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HS Code |
232223 |
| Product Name | 5-(3-Fluorophenyl)-1H-Tetrazole |
| Cas Number | 1025557-90-1 |
| Molecular Formula | C7H5FN4 |
| Molecular Weight | 164.14 |
| Appearance | White to off-white solid |
| Melting Point | 128-132°C |
| Solubility | Slightly soluble in water, soluble in DMSO and methanol |
| Purity | Typically ≥98% |
| Smiles | C1=CC(=CC=C1N2NN=NN2)F |
| Inchi | InChI=1S/C7H5FN4/c8-6-3-1-2-5(4-6)7-9-11-12-10-7/h1-4H,(H,9,10,11,12) |
| Storage Temperature | 2-8°C |
| Synonyms | 3-Fluorophenyl tetrazole |
| Hazard Statements | May cause irritation to eyes, skin, and respiratory tract |
As an accredited 5-(3-Fluorophenyl)-1H-Tetrazole factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The chemical is packaged in a sealed, amber glass bottle containing 25 grams, labeled clearly with the name and safety information. |
| Shipping | 5-(3-Fluorophenyl)-1H-Tetrazole is shipped in secure, airtight containers to prevent moisture ingress and contamination. Packaging complies with chemical safety regulations, including appropriate labeling and documentation. It is typically transported as a non-hazardous solid, but all handling follows standard safety guidelines for laboratory chemicals. Expedited and tracked delivery options are available. |
| Storage | Store 5-(3-Fluorophenyl)-1H-Tetrazole in a tightly sealed container, protected from light and moisture, in a cool, dry, and well-ventilated area. Keep away from incompatible substances such as strong oxidizers and acids. Ensure proper laboratory labeling and avoid exposure to heat. Use appropriate personal protective equipment when handling, following recommended chemical safety protocols. |
Applications of 5-(3-Fluorophenyl)-1H-Tetrazole in Industrial Manufacturing5-(3-Fluorophenyl)-1H-Tetrazole serves specialized roles across key segments in chemical synthesis and intermediates production. Manufacturers leverage its unique structural properties and reactivity profile in pharmaceutical, agrochemical, and materials science processes. Below are main application scenarios with technical integration details. 1. Pharmaceutical Intermediates for Angiotensin II Receptor Blockers (ARBs)Pharmaceutical firms employ 5-(3-Fluorophenyl)-1H-Tetrazole as a critical building block during the multi-step synthesis of active pharmaceutical ingredients, particularly for ARBs such as Losartan, Valsartan, and similar sartan drugs. The tetrazole ring provides necessary bioisosteric properties imitating carboxylic acids, crucial for target binding affinity. Its introduction occurs in late-stage synthetic transformations through nucleophilic substitution, often via copper(I)-catalyzed cycloaddition. Manufacturers require consistent purity and batch-to-batch quality to maintain medicinal yield and safety standards, adhering to strict GMP validation. Industry compliance standards
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2. Agrochemical Synthesis IntermediatesChemical formulators in the agrochemical sector use this fluorinated tetrazole structure as an intermediate for developing advanced herbicides and insecticides, particularly those requiring aromatic tetrazole groups for improved environmental stability and target specificity. It typically enters the synthetic route during nucleophilic aromatic substitution or click chemistry stages, often followed by protective group manipulation and condensation to construct target actives. Stringent regulatory and safety validation applies due to food chain and environmental risk management requirements. Industry compliance standards
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3. Custom Synthesis in Fine Chemical ManufacturingCustom synthesis contractors and fine chemical houses source 5-(3-Fluorophenyl)-1H-Tetrazole for use as a tailored nucleophile, ligand precursor, or heterocycle donor in specialty chemical development. Its application covers photoinitiators, high-performance pigment intermediates, and advanced specialty polymers where the fluorinated tetrazole skeleton contributes to thermal stability or functionalization. Rigorous documentation tracks lot traceability and performance uniformity per end-user validation details. Industry compliance standards
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4. Advanced Material Science Research for Energetic CompoundsInstitutes and advanced material manufacturers incorporate 5-(3-Fluorophenyl)-1H-Tetrazole into research and scale-up formulations for energetic materials, including gas generators, pyrotechnic initiators, and propellant additives. The tetrazole ring provides high nitrogen content and controlled energy release, specifically for applications with demand for low-sensitivity yet high-energy functional groups. Strict national and international safety management systems regulate manufacturing, handling, and risk mitigation in these applications. Industry compliance standards
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In chemical manufacturing, the names and formulas of products often blend together unless they carry a unique edge. 5-(3-Fluorophenyl)-1H-Tetrazole isn’t just another intermediate. Over the years, this compound has found steady ground in pharmaceutical development and specialty synthesis. Our staff has worked with it for better part of two decades, following each batch from lab to customer delivery. This experience has shown us that not all tetrazoles behave the same way, and 5-(3-Fluorophenyl)-1H-Tetrazole stands out for more than its formula.
At a molecular level, the compound is a tetrazole ring bearing a 3-fluorophenyl group. Looking at its structure, you see not just complexity but a genuine usefulness. The fluorine atom influences both reactivity and stability. It integrates into targeted synthesis, especially when the end goal demands controlled behavior. Chemists appreciate its predictable interaction during cycloaddition reactions or when fine-tuning molecular pharmacophores.
Over the years, we have tuned our production process to deliver consistently high purity batches. Chromatographic readings routinely show clear peaks, and each lot undergoes full NMR and HPLC scrutiny. Not every manufacturer can say that. By continuing to invest in state-of-the-art quality control, we’ve met or exceeded standards expected by pharmaceutical partners throughout the world.
We have centered our process on a well-validated synthesis pathway, producing 5-(3-Fluorophenyl)-1H-Tetrazole as an off-white to pale yellow powder. Each batch typically reaches purity above 98%. Moisture content sits at the lower end, important for those developing moisture-sensitive procedures. Packing in airtight containers with minimal airspace prevents degradation and guarantees repeatable results, whether the lot ships locally or crosses continents.
Our team has learned, sometimes the hard way, that consistency at every stage separates reliable material from sources who focus on turnaround rather than reproducibility. We keep feedback loops going with major R&D clients. Nothing sharpens process control like the eyes of those who run critical radiochemical labeling or construct API scaffolds. When a process hiccups, we track the source. Where other suppliers relegate minor deviation as acceptable, we dig into chemical memory and analytic records, rooting issues out at the source.
Many researchers request 5-(3-Fluorophenyl)-1H-Tetrazole for its role in producing bioactive compounds. The unique electronic properties brought by the fluorine atom often improve metabolic stability or binding affinity in medicinal chemistry campaigns. As a building block, this compound fits projects where an added dimension of selectivity or function pushes the molecule’s performance beyond what a plain phenyl analog offers.
In the lab, workflow integration matters. This material dissolves predictably in organic solvents and tolerates standard process temperatures. Few alternatives—with comparable prices and yields—offer the same ease in downstream purification. There’s a ruggedness to the tetrazole ring, and our process avoids leaving behind the common metallic residues or problematic organic side-products that so often surface with lower grade materials. The mouthful of a name gets trimmed down in conversation—veterans just call it “3-fluoro-tetrazole”—because it shows up again and again, especially in discovery pipelines exploring kinase inhibitors, agrochemical actives, or next-generation functional materials.
It’s worth mentioning how 5-(3-Fluorophenyl)-1H-Tetrazole differs from other tetrazoles. The counter examples are broad: 5-substituted variants with bromine, methyl, or plain phenyl groups. Some chemists ask about the 4-fluoro analogs, or those with extended aromatic systems. Our analysis, reinforced with feedback from dozens of process clients, shows that the placement of the fluorine and its electronic interplay gives this compound an edge in certain coupling reactions. Selectivity benefits from the resonance effect propagated through the ring, something materials lacking fluorine often fail to achieve. In test runs, alternate isomers sometimes produce byproducts that are hard to separate or show batch-to-batch drift.
We have seen customers switch to this fluorinated option not on a whim, but after data-driven trials and pilot projects. Some attempted scaling with plain phenyl analogs, only to run into snags with shelf stability or reactivity. Others found that subtle differences in the substitution pattern meant the difference between a robust patent claim and minor novelty in their pharmaceutical filings. When working side by side with medicinal chemistry partners, we’ve watched their candidate molecules keep to process timelines and maintain predictable properties, thanks in part to this compound’s inherent stability and purity.
Rather than guessing at use cases, we learn from the project veterans. Our top customers fall into pharmaceutical discovery and custom synthesis. They run 5-(3-Fluorophenyl)-1H-Tetrazole through N-alkylation steps, or introduce it as a core to scaffold new enzyme inhibitors. The most common requests include multi-gram and up to kilogram batches. We’ve designed our work floor for seamless lot scaling—no hidden process upsets, no critical parameter drift as volumes ramp up. A few work with it in radiolabeling, where pure, impurity-free starting material saves them days of purification.
Academic labs often run small pilot syntheses, but the largest demand emerges from industrial pharmaceutical teams. Synthetic chemists in these environments don’t have time for repeat surprises. They lean on supply partners who can demonstrate years of experience, and share working analytical data unprompted. Our technical team walks through the finer points of downstream functionalization, especially where substitution pattern influences rate or selectivity. For newer start-ups, we provide actual HPLC and NMR datasets to answer structure confirmation requirements. We’ve seen time lost and budgets blown when customers are forced to troubleshoot suspect material from outside sources.
Not every synthesis partner can deliver the product in the condition it’s needed. Many buyers have described receiving off-spec material from other suppliers—yellowed, sticky, or carrying chemical residues that leave headaches in clean-up stages. We focus on controlling atmospheric exposure and temperature all the way from drying to vacuum-packing. The right container and transport chain make a difference in a sensitive tetrazole’s shelf life and storage stability.
Handling and storage are only part of the equation. For projects that rely on large-scale, predictable melt points, low residual solvent, or certification of trace element content, minor details become day-saving variables. Our clients return because we track each analytic run, adjusting process controls when variability creeps beyond 0.2%. The refinement in our workflow avoided batch recalls even in markets with strict regulatory auditing.
Chemical manufacturing has never rewarded shortcuts, not in the long term. By keeping batch records along with full chromatographic, mass spectrometric, and IR spectra, ambiguity doesn’t creep into critical process decisions. Out in the field, our clients can set expectations with proper documentation and avoid process unknowns. Real data drives success, and production teams need regular updates. Our staff prepares analytic data the way we would want to receive it, clear and complete.
On the rare occasion that a nonconforming batch arises, immediate corrective steps keep the risk from extending beyond lab doors. We conduct root-cause investigations, not just for compliance, but for the benefit of research partners who count on reliable synthesis. Years of lessons from trial and error have built the strict process windows that protect our customers’ projects today.
We’ve found that the biggest obstacles to efficient use of 5-(3-Fluorophenyl)-1H-Tetrazole rarely come from molecular behavior. More often the issue is in the small print—unexpected impurities, non-standard containers, or a lack of full transparency. Some users have dealt with suppliers who clamp down on process data, refusing to share raw analytical outputs, or delivering inconsistent documentation. Others have run into obstacles with customs, import rules, or inconsistent packaging.
We fight these headaches with attention to detail. Standardizing transport conditions and labeling packages with handling instructions goes a long way. Our production includes batch-and-lot level chain-of-custody documentation. For customers working in new regulatory environments, we help translate regulatory needs into batch testing and make sure our products slip through border controls without slowdowns. Clear communication shortens onboarding time for new users, and ensures their projects can keep moving. Should customers need custom package sizing, we can produce smaller jars or industrial pails as their timelines require.
Another success point comes from our technical support. Many scientists reach out in the troubleshooting stage—unexpected HPLC signals, batch inconsistencies, or solubility issues. Instead of periodic field calls, we operate an ongoing line of technical dialogue. Teams can reach out directly, receive live updates, and get hands-on troubleshooting from staff who understand the molecule’s character from firsthand synthesis. This coordination has helped more than one pilot effort hold course after small but critical technical setbacks.
Seeking purity and reproducibility starts with the production line but runs through every handoff to the user bench. Building relationships with top research organizations worldwide means we see first-hand the way different labs approach the same synthesis. By sharing knowledge, we raise the standard for everyone who relies on advanced tetrazoles in high-value research and discovery work.
Drug development and industrial research push timelines and budgets to their limits. Project risk doesn’t only come from uncertain target validation; it can emerge from inconsistent supply or unnoticed analytical drift. Chemists and process engineers put in months, even years, to validate the perfect building block for a molecular campaign. Finding out mid-cycle that the core component differs from what the analytical data promised derails projects—sometimes irrevocably—for even the best-run companies.
We’ve witnessed situations where cost-saving purchases ended with project slowdowns. All shortcutting can do is introduce more unknowns. Data integrity, from COA through secondary analysis, forms the bedrock of reliable supply. As methods grow more sensitive—demanding sub-ppm detection of residual solvents, or chasing after single-impurity isomers—production methods and records must keep up. We have built the habit of sending full unedited chromatographic charts with each lot, letting clients know exactly what leaves our facility.
The trust built on this transparency can turn one-off sales into lifelong partnerships. Detailed feedback from long-term commercial and academic customers steers improvements in both process and batch control. For every new project, we offer historical insights, traceability, and process improvement suggestions that make each successive batch more reliable than the last.
Demand for molecules like 5-(3-Fluorophenyl)-1H-Tetrazole will only increase as new drug platforms and functional materials reach the market. As selection criteria tighten and documentation requirements grow, supplying more than just material—delivering technical knowledge and responsive support—becomes essential. Our ongoing investment in analytics, process control, and feedback-driven production supports clients who stake their projects on every molecule’s reliability.
By standing behind each batch, from synthesis to loading dock, we continue to build the kind of trust that lets researchers set aside supply worries. In an industry flooded with choices, reliable process control and attentive customer partnership remain the surest route to successful research. Experience with this molecule taught us that genuine quality always traces back to the decisions made on the production floor, tracked with every measurement and supported with every delivery.
Supplying 5-(3-Fluorophenyl)-1H-Tetrazole isn’t just about meeting an order sheet or matching a specification. It’s about anticipating needs, sharing hard-earned insights, and upholding the standards that keep research on track. Every customer gains not only a compound but also the experience of a team dedicated to rigorous quality, transparent data, and a partnership-first mindset. By grounding our work in real results and open communication, we help our customers drive discovery, innovation, and progress—batch by batch.