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HS Code |
532446 |
| Iupac Name | (1H-Imidazol-2-yl)methanol |
| Molecular Formula | C4H6N2O |
| Molar Mass | 98.11 g/mol |
| Cas Number | 616-46-6 |
| Appearance | White to off-white solid |
| Melting Point | 119-123 °C |
| Solubility In Water | Soluble |
| Pka | ≈ 7.0 (for imidazole ring) |
| Smiles | C1=CN=CN1CO |
| Inchi | InChI=1S/C4H6N2O/c7-3-4-5-1-2-6-4/h1-2,7H,3H2,(H,5,6) |
| Hazard Statements | May cause irritation |
| Synonyms | 2-(Hydroxymethyl)imidazole |
As an accredited (1H-Imidazol-2-Yl)-Methanol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250g of (1H-Imidazol-2-Yl)-Methanol is supplied in a sealed amber glass bottle with a tamper-evident cap and hazard labeling. |
| Shipping | (1H-Imidazol-2-yl)-Methanol is shipped in tightly sealed containers, compatible with organic solvents, under cool, dry conditions. It must be clearly labeled, protected from light, moisture, and incompatible substances. All packages comply with local and international chemical transport regulations. Appropriate documentation and safety data sheets accompany the shipment to ensure proper handling. |
| Storage | (1H-Imidazol-2-yl)-methanol should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers and acids. Protect from moisture and direct sunlight. Store at room temperature, avoiding temperature extremes. Proper labeling and secure shelving are recommended to prevent accidental release or contamination. Handle following appropriate chemical safety protocols. |
Applications of (1H-Imidazol-2-Yl)-Methanol in Industrial ManufacturingAs a direct manufacturer of (1H-imidazol-2-yl)-methanol, we supply this key intermediate to advanced sectors that demand stringent regulatory adherence, precise formulation control, and tightly managed process integration. Our production response aligns with evolving compliance requirements and the real operational demands of downstream industries. Below we detail authentic industrial uses and the specific role our material performs in each segment, based on documented application in regulated manufacturing environments. 1. Pharmaceutical Intermediate SynthesisSynthesizing active pharmaceutical ingredients (APIs) requires closely monitored intermediates for heterocyclic incorporation. (1H-Imidazol-2-yl)-methanol contributes as a precursor, especially in the construction of imidazole-based drug cores where trace impurities are tightly regulated. Manufacturers utilize this intermediate within high-purity environments for the controlled formation of key API backbones, ensuring the final molecule conforms to global pharmacopoeial standards. Batch traceability and analytical characterization form essential checkpoints within this application. Industry compliance standards
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2. Agrochemical Intermediate ManufacturingIn the agrochemical industry, downstream synthesis of targeted pesticides, herbicides, and fungicides frequently employs (1H-imidazol-2-yl)-methanol as a core building block for heterocyclic active components. Agrochemical formulators demand batch consistency, compliance to residue guidelines, and reproducible integration into multi-step syntheses for molecule innovation, with QC protocols mirroring those in pharmaceutical pipelines. Adherence to national pesticide registration standards and export harmonization remains pivotal. Industry compliance standards
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3. Electronic Chemicals for Photoresist and Etchant FormulationsThe microelectronics sector leverages (1H-imidazol-2-yl)-methanol for specialized formulation of photoresist additives and etching chemicals, where precise molecular tuning impacts lithographic pattern resolution and process yield. Electronic-grade synthesis demands ultra-low metal and ionic contaminants, traceless integration into custom resist and etching blends, and certificates tied closely to semiconductor processing standards. In this context, feedback between material supply and fab process engineers ensures compatibility with advanced wafer processing nodes. Industry compliance standards
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4. Specialty Coatings Additives ManufacturingProducers of technical coatings, such as anti-corrosion systems for industrial metal substrates, use (1H-imidazol-2-yl)-methanol as a minor but functionally critical additive. The imidazole ring’s polarity aids in promoting adhesion and facilitating in-situ catalysis in crosslinking reactions, specifically in resin and polymer blends designed for high-wear and chemical exposure environments. Manufacturers must verify conformity to regional chemical safety and VOC regulations, and adjust dosage to avoid phase instability. Industry compliance standards
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5. Laboratory Reagents and Analytical Reference CompoundsAnalytical laboratories and reagent manufacturers incorporate (1H-imidazol-2-yl)-methanol as a reference standard or as a derivatization agent for enhancing the detection of certain analytes in chromatography and spectroscopy workflows. Purity and batch reproducibility are critical, with conformity to chemical reference material specifications. Usage extends to QC testing, pharmacological research, and synthesis pathway elucidation where high-fidelity analytical data is mandatory. Industry compliance standards
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Any discussion involving (1H-Imidazol-2-yl)-methanol has real weight among chemists who value purity, reliability, and a product’s transparent origins. We have worked with this compound, producing it in-house at our own manufacturing site to serve both established researchers and forward-thinking industry users. The journey from raw material to finished product presents a string of practical decisions, each one impacting the result you hold in your hands.
This compound, with molecular formula C4H6N2O, brings together a familiar imidazole skeleton and a methanol moiety. Its balanced chemistry allows for participation in a broad range of synthesis and catalysis pathways. We control every production parameter to ensure consistent crystalline form and defined melting behavior. Years spent refining our process give us the confidence to offer (1H-Imidazol-2-yl)-methanol with a level of transparency in specification you rarely see from third-party brokers. Hands-on process control doesn’t just build trust—it transforms outcomes in the lab.
Chemists often get lost in purity tables and data. In the trenches of repeat synthesis, those numbers mean more than spreadsheet entries. Product quality touches everything: solubility, yield, clean reaction profiles. Our runs deliver lots with purity not less than 98% by HPLC, because tighter controls during crystallization and drying mean less rework for you downstream. We annotate every lot with infrared, NMR, and, where clients require, Karl Fischer and elemental analysis data. End-users in pharmaceutical research, polymer chemistry, and specialty intermediates often report that trace contaminants—common where bulk blending is outsourced—drop out of critical reactions. Our commitment during each production batch guards against those setbacks you would otherwise face in scale-up or late-stage research.
Specifically, the typical material is a white to off-white crystalline solid. We keep batch lots in standard packaging under inert gas, so the material you receive behaves just as you expect when you open it in a controlled lab or a production environment. Moisture sensitivity varies from lot to lot depending on storage, but our stability studies show that low-RH packaging minimizes hydrolysis or unwanted ring-opening as it sits on your shelf. At the user end, that means less downtime repeating reactions, and you keep your project moving.
Those who have performed multi-step imidazole synthesis understand the challenge of purity at scale. Small-batch producers or lab-scale syntheses, common at trading companies or academic suppliers, tend to miss issues that only show up in kilo-scale runs. We built our operation to address these overlooked problems: off-odors from aldehyde formation, discoloration during prolonged storage, and batch-to-batch melting point drift. Our on-site QC addresses all these from day one, feeding data directly back to our production line so mid-course corrections aren’t just possible, they’re routine.
Every customer batch gets sampled for phase purity by NMR and a suite of chromatographic techniques. We also insist on hands-on calibrations for our own blending and weighing operations, refusing shortcuts with automated feeding or remote QC. This degree of attention ensures your raw material is free from persistent impurities often missed by less direct supply chains. When troubleshooting a failed coupling or an unexpected byproduct, our customers routinely trace root causes back to inferior reagents—something we make it our business to avoid from the outset.
Work in heterocycle chemistry, pharmaceuticals, and materials science calls for dependable building blocks. (1H-Imidazol-2-yl)-methanol stands out because that –CH2OH group introduces a site for further derivatization without over-complicating downstream steps. In cross-coupling chemistry, the imidazole ring’s electron density lends this molecule to nucleophilic substitution and metal-catalyzed transformations.
Academic partners use our material to construct ligand frameworks or functionalized ionic liquids. Industrial clients have leveraged the methanol functionality for aldehyde and carboxylic acid synthesis, taking advantage of its mild reactivity. Some biochemists exploit its hydrophilic character for solubilizing agents or polymer modifiers. With each scenario, the bottleneck is reproducibility—no surprise to anyone scaling novel syntheses outside high-throughput labs. Our material moves from gram-scale validation to multi-kilo output with no change in performance, a feature chemists notice as a time and cost saver.
By producing (1H-Imidazol-2-yl)-methanol directly, we guarantee full traceability from raw input to finished package. Most intermediaries blend or re-pack, sometimes obscuring the actual pedigree of what sits in the bottle. Because we avoid third-party bulk procurement, our product never mixes with legacy stocks or unknown-origin intermediates. The benefit appears sharply if you’ve run into supply hiccups, unexplained side reactions, or yellowing of solids after a few months at ambient temperature—clear signs that other vendors can’t match our standards at the root level.
On top of that, our technical team—drawn from both synthetic and analytical backgrounds—remains one phone call or email away for troubleshooting. We listen when a run sees unexpected textures, inconsistent melting, or shifts in solubility. Those reports feed directly back to our process engineers. Feedback isn’t filtered by office staff with no hands-on chemistry; instead, we invest in direct lines from customers to our plant floor. While large distributors push batch size and logistics, only manufacturers truly committed to feedback adaptation can maintain your trust over the years.
Though many expect a long list of grading and technical codes, what matters more is the evidence of oversight from synthesis chemistry to container closure. Our product arrives with moisture usually under 0.5% (w/w) and purity levels confirmed through at least two orthogonal techniques. Containers are filled in an atmosphere of dry nitrogen or argon for bulk shipments, or with dehumidified air for standard packaging. We avoid the common industry pitfall of bulk drying only once before splitting—our protocols demand final packaging occur within minutes of drying and QC sign-off.
Storage on your end becomes straightforward. Keep the material cool and dry, and you won’t see the degradation, discoloration, or clumping that less carefully handled product often develops. Our decades producing similar heterocycles taught us that erratic melting, surface reactivity, and rapid loss of the alcohol group all trace back to lapses in container control and poor line cleaning between runs. These stories share a solution: full manufacturer accountability, day after day, batch after batch.
Chemical production draws scrutiny for its environmental and safety record. As a primary producer, we see every upstream and downstream impact. Each kilogram of (1H-Imidazol-2-yl)-methanol leaves our site only after waste streams are fully processed for containment and recycling. Years ago, inconsistent quality arose from low-grade solvent recovery; now, our closed-loop system ensures only properly distilled, freshly conditioned solvents contact our reactors.
Eco-conscious clients sometimes ask about the carbon footprint of specialty chemicals. While data remains patchy across the sector, we strive to reduce off-gas and limit water consumption. Each step, from raw input to final crystallization, gets scrutinized not only for yield but also for downstream impacts on energy and emissions. That attention pays off: clients count on reliable shipments uninterrupted by sudden shortages or regulatory hiccups tied to non-compliance upstream.
Out in the field, not every client is operating in a climate-controlled analytical lab. Some are piloting processes in glassware or steel with limited support. Freshly opened product kept airtight stays true to specification; exposure to humid conditions or repeated bottle opening undermines the expected performance. Over years supplying hundreds of end-users, we observed that those using automated powder feeders or high-turnover inventory see few problems, but smaller users or those with slower stock rotation sometimes encounter hydrolysis or darkening. To help, our team offers direct coaching on best practices, without recourse to standard-issue disclaimers or generic advice sheets.
Some customers push the limits of what (1H-Imidazol-2-yl)-methanol can do. We see it taken from analytical to preparative scales in a matter of months, especially in pharmaceutical early development and specialty monomer synthesis. Scale-up brings new variables—thermal gradients, mixing rates, and solvent shifts can draw out minor impurities either invisible or irrelevant on the bench. Customers share back performance data, and our own analytical team replicates challenging reactions to ensure no surprises crop up as usage shifts from exploratory to full-scale manufacture.
It’s tempting to lump (1H-imidazol-2-yl)-methanol with other imidazole derivatives, though the –CH2OH function introduces a flexibility not shared by parent imidazole or its alkylated analogs. In actual reactions, the alcohol group directs selectivity and sometimes enables conjugation or further modification without aggressive conditions. Researchers have shared that methyl or ethyl imidazole derivatives lack the nuanced hydrogen bonding or solubilizing plasticity our product delivers.
From the manufacturing side, the synthesis route avoids cross-contamination with standard imidazole by careful separation at distillation and purification. This gives you more confidence in side-by-side screening, especially if setting up comparative libraries or high-throughput workflows. Whether it’s late-stage functionalization or rapid library expansion, the distinct behavior of this methanol group shines through in both classic and emergent applications.
Year after year, volatility in chemical supply chains—whether global disruptions or local interruptions—presents a looming risk to any research or production timeline. By managing our own precursor procurement and keeping full batch run details in-house, we sidestep the pitfalls of anonymous supply and the blind re-packing that too often masquerades as “quality.”
We maintain meaningful lot-to-lot consistency, meaning you can confidently run hundreds of batches and see the same outcomes every time. Circumventing the price-driven broker market lets us lean into our own standards, not someone else’s spreadsheet. Times when downstream users report failures or batch recalls nearly always connect back to upstream supply issues beyond their control. Keeping control tight from the early synthetic step onward removes this unknown from your process.
Our technical support isn’t a formality—years of hands-on batch production mean we anticipate both expected and edge-case problems. If new impurities show up in a chromatography run, or samples display unexpected physical changes, we take responsibility in tracing back the problem. Experience in producing, testing, and using hundreds of kilograms of (1H-imidazol-2-yl)-methanol has taught us that chemistry never stands still. Changes to solvent supply, mild tweaks to reaction conditions, and simple line upgrades may tip product behavior in the real world.
Collaboration with users runs both ways. We support first-time users unveiling new applications and work closely with industrial partners scaling up from a few vials to tens of kilos per month. This hands-open attitude means we not only supply the material, but also help you work through bottlenecks or troubleshoot anomalies as if your own operation were part of ours. In an age where “supplier” often equates to faceless commerce, our culture of direct relationship and process transparency remains rare.
Feedback from those who use (1H-imidazol-2-yl)-methanol directly shapes our R&D priorities. Reports of specific impurities popping up in certain reactions spark new purification trials. If a particular application needs tighter moisture control or a unique particle size, that insight directs adjustments to our filtration or finishing steps. Multiple users needing a non-standard packing size? We have pivoted our batch consolidation and filling procedures in response.
Our production cycle runs on iteration, not a fixed “one-and-done” recipe. Because we hold the reins from input to output, any changes come after consultation with the chemists actually testing the material. In practice, this means short feedback loops: we adapt, validate, and re-release without waiting for third-party approval or overseas logistics. Every innovation, from solvent selection to batch scheduling, stems from this ongoing dialogue between our floor and your workspace.
Trends in chemical demand shift as new technologies emerge. (1H-Imidazol-2-yl)-methanol’s role in catalyst design, functional polymers, and custom APIs positions it squarely in several innovation hotspots. As end users broaden the range of modifications and applications, direct feedback about performance and compatibility gets woven back into how we develop and QC future product iterations.
Export controls, sustainability metrics, and supply chain traceability have gained urgency. Our operation runs open books on documentation and compliance so every shipment supports both regulatory and customer reporting. Recent years have also seen growing demand for documentation supporting ESG (environmental, social, governance) initiatives—a context we address by integrating audit trails and process transparency into our batch records. This benefits those seeking consistency not just in product quality, but also in the sustainability of their sourcing.
We don’t just move drums and bottles of (1H-imidazol-2-yl)-methanol; we invest in continuous, hands-on improvement. Years as a direct manufacturer have shown us that shortcuts—be they in synthesis, packaging, or documentation—solve nothing in the long run. Every technical advance, from drying protocols to quick-response QC checks, springs from guidance by chemists and engineers who work with and trust our product.
Your demands drive our process decisions: tighter analytical controls, more flexible packaging, and robust supply commitments. At every setting—be it research bench or pilot line—the results depend on material consistency and clear communication. By bringing the whole chain in-house, from precursor selection to finished packaging, our goal remains the same. Deliver a product that repeats and excels across each application.
(1H-Imidazol-2-yl)-methanol remains a builder’s molecule—nimble, adaptable, and, in careful hands, a gateway to new syntheses. Partnerships with real manufacturers mean fewer surprises and long-term confidence in your results. That’s something chemical brokers or distributors just can’t match.