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HS Code |
672081 |
| Chemicalname | 3,5-Dimethyladamantane-1-Carboxylic Acid |
| Molecularformula | C13H20O2 |
| Molecularweight | 208.30 g/mol |
| Casnumber | 76892-90-5 |
| Appearance | White to off-white solid |
| Meltingpoint | 203-205°C |
| Purity | Typically ≥98% |
| Solubility | Insoluble in water, soluble in organic solvents |
| Density | Approximately 1.1 g/cm3 |
| Storageconditions | Store at room temperature, tightly closed container |
| Smiles | CC1C2CC3CC(C2C(C1)(C3)C(=O)O) |
| Inchi | InChI=1S/C13H20O2/c1-8-6-9-4-10(8)13(7-9,12(14)15)11(2)5-8/h10-11H,4-7H2,1-3H3,(H,14,15) |
As an accredited 3,5-Dimethyladamantane-1-Carboxylic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | A 25-gram amber glass bottle, tightly sealed with a screw cap, labeled “3,5-Dimethyladamantane-1-Carboxylic Acid” and safety information. |
| Shipping | 3,5-Dimethyladamantane-1-Carboxylic Acid is shipped in tightly sealed, chemical-resistant containers. Packages are labeled according to regulatory standards and handled as non-hazardous, but care is taken to prevent exposure and contamination. The product is protected from moisture, sunlight, and heat during transit to ensure chemical stability and integrity. |
| Storage | Store **3,5-Dimethyladamantane-1-carboxylic acid** in a tightly sealed container, in a cool, dry, and well-ventilated area, away from direct sunlight, heat, and sources of ignition. Avoid exposure to moisture and incompatible materials such as strong oxidizing agents. Clearly label the container and keep it in a designated chemical storage area compliant with relevant safety regulations. |
Applications of 3,5-Dimethyladamantane-1-Carboxylic Acid in Industrial ManufacturingAs a manufacturer specializing in high-purity polycyclic carboxylic acid derivatives, we supply 3,5-Dimethyladamantane-1-Carboxylic Acid to advanced industrial sectors that demand precise structural attributes for their end products. Below, we present in-depth application modules based on real-world downstream manufacturing scenarios, with technical details relevant for formulation, compliance, and integration. 1. Pharmaceutical Intermediate for Antiviral API SynthesisMajor pharmaceutical companies use this compound as a key intermediate in synthesizing adamantane-based antiviral and neurological active pharmaceutical ingredients. The rigid adamantane moiety imparts metabolic stability and optimized lipophilicity to finished drug molecules. Strict traceability and purity assurance underpin the entire supply chain from raw material qualification through to regulated finished dosage production. Industry compliance standards
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2. High-Performance Polymer ModifiersSpecialty polymer producers leverage the rigid, thermally stable structure to modify advanced engineering resins, especially in applications requiring enhanced dimensional stability and thermal resistance. The acid group enables covalent bonding to polymer backbones or crosslinkers, making this raw material valuable in both copolymer and crosslinked resin manufacture. Industry compliance standards
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3. Organic Electronic Materials SynthesisManufacturers of organic electronic components employ this compound as a building block for molecular design of charge-transport and barrier materials. The adamantane cage confers rigidity and bulk that supports tuning the energy levels and stability in organic light-emitting diodes (OLEDs), organic photovoltaic cells, and flexible circuit materials. Industry compliance standards
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4. Specialty Coatings and Surface Treatment AdditiveCoatings formulators apply this acid as a component in high-durability films and anti-abrasion layer development. The unique three-dimensional adamantane structure improves crosslinked network density, UV resistance, and wear performance in both solventborne and waterborne systems, serving high-end electronics, optics, and industrial equipment markets. Industry compliance standards
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In the specialty chemical space, every compound brings its own story shaped by painstaking development, back-and-forth with researchers, engineers, and that inevitable learning curve every time a new molecule joins our product lineup. We manufacture 3,5-Dimethyladamantane-1-Carboxylic Acid from the perspective of years in this field, not simply relabeling a drum and shipping it on. In our plant, this product goes through a dedicated synthesis and purification process, monitored at every stage by real people who know what to watch for. Small tweaks can make the difference between a batch that meets a pharmaceutical company’s needs or one that’s off-target by a few parts per million.
Physical consistency, color, and odor are not minor details—they’re the signifiers our QA team relies on before a batch moves to packing. The acid we offer typically comes as a white, crystalline solid, noticeably stable thanks to the rugged cage-like adamantane backbone and the methyl substitutions at the 3 and 5 positions. We control moisture and impurities rigorously to support sensitive end-uses, especially where purity drives outcomes, such as in research chemistry or custom synthesis for more complex molecular builds.
In our shop, specifications start with real-world measurement and tight records. Our typical batches of 3,5-Dimethyladamantane-1-Carboxylic Acid register a minimum purity above 98% by HPLC, often higher, since it takes very little contamination for an adamantane carboxylic acid to fall short in downstream processes. Melting point usually falls consistently in the 220–225°C range. Every drum carries batch-specific documentation, and we always retain a reference sample for any questions that may come up down the road.
We understand particle size does not just affect how a powder handles; it changes how it reacts and dissolves. By careful crystallization and controlled drying, we make sure our product delivers a balance between ease of handling and suitability for further processing steps, whether it’s in formulation labs or pilot plants. Because our customers come from both academic research and industrial settings, we adjust product form and packaging size, but never the fundamental controls over process and analysis.
3,5-Dimethyladamantane-1-Carboxylic Acid finds its way into a variety of labs and specialty manufacturing set-ups. The adamantane scaffold forms the backbone of many modern drug and materials molecules. The extra methyl groups at 3 and 5 give this variant both exceptional steric stability and unique reactivity compared to more common adamantane derivatives.
We see requests from medicinal chemistry teams who appreciate the rigid, hydrophobic cage—admantane sometimes lends drug candidates resistance to metabolic breakdown. Some research groups pair our acid with amines to build up peptidomimetic structures or to test new ligands for coordination chemistry. In organic synthesis labs, carboxylic acids with such structural bulk are rare, and users report that this compound can serve as a useful intermediate where more accessible acid groups are prone to overreaction or unwanted side-product formation.
Colleagues in polymer research occasionally use 3,5-Dimethyladamantane-1-Carboxylic Acid as a starting material for functional polymers, sometimes targeting new cross-linked structures, or exploring the steric bulk that adamantane rings provide to restrict undesired molecular motion. The combination of rigidity and resistance to typical chemical degradation opens doors for applications that less-hardy backbones can’t handle. Sometimes, users will reach out for feedback or small modifications—they count on us for batch-to-batch consistency, and those conversations help keep our manufacturing responsive to real needs.
There are several adamantane carboxylic acids on the market, but the methyl substitutions on 3 and 5 positions mark out this material for its particular utility. Those extra methyl groups are not just cosmetic—they make the parent cage more hydrophobic, bulkier, and less reactive at sites prone to unwanted substitutions. That’s a significant distinction from plain adamantane-1-carboxylic acid, which remains more reactive but sometimes suffers from lower thermal and hydrolytic stability.
We also work with more heavily substituted adamantane derivatives, including those with amine or hydroxyl groups at the 1-position, or mixed halogen substitutions. The 3,5-dimethyl version stands in a balanced spot—enough bulk and electron-donating environment to steer reactivity, but not so much steric hindrance that it limits functionalization in downstream applications.
In practice, some customers who have switched from 1-carboxylic acid without methyl substituents find that yields in certain coupling or esterification reactions improve due to increased selectivity or better solubility in chosen reaction solvents. Each substituted variant comes with its own quirks, so choosing the right adamantane derivative should match application, which is typically an in-depth discussion rather than a catalog selection.
A reality of producing specialty carboxylic acids like this is the number of tiny steps that can go wrong. Controlling moisture requires shut-downs for line drying and record-keeping auditable back to source solvents. We’ve invested in fractional distillation columns to recover solvents that fit the unique requirements of adamantane compounds, rather than relying on generic off-the-shelf recapture hardware.
Even though the adamantane core provides excellent stability, the methyls at 3 and 5 add unexpected challenges during the final crystallization; cooling rates and solvent blends have to be just right, or the product forms undesired polymorphs or sticky intermediates. Staff in the finishing area have learned from trial and error about subtle cues—how a batch “snaps” visually as crystals form, or whether a certain sweetish odor means potential contamination. These practical skills support specifications but cannot replace them. Across many batches, we record what works, what doesn't, and continuously update our SOPs to reflect those hard-learned lessons.
We also field the recurring question: why does our product sometimes cost more than bulk adamantane acids? Besides raw materials and specialized synthesis, our cleaning and changeover protocols between product lines demand both time and attention; we avoid cross-contamination because a single impurity can spoil reactions downstream, costing customers far more in lost time than any minor difference in up-front pricing. By supplying technical data with every shipment, we help users head off analytical questions and regulatory filings instead of leaving them with guesswork.
We base our approach on both compliance and capability. Handling a carboxylic acid with an adamantane core isn’t just a regulatory box to tick. We pay attention to waste treatment, solvent emissions, noise, and staff safety. We source raw materials from long-time partners with documentation and regular third-party audits; nothing enters our facility without traceability to its origin.
For customers in strict pharmaceutical or fine chemical spaces, we provide analytical reports, chromatograms, and descriptions of our purification routine. That includes not only standard COA information but also optional testing—sometimes covering non-routine contaminants or breakdown products. Reliability starts with physical product, but it builds long-term only through responsibility and trust. Our technical team fields follow-up questions directly, drawing on years (sometimes decades) of day-to-day manufacturing details rather than canned responses or bureaucracy.
We recognize the weight of E-E-A-T guidelines in an information-driven market. Expertise is a matter of track record, not just a list of specifications. Experience accumulates through production issues solved, customer feedback incorporated, and collaborative projects with academic and industrial chemists. Our authority rests partly in being listened to by others; trust, in being transparent about what any given batch can and cannot do. Chemical manufacturing is not a sector that rewards shortcuts or inflexible thinking.
Once material leaves our facility, its stability on the shelf rests on how we prepare and pack each batch. For 3,5-Dimethyladamantane-1-Carboxylic Acid, we seal container linings (usually HDPE or glass, depending on batch size) with moisture-resistant packaging, following careful weighing and double-checking against contamination. We track and label every unit with internal batch numbers, as a matter of both QC and traceability.
Storage recommendations reflect our hands-on knowledge: cool, dry areas away from direct solar heating and strong acids or bases. In our warehouse, we’ve seen overexposure to high local humidity affect flow and handling, which ultimately means waste, not to mention headaches when customers open packaging months later. We select container sizes based on production planning and end-use—our smallest are suitable for research users; larger drums head straight for pilot facilities. Shipping teams receive ongoing training, and they handle customs paperwork and approvals so shipments don’t get stuck at borders when labs are working against deadlines.
Having worked shoulder-to-shoulder with end-users, we know success with 3,5-Dimethyladamantane-1-Carboxylic Acid cannot be separated from a broader understanding of the processes trying to incorporate it. We answer process questions, provide pre-shipment samples, and review customer feedback closely. If a particular lot raises a false-positive in a customer’s HPLC system, if solubility under specific conditions looks off, or if a synthetic workflow falters, we don’t walk away with a ‘that’s not our issue’ attitude. Instead, we check records, dig back through our logs, and help customers clarify if the root is material or method.
The chemistry world is moving constantly, and specialty chemicals like this one sit between basic research and advanced manufacturing. Our technical teams participate in calls and roundtables—sometimes tweaking input recipes or introducing small procedural changes so a tough synthesis scales up more smoothly. Direct feedback loops, both positive and critical, shape how we keep refining our product quality and manufacturing efficiency.
The market for highly substituted adamantane acids continues to evolve. We’ve seen a strong push from both pharmaceutical developers and advanced materials companies looking for building blocks with both chemical and architectural rigidity. Even small tweaks, such as the addition of methyls at the 3 and 5 positions on the adamantane ring, can open up entire new classes of compounds—sometimes resulting in patent filings, or in improvements to existing material profiles.
As more data becomes available and supply chains shift, we keep refining both our process and the way we communicate with the technical community. There’s a growing expectation of openness and real-time support, not just aftermarket troubleshooting. Increasingly, users want to discuss mechanistic insight, batch-specific documentation, and collaborative improvement. We’ve adjusted internal and customer-facing communication accordingly.
Our long-term investments include pilot-scale reactors for custom runs, further analytical development (including NMR, LC-MS, and thermal analysis), and new approaches to green chemistry within the adamantane series. Ongoing R&D explores how further methyl or other substitutions can optimize properties like hydrophobicity, melting range, or reactivity.
Manufacturing chemicals that meet the strict requirements of research and advanced industrial applications takes more than regulatory compliance. We pursue a margin of safety and reliability that means we don’t wait for specifications to change before we improve a process. Our team routinely investigates even minor batch variances, and production operators continually feed findings back for upstream changes. This direct line between the “factory floor” and production management means few surprises reach our customers.
We involve our QC staff at every check, ensuring testing protocols adapt both to industry standards and to novel requirements that emerge from client projects. Historical batch records, long-term storage analysis, and customer post-use reports help predict potential product changes—such as color drift, flow challenges, or impurity trends—before they become issues. Trusted supply only comes from this kind of sustained and humble attention to detail.
The real value in manufacturing 3,5-Dimethyladamantane-1-Carboxylic Acid doesn’t stop at the point of sale. Our job means understanding how a product performs across multiple steps and in a range of environments. Whether serving as a precursor in a medicinal chemistry program, or as an additive in a complex polymerization, each user faces their own unique technical hurdles. We’ve developed an appreciation for how the journey from base chemicals to practical end results often takes more than just standardized protocols—it requires flexibility, well-honed judgment, and a willingness to respond quickly.
From time to time, a customer’s planned application shifts. They may discover an incompatibility, or encounter an unexpected side reaction. We encourage transparency from both sides—our team doesn’t shy away from advising users honestly if an alternative product or process step looks likely to give better results. Our approach values long-term partnerships over transactional sales. We like to keep an open door for collaboration, updates, and troubleshooting.
Working with 3,5-Dimethyladamantane-1-Carboxylic Acid, we see daily the benefits of specialization. The compound stands out from other adamantane derivatives—its increased steric hindrance, electronic environment, and predictable reactivity suit it to demanding synthetic challenges. These properties translate to improved yields, fewer by-products, and more robust chemical architectures for those working on the frontiers of research and innovation.
Every batch draws on accumulated experience, creative problem-solving, and the discipline that comes from repeated quality checks. We remain in close contact with researchers, application specialists, and production engineers who use this compound, and their insights feedback into our operation to make sure our product not only meets but anticipates future technical expectations. This ongoing cycle strengthens both our manufacturing team and the customers who rely on us for critical inputs in their own innovations.