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1-(5-Bromo-2-Methoxy-Phenyl)Adamantane

    • Product Name 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane
    • Alias Bromantane
    • Einecs 629-851-6
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
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    Specifications

    HS Code

    464123

    Product Name 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane
    Cas Number NA
    Molecular Formula C17H21BrO
    Molecular Weight 337.26 g/mol
    Appearance White to off-white solid
    Melting Point NA
    Boiling Point NA
    Purity Typically ≥98%
    Solubility Soluble in organic solvents (e.g., DMSO, chloroform)
    Smiles COC1=CC(Br)=CC=C1C2C3CC4CC(C3)CC2C4
    Inchi InChI=1S/C17H21BrO/c1-19-16-7-6-13(18)9-15(16)17-10-11-2-4-14(5-3-11)12-17/h6-7,9,11-12,14,17H,2-5,8,10H2,1H3
    Refractive Index NA
    Storage Temperature Store at room temperature, protect from light and moisture
    Flash Point NA

    As an accredited 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing White HDPE screw-cap bottle, labeled "1-(5-Bromo-2-Methoxy-Phenyl)Adamantane, 10g," with hazard pictograms and batch number.
    Shipping **Shipping Description:** 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane is shipped in secure, airtight containers, clearly labeled and compliant with applicable chemical transport regulations. Packaging protects against moisture, light, and physical damage. The shipment includes safety data sheets and hazard labeling. Only authorized, trained personnel manage handling and transportation, in accordance with international and local guidelines.
    Storage Store **1-(5-Bromo-2-Methoxy-Phenyl)Adamantane** in a tightly sealed container in a cool, dry, and well-ventilated area, away from direct sunlight, heat, and sources of ignition. Keep separate from acids, oxidizing agents, and moisture. Ensure proper labeling and follow all relevant chemical storage regulations. Use appropriate personal protective equipment (PPE) when handling.
    Application of 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane

    Applications of 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane in Industrial Manufacturing

    As a specialized manufacturer committed to supplying high-purity intermediate chemicals, we support a focused portfolio of downstream industries where 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane is an essential structural component. Our expertise extends to providing precise guidelines tailored for formulators, regulated producers, and industrial integrators operating within validated compliance systems.

    1. Pharmaceutical Intermediates for CNS Active Compounds

    The adamantane scaffold, modified with bromo and methoxy substituents, serves an indispensable role in the synthesis chain for several central nervous system (CNS) active APIs. R&D and commercial scale API plants integrate this intermediate in key steps to build molecules aimed at neurological therapeutics and antiviral protocols requiring adamantane-based moieties. Chemists employ it particularly for constructing next-generation compounds where substitution pattern directly influences receptor selectivity and pharmacokinetics.

    Industry compliance standards

    • ICH Q7A Good Manufacturing Practice (GMP) for Active Pharmaceutical Ingredients
    • European Pharmacopoeia General Chapter 2034: Purity of intermediates
    • FDA 21 CFR Part 211 (Current Good Manufacturing Practice for Finished Pharmaceuticals)
    • USP standards for residual solvents and heavy metals (if applied to the downstream API)

    Typical usage ratio

    • Range: 1–3 molar equivalents depending on direct alkylation or aromatic substitution steps
    • Adjustment basis: Determined by target API structure and impurity profile control

    Downstream process integration

    • Added as a key intermediate during the alkylation or coupling stage in stepwise multistage organic synthesis
    • Reacted with nucleophiles, reductive agents, or amines depending on targeted CNS compound

    Final product types

    • Neuroprotective drug substance intermediates (e.g., adamantane-derived amines for Parkinson’s disease)
    • Second-generation adamantane analogues for antiviral therapies
    • Investigational CNS drug candidates entering clinical trials

    2. Advanced Materials: Functional Monomer Synthesis

    Our compound is frequently selected as a specialty monomer building block when producing tailored polymers for use in electronics substrates and membrane materials. Molecular engineers exploit the adamantane core’s steric bulk in copolymer backbones to enhance material rigidity, thermal stability, and dielectric performance. Polymerization typically leverages the bromo group for controlled functionalization, delivering reproducible modification of surface or matrix characteristics.

    Industry compliance standards

    • ISO 9001:2015 Quality Management System for polymer and specialty chemical producers
    • IEC 60216 (Electrical properties for insulating polymers)
    • RoHS Directive 2011/65/EU for electronic substrate applications
    • REACH Annex XVII (restrictions on production and use of chemicals in Europe)

    Typical usage ratio

    • Inclusion: 2–6 wt% as a functional monomer unit in engineered copolymer formulations
    • Adjustment basis: Determined by target mechanical or dielectric property specification

    Downstream process integration

    • Incorporated during copolymerization with vinyl, acrylate, or styrenic units
    • Serves as a chain extender or branching agent in continuous solution or suspension polymerization

    Final product types

    • High-performance dielectric films for circuit board laminates
    • Thermal-resistant membranes for gas separation equipment
    • Polymer blends in optoelectronic device fabrication

    3. Agrochemical Synthesis: Key Intermediate for Biologically Active Compounds

    Chemical manufacturers incorporate this adamantane derivative in the multi-step synthesis of specific agrochemical actives. Its role involves transferring unique substitution patterns required for next-generation crop protection agents, particularly where robust activity is needed against resistant pest populations. Agrochemical R&D teams employ its structure to modify physicochemical properties, enhance field stability, and optimize bioavailability in finished formulations.

    Industry compliance standards

    • FAO/WHO Good Laboratory Practices for pesticide intermediates
    • OECD Guidelines for the Testing of Chemicals, Section 1 (Physical-Chemical Properties)
    • ISO 17025-certified QA systems for agrochemical production plants
    • Regulatory dossiers aligned to EU Regulation (EC) No 1107/2009 for active substances

    Typical usage ratio

    • 0.5–1.5 equivalents in heterocyclic construction or coupling reactions for lead agro actives
    • Adjustment basis: Modified per target active molecule and required conversion yield

    Downstream process integration

    • Reactant in Suzuki or Buchwald–Hartwig coupling during lead compound assembly
    • Inserted at late-stage derivatization to introduce functional moieties for improved selectivity

    Final product types

    • Next-generation insecticide actives
    • Specialized fungicidal intermediates
    • Advanced herbicide formulations targeting resistant weed species

    4. Fine Chemical Production: Custom Synthesis for Structural Motifs

    Contract manufacturing groups utilize our material as a starting building block in the design and assembly of specialty fine chemicals that require planar rigidity and defined functional positions. Synthesis programs targeting flavors, advanced dyes, and specialty resins leverage its adamantane skeleton for impact on end characteristics such as volatility, color fastness, or matrix compatibility. Its utility in custom synthesis rests in controlled manipulation of the bromo and methoxy groups during downstream derivatization steps.

    Industry compliance standards

    • ISO 9001:2015 for custom synthesis contract providers
    • ICH Q11: Development and Manufacture of Drug Substances (when fine chemical is API-bound)
    • EN ISO 14001:2015 Environmental Management for chemical processing facilities
    • Chemical Control Laws (e.g., TSCA, China MEE Order 12) if end-use is regulated

    Typical usage ratio

    • 0.2–2.0 equivalents depending on molecular complexity and functional group requirements
    • Adjustment basis: Calculated per synthetic sequence and desired side-product minimization

    Downstream process integration

    • Introduced in Grignard, Friedel–Crafts, or palladium-catalyzed arylation sequences
    • Employed in batch or flow chemistry modules for fine chemical end-point customization

    Final product types

    • Custom designed flavor and fragrance intermediates
    • Specialty organic pigments and dyestuffs for high-fastness textile applications
    • Cross-linking agents for tailored resin systems
    Free Quote

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    Certification & Compliance
    More Introduction

    Introducing 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane: Direct from the Manufacturer

    A Practical Perspective on a Specialized Intermediate

    Every time we synthesize 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane, our focus stays on the details that matter most to chemists on the production floor. Handling this compound requires understanding, not just the molecular formula or its registry details, but how it behaves from day to day, vessel to vessel. This is a molecule we make for working laboratories, not display cases.

    What sets 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane apart begins at the backbone: the adamantane core. The rigid structure shapes its reactivity and end-use potential, stabilizing the compound in ways that aren’t just theoretical. Adding the 5-bromo and 2-methoxy functional groups pushes its suitability higher for complex syntheses, particularly where a defined point of reactivity matters. Chemists looking for this intermediate often aim to step from high purity adamantane derivatives into specialty pharmaceuticals or advanced materials.

    Our team knows better than to chase arbitrary specifications. Still, consistency—batch to batch, drum to drum—means more than a checkbox. Over years of producing this intermediate, we have honed our crystallization process to push purity well above the threshold needed for downstream transformations. Each shipment carries verifiable documentation, but we know what matters most is how the material performs in your hands, not just what the paperwork claims.

    Physical Properties and Handling Experience

    Most laboratory technicians see this molecule as a white to off-white solid—easy to weigh, stable under routine storage, and forgiving of reasonable handling mistakes. The very nature of the adamantane skeleton provides thermal stability. That stability isn’t just a selling point; it means lower risk of decomposition during storage and when a reaction moves slower than planned.

    Offshore products sometimes display unpredictable polymorphism or problems with caking and lumping. Having managed formulation and shipping at scale, we pay attention to particle size distribution and packaging parameters. A free-flowing fine solid makes your day in the lab smoother and saves manual breakdown time. We've learned subtle storage tweaks—low humidity, tight seals, inert gas purges for large lots—that stave off unnecessary degradation.

    Beyond Catalog Numbers: Why the Right Synthesis Route Matters

    Some manufacturers source their starting material with short-term cost in mind, sometimes leaving behind trace contaminants. Our in-house team maintains strict feedstock selection and always uses fresh adamantane and carefully selected aryl precursors. Not every batch is identical under a microscope, but we have earned customer trust on the basis of absence of troublesome impurities.

    For most users, halogenated intermediates like this raise questions about safety, not just reactivity. Our plant workers have first-hand knowledge of brominated aromatics—years in the industry teach you to avoid careless exposure and avoid unnecessary heating. With 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane, routine laboratory ventilation and appropriate PPE have proven sufficient in downstream settings.

    Downstream Transformations and End-Use Feedback

    We always listen to what customers do with our chemicals after they leave our plant. This adamantane derivative fits into several advanced synthetic routes for pharmaceutical research. For medicinal chemists, the specific attachment points on the phenyl ring, plus the presence of the methoxy group, open doors to various substitutions without destabilizing the molecule. Medicinal libraries frequently require adamantane cores for metabolic stability, with functional handles for further derivatization.

    Our partners in custom synthesis note that this compound maintains integrity through Suzuki coupling, Buchwald-Hartwig amination, and etherification protocols. The bromine substituent, positioned at the 5-position, delivers predictable reactivity for cross-coupling—a detail often overlooked by those outside process development. The methoxy group at the 2-position improves selectivity and solubility for certain transformations. Each tweak, each functional group, serves a clear role in making synthesis more straightforward for those working at the bench.

    Bulk users have reported compatibility across a range of solvents—from DCM to toluene—without notorious issues like premature hydrolysis or problematic emulsions. This feedback loops back into our internal R&D, confirming the robustness of our process and the suitability of our chosen recrystallization protocol.

    Quality, Repeatability, and the Human Element

    No automation replaces the judgment honed by running kilogram-scale reactions year after year. Each run feeds back into our standard operating procedures, tightening our impurity profiles and reducing batch-to-batch fluctuation. Quality control relies on HPLC and NMR, but also on raw experience—odor, texture, ease of filtration. Our analytical chemists don’t stay in the office; they work at the interface of the plant floor and the lab.

    Unlike generic traders, we field calls about handling, late delivery, and the real headaches that spring up during scale-ups. We’ve seen what happens when a shipment arrives out of spec, and we maintain buffers for rapid response if anything slips past our controls. If a customer runs into solubility hiccups or reaction failure, our technical support doesn’t just cite literature; we’ve run the reactions ourselves. No faceless intermediary can substitute for an experienced technician who’s actually used the product.

    This connection—direct communication, real feedback—drives continuous improvement. Every new order brings a new opportunity to solve problems, refine protocols, and offer the sort of trust that comes from being both the maker and a user of our own chemicals.

    How Experience Shapes Better Manufacturing Outcomes

    Making 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane is less about following a recipe than it is knowing how to adapt that recipe when a variable shifts. Ambient humidity, a slightly different batch of raw bromine, or an unexpected heatwave can nudge a reaction off course. Our seasoned operators can tell when the reaction mixture “looks right”—a shade, a viscosity, a subtle precipitate. These small perceptions aren’t written in any manual, yet they protect quality far better than a checklist.

    During a scale-up, minor modifications—changing the stirring speed or ramping temperature more slowly—make a difference. We’ve dealt with glass-lining issues, product seeding, and solvent recovery hiccups firsthand. Success rests on addressing the unexpected, not just aiming for textbook yields under perfect conditions.

    Packaging also counts in the real world. Customers in humid or seawater-exposed regions require better sealing solutions; we’ve adapted by switching to multilayer liners for bulk shipments. Lithium-based desiccants introduced in these shipments have paid dividends in preserving product quality through extended warehousing and ocean transit.

    What Sets Our Product Apart: Lessons from the Lab and Field

    End users often share stories about the trouble caused by inconsistent halogenated intermediates from overseas consolidators. Some receive batches with off-colors or persistent odors—signs of leftover hydrocarbons or degraded bromides. Our direct-from-source batches display the color, particle size, and purity that users expect, and we make adjustments as needed when entering a new regulatory jurisdiction.

    We rely on simple indicators: does the product dissolve smoothly, does it melt within the target range, are there any unexpected exotherms during downstream use? Each question stems from field feedback over hundreds of deliveries and dozens of applications. If even one lot goes off, we investigate root causes ourselves, never relying solely on a testing certificate.

    For comparison, generic adamantane derivatives often come with less rigorous lot tracking, and some lack clarity on impurity profiles. Competitors might repackage lower purity versions with insufficient granularity on impurity nature. Since our batches often go into high-value downstream products, we track every lot, building a data trail from raw feedstock to final drum.

    Regulatory and Safety Commitment

    We’ve walked through rounds of regulatory submissions ourselves, not just reading documents from others. Jurisdictions vary, but safety fundamentals hold: avoid inhalation, prevent skin contact, and keep the product in secure, labeled containers. Our teams participate in regular safety drills, both for chemical handling and emergency containment. Understanding risks isn’t about finding the line between compliance and violation; it’s about knowing what keeps workers and end users safe.

    Our commitment goes beyond product—a relationship built on reliability, steady quality, and human support. The precision we bring to the synthesis and packaging of 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane reflects this direct accountability. Feedback flows straight to those responsible for corrective action.

    Looking Ahead: Listening to Innovation

    Pharmaceutical and fine chemical partners share plans for new applications — sometimes a simple request: “Can you tweak the methoxy position?” or “Have you tried alternative crystalline forms?” We welcome this dialogue, responding not only with feasibility assessments, but with experimental runs and honest reports on achievable outcomes. The ability to scale, adapt, and refine a process in real time stands at the core of our operation.

    This adamantane derivative might seem like just another intermediate on a catalog, but the work and vigilance that go into consistent, high-quality production make all the difference once it leaves our gates. The practical experience our people bring from bench trials, industrial synthesis, and field troubleshooting sets our product apart—and we take pride in earning trust one batch at a time.

    Summary

    Every shipment of 1-(5-Bromo-2-Methoxy-Phenyl)Adamantane represents a chain of judgment calls, lessons learned, and feedback from customers and our own team. From the first order to repeat deliveries, our focus stays grounded in real-world performance, hands-on experience, and a drive to improve the thousand small steps between raw material and finished lot. In an industry crowded with middlemen and generic suppliers, we stand out by committing to the craft of chemical manufacturing—making products that work, for professionals who rely on more than promises.