the calendar shifts.
Clients in biopharma and advanced materials development keep bringing higher standards back to us. They ask for lower metal content, support for process validation, and extended retention samples. This push drives our own standards forward—we keep a library of historical batch samples under controlled storage, allowing long-term trend analysis and failure investigation if a downstream problem crops up years later. For fragrance and flavor houses, subtle differences in odor or purity can overpower finished blends, so we keep a sensory panel involved alongside the GC and HPLC screens.
Every batch run in our plant tracks its own fingerprint. No two reactor loads behave quite the same, but years of tuning equipment and protocols help us constrain deviation to minuscule levels. Hands-on intervention from experienced plant chemists still matters; automated systems catch regular issues, but a seasoned operator spots a drum shading too yellow, or a slight haze during decanting, faster than a sensor can log a value.
Inside our facility, 2-Methyl-1-Phenyl-2-Propanol behaves with a predictability that comes from familiarity. Still, the teams wear full protective gear and handle it with diligence. Spills remain rare, thanks to contained transfer systems and drum quick-connects, but we always keep neutralizing absorbent and rapid cleanup at hand. Operators know to keep the product away from open ignition sources, and ventilation eliminates fume buildup even during large transfers. All plant staff receive annual retraining, with new hires shadowing veterans to learn both procedures and the reasons behind them.
We store the finished product in temperature- and humidity-controlled warehouses. Drums leave clearly labeled, and nothing hits a truck without fresh batch tests. Feedback from logistic crews guides tweaks to labeling or packaging—if a corner case arises on a delivery, we dig into it and make the needed improvements. In the rare event of a returned drum—often due to clerical error rather than product issue—we inspect, re-test, and log everything, using it as training material for the next production cycle.
Customer experience loops push us forward. Beyond certifications and regular audits, we update our procedures and equipment when real problems surface. Filters get swapped or cleaned more often, and feedstocks are re-verified before each run to eliminate batch contamination risks. While many parts of the process involve automation, our techs stay on the ground, finetuning heat exchangers, verifying load volumes, and taking small samples for spot checks.
We hear from customers especially keen on sustainability. Responsive to this trend, our plant incorporates closed-loop solvent recycling, reducing waste output by double-digit percentages over the last three years. Teams document and optimize unit operations, shifting to alternative raw materials if we find a more sustainable source with no compromise in profile. Down the road, we expect more regulatory attention on solvents and aromatic intermediates, which motivates us to keep “plant book” documentation open for continuous compliance.
Relationships form the backbone of our operation. Repeat buyers return not just for quality, but for the open line to our technical team. Questions about performance or batch-to-batch variance get clear, experience-driven answers—our chemists and engineers talk to customer R&D in technical language, often shifting production design in direct response to downstream needs. Many of our product adjustments came directly from these discussions.
Our manufacturing experience draws clear lines between 2-Methyl-1-Phenyl-2-Propanol and similar compounds. Production scale influences what properties the final product carries; correct heating, controlled cooling, and unbroken inert coverage all drive quality. This hands-on control lets us commit to tight specs and stable long-term supply.
Customers facing critical outcomes—regulatory testing, fragrance profiles, active ingredient synthesis—need every parameter locked tight. Substituting from a lower-quality, off-brand batch introduces risk: higher boil-off rates, product darkening, residual odor, or a low-yielding reaction. By holding the entire chain, from raw aromatic input to finished, tested shipment, we cut down on those risks. QC records and batch certifications support our results, but the real test lies in how well customers’ own processes perform batch after batch, year after year.
Over decades, we have learned the chemical’s strengths and limits. It delivers reliable outcomes in the fields where specificity and purity matter most: pharmaceuticals, specialty polymers, fragrances, and advanced materials. As markets evolve and standards climb, regular investment keeps our procedure modern and supply stable. The compound’s legacy and reliability stem directly from process rigor and open technical dialogue—a belief we reaffirm with every shipment and every customer call.