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HS Code |
729461 |
| Chemical Name | 2-Pyrimidinemethanol |
| Cas Number | 6960-22-5 |
| Molecular Formula | C5H6N2O |
| Molar Mass | 110.12 g/mol |
| Appearance | White to beige crystalline solid |
| Melting Point | 52-56 °C |
| Boiling Point | 272 °C (estimated) |
| Density | 1.23 g/cm3 (at 20 °C, estimated) |
| Solubility In Water | Soluble |
| Smiles | C1=NC=CC(=N1)CO |
| Inchi | InChI=1S/C5H6N2O/c8-4-5-6-2-1-3-7-5/h1-3,8H,4H2 |
| Pubchem Cid | 17703 |
As an accredited 2-Pyrimidinemethanol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 2-Pyrimidinemethanol is packaged in a 100g amber glass bottle, tightly sealed, with a clear chemical label and safety warnings. |
| Shipping | 2-Pyrimidinemethanol is shipped in tightly sealed containers, protected from light and moisture, and kept at room temperature. It is classified as a chemical reagent; standard shipping regulations for non-hazardous laboratory chemicals apply. Ensure upright storage and appropriate labeling during transport to maintain chemical integrity and comply with safety guidelines. |
| Storage | 2-Pyrimidinemethanol should be stored in a tightly sealed container in a cool, dry, and well-ventilated area away from direct sunlight and sources of ignition. Keep it away from incompatible substances such as strong oxidizing agents. The storage area should be appropriately labeled, and access restricted to trained personnel. Follow standard chemical storage guidelines and consult the safety data sheet for specific recommendations. |
Applications of 2-Pyrimidinemethanol in Industrial ManufacturingOur direct production of 2-pyrimidinemethanol supports specialized sectors that demand high chemical purity, consistent supply, and strict process traceability. The following downstream applications reflect genuine industry practices, with each sector utilizing our material in advanced manufacturing workflows that align with global quality and regulatory frameworks. 1. Pharmaceutical Intermediate SynthesisLeading pharmaceutical enterprises integrate 2-pyrimidinemethanol as a building block in the synthesis of pyrimidine-based active pharmaceutical ingredients (APIs). Its hydroxymethyl functional group offers high reactivity in nucleoside analog assembly, notably for antiviral and anticancer therapies. The material enters the process during the early or mid-stage coupling and alkylation steps, supporting precise batch traceability from raw material to finished API, which is essential for regulatory filings and process validation. Specific formulation percentages are determined by stoichiometric calculation based on the desired yield and subsequent steps, with ongoing in-process control to monitor conversion rates and impurity profiles. Industry compliance standards
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2. Agrochemical Active Ingredient ManufacturingMajor crop protection manufacturers employ 2-pyrimidinemethanol to construct essential intermediates for new-generation insecticides and herbicides containing pyrimidine scaffolds. It is typically engaged at the condensation or methylation stage, enabling structural diversity that enhances pesticide selectivity and environmental stability. Compliance requires raw material traceability and control of residual solvents per agronomic and export protocols. Application rates are tuned for batch size and target molecule, closely managed to avoid excess reactant that could require downstream purification adjustments. Industry compliance standards
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3. Chemical Reagent Manufacturing for Molecular DiagnosticsDiagnostic reagent producers incorporate 2-pyrimidinemethanol in the assembly of sensitive fluorescent probes and hybridization reagents for DNA and RNA testing kits. Its high purity is critical in oligonucleotide labeling and diagnostic substrate customization, requiring batch production under ISO 13485 and in concordance with IVD product requirements. Utilization rates relate directly to probe density and target hybridization efficiency, with analytical-grade vetting before formulation. Entering late in the sequence of labeling or as a linker in probe synthesis, our material supports end-user accuracy and product stability in diagnostic kits shipped worldwide. Industry compliance standards
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4. Specialty Polymer Synthesis for ElectronicsAdvanced materials producers utilize 2-pyrimidinemethanol in the custom synthesis of specialty polymers for optoelectronic applications, including photoresist and dielectric layer modification in printed circuit boards (PCBs) and displays. Its chemical structure enables integration into polymeric chains as a reactive functional group, providing targeted adjustments in polarity and dielectric constant. Dosing varies with the degree of polymerization and desired film thickness, with entry during the prepolymer or monomer modification stage under cleanroom standards. These workflows are dictated by semiconductor industry quality tiers, with volatile organics and residual analysis validated for electronics compliance. Industry compliance standards
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Work in our laboratory tends to start with hands-on requirements and immediate challenges. Chemists looking for 2-pyrimidinemethanol come with clear demands – purity, consistent results, safe handling, prompt delivery. The chemical stands out for its structure: a pyrimidine ring bonded to a methanol group. That foundation allows further reaction, flexibility, and practical value. On our side of the process, we recognize that 2-pyrimidinemethanol serves as much more than just a building block. The choices we make during manufacturing determine the confidence, performance, and reliability downstream.
Laboratory work for this compound starts long before the first order lands. We’ve followed decades of research and vetted data on pyrimidine chemistry. The actual reaction involves the careful methylation of pyrimidine, precise control over temperature and solvents, and constant monitoring for any byproducts that could impact downstream use. We tune each batch to meet pharmaceutical and specialty chemical standards. Typical batches show fine white crystals, high reproducibility, and GC/HPLC traces that tell us the material fulfills both qualitative and quantitative requirements. The analytical work isn’t just for show — it prevents contamination of research or scale-up by unseen impurities.
Many chemists initially underestimate how a trace impurity in a heterocyclic alcohol like 2-pyrimidinemethanol can alter results. Take a medicinal chemistry group looking to synthesize a novel nucleoside or an agricultural team experimenting with new herbicide scaffolds. A contaminated lot makes analytical data confusing and wastes costly resources. By using controlled crystallization, verified drying under inert gas, and secure packaging, our approach minimizes water and solvent retention. We often get feedback about crystal clumping, discoloration, or faster than expected degradation in lesser quality versions. For critical intermediates like this, those issues mark the difference between a reliable experiment and a batch that stalls development work.
Market suppliers churn out pyrimidine derivatives with varying diligence. We see competitor samples showing off-odors, occasional off-white coloration, and less predictable melting behavior. With 2-pyrimidinemethanol, these minor faults lead directly to batch inconsistencies and repeat work. Our process avoids open trays and excessive exposure to ambient air; every drum and bottle comes with real traceability. Purity consistently exceeds the usual 98% threshold demanded by most pharmaceutical developers. Feedback from contract research partners and formulation chemists points to smoother dissolving, easier purification in subsequent steps, and stable storage performance. During shipping, material stability matters — poorly packaged lots degrade or clump, costing customers time they’d rather spend on development, not troubleshooting supply chain problems.
We offer one primary model of 2-pyrimidinemethanol, chosen after years of formulation testing and direct engagement with synthetic chemists. Our batches show a melting range that matches literature values and verified lots. Specification checks go beyond surface-level parameters. Each run receives full NMR analysis, IR confirmation, and a full suite of chromatographic probes. Water content stays below 0.2%, well below the point where degradation or unwanted side products become likely. Controlled granulation delivers a crystalline form suitable for batch weighing, transfer, and solution work, eliminating the stickiness and caking associated with quick-fried or poorly dried variants. By limiting each lot size and tracing all precursors to audited sources, we maintain authenticity throughout the pipeline. That’s transparency every end user can see in their results.
Accountability in chemical manufacturing starts with documentation. From procurement of raw pyrimidine, verification of methane sources, and selection of solvent – every item in the chain lands in a lot file. We keep samples for every batch, enabling full re-testing on request. Over the years, we’ve encountered users who request retroactive analysis for compliance or patent-related work. Rapid recall of process data saves time and delivers assurance, especially where trace-level contaminants and source verification matter for regulatory reasons. This transparency sets apart real manufacturers from traders or resellers who can’t vouch for origin or include detailed batch history.
Research chemists often transition from milligram scale to gram or multi-kilogram scale within months. Our team remains alert to those changing requirements. Any barriers, such as altering particle size, adapting to new formulation bottlenecks, or stricter purity constraints, deserve a flexible response. Real change happens in the active exchange between production chemists and product developers. We work with those who push the material into previously untested reactions — say, site-selective functionalizations, linker attachment for testing new drug modalities, or late-stage transformations where heterocycle fidelity changes a project’s fate. The relationship focuses on helping the chemistry succeed, not selling more volume for the sake of it. That’s what motivates real manufacturers — a sense of shared progress, not only in the science, but in the reliability and safety of the research itself.
Chemists often compare 2-pyrimidinemethanol with other pyrimidine-based alcohols and substituted analogs. In practical terms, the 2-position methanol group offers unique reactivity. For example, it undergoes straightforward oxidation, protection, and activation, providing a direct route to nucleoside analogs or advanced heterocycle building blocks. Substitute with a methyl or ethyl group, and that flexibility disappears. A switch to 4- or 5-pyrimidinemethanol changes reactivity and regioselectivity in coupling reactions. The pure alcohol in our product ensures researchers get predictable reactivity — no strange byproducts or side-chain interference. Unlike generic lots, we enforce strict controls on isomer identity and minimize contamination with related biproducts.
Real chemical work only counts if the material survives transport and storage. From the outset, we design packaging for the real conditions our customers face: transit across humid summers, storage in standard warehouse racks, and occasional exposure during sampling. Our 2-pyrimidinemethanol undergoes stability stress testing under controlled temperature and humidity. Users who buy lower-quality material see failures — oils separating, unexpected hydrolysis, color changes. For research and scale-up, such changes derail experiments and risk safety. Our focus remains on predictable handling: clean transfer, minimal static, good flow, no “clumping” after shipping. We supply packaging that allows easy resealing and storage, preventing unnecessary exposure to atmospheric moisture and ambient contaminants.
Making 2-pyrimidinemethanol isn’t just about combining reagents. Throughout synthesis, moisture, temperature deviations, or trace contamination create issues that reveal themselves only during downstream use. Labs have reported dead-end syntheses not due to poor skill, but from a poorly characterized starting material. During our years in production, we’ve developed protocols for drying, careful chromatographic purification, and vacuum sealing that make the difference between success and wasted effort. Reactivity tests confirm that nothing foreign lingers to disrupt later catalysis or cross-coupling. Any anomaly triggers a batch-wide review. Technicians keep real logs — handwritten entries for every critical step — not just digital files. Hands-on care at every step assures a product that aligns with the needs of researchers, formulation developers, and scale-up engineers alike.
Research use alone doesn’t justify skimping on compliance. Global supply means navigating customs, import rules, and proper documentation for specialty chemicals. We provide safety data sheets, regulatory references, and honest statements about product stewardship. European and American importers require full traceability; so do quality control labs preparing for audits or registrations. Our support team consults directly with customers on paperwork and downstream handling, making sure there are no surprises during inspection or review. The goal is not to overwhelm with paperwork, but to enable smooth use and transition from bench to larger application. We never supply confusing or out-of-date documents. Instead, every shipment gets live support, updated certifications, and prompt batch traceability. Actual users — not traders — demand this level of transparency.
Being a responsible chemical manufacturer means making more than declarations. Pyrimidine chemistry brings environmental risks — solvent selection, waste byproducts, clean disposal. Our process minimizes hazardous waste by recapturing solvents, recycling wash streams, and leveraging catalytic conversions to limit energy and reagent use. Over time, we’ve replaced legacy solvents with safer, more environmentally friendly alternatives, even at higher initial cost. Wastewater streams undergo full treatment on-site before discharge, monitored by veteran environmental engineers, not just regulatory minimum. Customers looking for responsible sourcing gain visibility into our methods and targets for ongoing improvement. Many research groups now prioritize green chemistry and sustainability as a core metric; our manufacturing aligns with those goals at every stage.
Use cases for 2-pyrimidinemethanol continue to evolve as synthetic chemistry grows more sophisticated. Medicinal chemists use it as a precursor for nucleotide analogues, leveraging the alcohol for selective modifications. Materials scientists explore it as a heterocyclic source for functional polymers and cross-linked matrices. Analytical chemists deploy the compound in verifying method development, especially in high-sensitivity LC-MS applications. Agricultural chemistry increasingly tests pyrimidine alcohols for novel crop protection molecules. The need for dependable access to high-purity 2-pyrimidinemethanol remains constant — one can trace key patent filings and research articles back to reliable batches manufactured with care. Our experience tells us that a weak link in the supply chain, often overlooked as a commodity, disrupts progress and innovation at the top research centers and startups alike.
Conversations with users reveal the challenges of sourcing specialty intermediates. Research teams tell us that schedule delays often arise from poorly characterized material. Feedback includes comments on improved yield, cleaner reaction profiles, and reliable scaling. Customers appreciate batches that dissolve readily, display expected melting points, and lack the “mystery peaks” in analytical traces seen from inconsistent suppliers. We see repeat orders not just from habit, but because our material becomes a trusted, integrated part of synthetic programs. In those cases, the product outlives its catalog number and becomes a value-adding tool for real progress. Regular engagement builds a cycle of improvement: each concern, observation, or wish feeds directly into our manufacturing program — deliver better, more predictable compounds.
Simply selling a chemical doesn’t satisfy actual chemists. People ask about lot-to-lot variation, storage life, solubility in different solvents, or potential for specific by-products in their planned syntheses. We answer each with actual data, not generic assurances. For example, we report full thermal gravimetric profiles on request; if a customer wants to know water content, they get the exact Karl Fischer titration. If a purchasing team needs verification of source pyrimidine identity, we open our logs. Our role extends beyond fulfilling purchase orders to becoming an accessible technical resource for sophisticated users aiming for repeatable science.
The research ecosystem relies not just on commodities, but on trusted relationships that reduce cost, risk, and uncertainty. Customers switching to our 2-pyrimidinemethanol from another source report fewer rejected batches, less downtime, and smoother technology transfer. Analytical labs spend less time on troubleshooting, and synthetic groups focus effort on actual discovery, not fixing foundational flaws. That shift in effort builds value throughout the research and development environment, speeding up everything from grant deadlines to patent filings and product approvals. Consistency, transparency, and hands-on support remain our bottom line.
Progress in fine chemical manufacturing can’t be faked or purchased overnight. Experience, documentation discipline, and honest feedback loops set true manufacturers apart. In our practice, 2-pyrimidinemethanol moves beyond catalog listing to become a tool for progress. By valuing every complaint or batch note, and sharing both lessons learned and advances, we help chemists reach higher standards and more ambitious goals. The result isn’t just grams or kilograms moving out the door — it’s tangible evidence that careful work at the source enables smarter, safer, and more productive research everywhere this compound lands.