|
HS Code |
789840 |
| Cas Number | 1271-42-7 |
| Molecular Formula | C11H10FeO2 |
| Molar Mass | 226.04 g/mol |
| Appearance | Orange crystalline solid |
| Melting Point | 186-188 °C |
| Solubility In Water | Slightly soluble |
| Boiling Point | Decomposes before boiling |
| Density | 1.63 g/cm³ |
| Synonyms | Ferrocenecarboxylic acid; Carboxyferrocene |
| Iupac Name | Ferrocenecarboxylic acid |
| Storage Conditions | Store at room temperature, protected from moisture |
| Pka | 4.2 |
| Hazard Statements | May cause skin and eye irritation |
As an accredited Ferrocenecarboxylic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Ferrocenecarboxylic Acid is packaged in a 25-gram amber glass bottle with a secure screw cap and hazard labeling. |
| Shipping | Ferrocenecarboxylic Acid should be shipped in tightly sealed containers, protected from moisture and light. It must be labeled as a chemical substance, handled by authorized personnel, and transported according to local and international regulations. Appropriate hazard labels and documentation should accompany the package to ensure safe and compliant delivery. |
| Storage | Ferrocenecarboxylic acid should be stored in a tightly sealed container, protected from light and moisture. Store it in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizers and bases. Properly label the container and keep it away from food and drink. Follow all safety guidelines and local regulations for handling and storage. |
Applications of Ferrocenecarboxylic Acid in Industrial ManufacturingFerrocenecarboxylic acid serves as a specialty organometallic intermediate with proven, high-value applications in advanced industrial segments. Below, we present sector-focused application scenarios detailing regulatory standards, formulation practices, integration points along production lines, and the specific types of finished products manufactured using this compound. 1. Advanced Organic Synthesis for Pharmaceutical IntermediatesResearch-based pharmaceutical companies employ ferrocenecarboxylic acid as a building block during targeted synthesis of organometallic pharmaceutical intermediates, particularly in projects requiring stable ferrocene derivatives for electroactive therapy agents or as advanced precursors in chiral auxiliary synthesis. Controlled use within GMP frameworks ensures traceability from intermediate to active pharmaceutical ingredient (API) conversion. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Catalyst Precursor in Polymerization ProcessesChemical manufacturers utilize ferrocenecarboxylic acid as a functional ligand or precursor for metallocene catalyst production, supporting controlled polymerization of specialty polyolefins and advanced engineering plastics. The unique electron-rich ferrocene core imparts enhanced catalyst stability and tunable activity, which enables precision in molecular weight distribution and polymer microstructure. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Corrosion-Resistant Coating AdditivesManufacturers formulate high-performance corrosion inhibition systems by introducing ferrocenecarboxylic acid as an anodic corrosion inhibitor in waterborne or solvent-based industrial coatings. The strong electron-donating capacity and redox properties support formation of passive films on metal substrates, reducing corrosion rates even in aggressive chemical environments. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Analytical Reagent Manufacturing for Redox AssaysProducers of specialty chemical reagents incorporate ferrocenecarboxylic acid as a key standard in analytical kits and electrochemical assay reagents, supporting precise calibration of redox-active species in research or quality control environments. The well-defined redox potential, high chemical purity, and batch-to-batch reproducibility are crucial for dependable test outcomes and method validation. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
5. Electronic Material Synthesis for Functional Thin FilmsProducers of advanced electronic materials use ferrocenecarboxylic acid to synthesize redox-active thin films and molecular layers for organic electronics and sensor components. The carboxylic functional group facilitates robust self-assembled monolayer formation on conductive substrates, improving film adhesion and delivering reliable electronic coupling characteristics for device architectures operating under variable environmental conditions. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive Ferrocenecarboxylic Acid prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.
We will respond to you as soon as possible.
Tel: +8615371019725
Email: admin@sinochem-nanjing.com
Flexible payment, competitive price, premium service - Inquire now!
Every shift in the production line here brings its own set of challenges, whether refining a batch for academic research or tweaking the process to feed the demand for new catalytic applications. When it came time to bring Ferrocenecarboxylic Acid to the forefront of our R&D and production focus, many of us already knew its reputation among chemists as a functionalized organometallic that offers something the standard ferrocene simply cannot. Its carboxylic substitution, positioned right on the cyclopentadienyl ring, introduces a fresh level of reactivity and compatibility that’s drawn a growing crowd in both heterogeneous catalysis and advanced materials design.
From a manufacturer’s point of view, quality specification isn’t just about measuring another batch’s melting point or purity. We see the material right from the raw feedstocks—ferrocene, chlorocarboxylic acid reagents, solvents—and every team member watches for the slightest drift in color during the reaction or crystallization. Our standard batch of Ferrocenecarboxylic Acid usually falls within a purity window of not less than 98 percent, with an orange to deep red crystalline appearance and a typical melting range above 246°C. We never release any batch without fully confirming its proton NMR matches the theoretical profile, especially the unmistakable signals from the cyclopentadienyl rings and the carboxyl hydrogen. Impurities, if present, show up quickly in any application, and seasoned users notice how a slightly off-scent or extra fluorescence can indicate side-products that compromise results down the line.
On the factory floor, safety takes precedence while working with organometallic reagents. The handling of Ferrocenecarboxylic Acid stands apart from other substituted ferrocenes. Some derivatives pass for “low odor” or "easy handling," yet carboxylic acid functionalization means greater solubility in polar solvents, and water uptake becomes a concern during storage. Our workers monitor humidity exposures closely; small changes in water content cause shifts in crystallinity and even reaction yield for downstream synthetic work. Open-air transfer and weighing prompt immediate house-keeping and glove changes. Every batch certificate reflects our hands-on checks and gas chromatography readouts, because as direct manufacturers, we see performance concerns arise not from the textbook properties but from real-world process control.
Chemists in universities and R&D ask about Ferrocenecarboxylic Acid for its ability to anchor ferrocene units onto surfaces or linkers. With its carboxyl group, it connects cleanly to peptides, polymers, and silica supports through amide or ester formation. Direct feedback from teams using our material in peptide synthesis has highlighted the difference high-purity, batch-to-batch consistency makes in protecting reaction yields. Attempts to use generic or unspecified ferrocenecarboxylic acid sources often lead to variable coupling efficiency and increased side product formation—a frustration felt keenly when months of research ride on reproducibility. Knowing these stakes, our plant supervisors care personally about every specification benchmark, ensuring downstream users get material that makes their chemistry work, not just fill a container.
In battery and sensor development, engineers push for precision in the redox behavior of their materials. The carboxylic acid group modifies electron-donating characteristics compared to basic ferrocene, shifting redox potential and impacting current-voltage characteristics in actual device testing. Materials scientists have open channels to our technical staff, reporting the subtle shifts they observe in cyclic voltammetry traces and device readings. Each time our product specification sheet lands in an engineering team’s inbox, it reflects both theoretical and empirical validation—real device results checked by researchers from the fields we serve, using the material made under our roof.
Looking back at years producing both classic ferrocene and its carboxylated derivatives, the differences emerge most clearly during solubility and reactivity in the lab. Pure ferrocene, for all its stability and color, resists most chemical derivatization; its uses stay mostly in low-reactivity catalysis, anti-knock agents, or as a redox standard. Add a carboxylic acid group, and a door opens for direct chemical linkage, classic peptide coupling, and surface modification across nanomaterials.
During using standard ferrocene, users often mention trouble in bringing it into aqueous or polar organic media. The carboxylated version, on the other hand, disperses well in DMF, DMSO, methanol, and even certain buffered aqueous solutions, with proper pH control. We’ve worked closely with buyers scaling up their processes, finding that each solvent shift introduces different dissolution rates and filtration needs. Our line staff notes that pure, finely-crystallized batches save time in lab preparation, with less grinding or forced dissolution under heat. Feedback from a pharmaceutical partner pointed out how the carboxylic group supports stable salt formation with common bases, which was a breakthrough compared to the instability they experienced alongside unsubstituted ferrocene.
Ferrocene derivatives with other functional groups—methyl, formyl, nitro—have their own advantages, but reliability in peptide, polymer, or thin film chemistry makes the carboxylic acid functionalization a first choice among researchers and pilot-line innovators. Our technical team has responded to requests for distinct polymorphs, particle sizes, or co-crystallized forms. Each adaptation means more than a tweak to an equipment setting—it’s a behind-the-scenes commitment to quality by personnel directly invested in the outcome.
Synthetic routes to Ferrocenecarboxylic Acid present genuine manufacturing demands. The most widely-used cyclopentadienyl carboxylation reaction generates not only the target compound but also a stream of potential byproducts—over-carboxylation, decarboxylated remnants, oxidized impurities. Process technicians watch for shifts in reaction exotherm or solvent evaporation that could skew selectivity. Each upset, no matter how small, starts a round of team troubleshooting: tracing raw material differences, glassware conditions, and even subtle changes in operator technique.
While quality assurance checks guarantee analytical standards, nothing replaces the first-hand vigilance that experienced staff bring to the floor. Looking back at batches that missed spec by a couple of tenths on the melting point, senior technicians recall which lot of starting ferrocene came through, how reagent additions timed out, and even atmospheric disturbances that can impact yields for air-sensitive steps. Dehumidifiers, in-line sensors, and staff training act as our front line against these variables. Improving consistency means investing in both continuous equipment upgrades and ongoing staff education—not just throwing automation into the workflow and assuming it will solve every problem.
Sustainability also plays a role in shaping how we approach scale. Disposal of unused reagents and process solvents from Ferrocenecarboxylic Acid synthesis once followed industry norms of simple off-site shipping. Environmental regulations have tightened, and the team now recovers and recycles organic solvents or applies secondary treatments before disposal, reducing the overall environmental impact of production. Conservation decisions don’t just happen at the manager’s desk—line workers and maintenance supervisors see where waste can be cut. These grassroots suggestions enter our process audits and end up making the operation greener with every production cycle.
Our direct connection to both development labs and end-users shapes day-to-day operations. Phone calls with a university lab in need of highly pure batches for electrochemical studies, or troubleshooting a polymer project facing reactivity issues, highlight manufacturing’s value beyond specs on a website. Watching how a new process variable, say, a slightly extended crystallization time or a change in drying technique, impacts downstream analytical results, closes the feedback loop between the people making the product and the chemists putting it to use. We treat every bit of critical feedback as a prompt to adapt the process. Anomalies in a single NMR scan from a research group have led us to add extra checks along our production sequence and change how we store purified material.
Since many buyers return for multiple orders for academic cycles or ongoing pilot lines, we see the importance of continuity and traceability. It’s not uncommon for research leads to ask for exact replication of previous lot numbers for long-term comparative studies. We answer these requests by maintaining thorough batch records and open communication, so material properties remain predictable over months or years. In-house chemists and production staff regularly analyze not just isolated runs, but trends over time—melting points, color, FTIR signals, impurity levels—all tracked and reviewed as part of ongoing improvement.
Some market sources for Ferrocenecarboxylic Acid trace their goods through layers of resellers, leading to variable storage histories and uncertain handling. From our side, direct manufacture and distribution mean every batch ships straight from the main storage facility, maintained under controlled humidity and temperature. Technicians in charge of logistics check that each container matches batch IDs and documentation, so chemists on the receiving end know how a given sample was handled from the start.
Lab researchers have reported marked differences between our material and off-brand alternatives, not just in measured purity, but in color stability, solubility profile, and NMR clarity. Frequently, a research group facing yield drops or side reaction spikes finds improvement by switching to a properly verified, freshly-packed shipment from our factory. While some sources bundle material in ambiguous packaging, we use containers rated for organometallics, sealed against light and moisture, and labeled for easy lot tracking.
Ferrocenecarboxylic Acid started as a specialty additive, but the ambitions of today’s chemists and engineers continue to expand its uses. Our teams interact directly with projects at the interface of materials and life sciences, assisting in customized derivative synthesis, solubility troubleshooting, and experimental scale-up. Researchers — whether testing redox-active frameworks in smart materials or building the next generation of electrochemical sensors — turn to us not just for a product, but for answers backed by deep, firsthand experience.
Every month brings a new inquiry about modifications: attaching special side chains, tuning carboxyl group reactivity, or making the compound accessible for coupling in aqueous systems. Our technical leads assess the feasibility, estimate new process risks, and make small-batch runs for pilot trials. By keeping expertise in-house, we answer the real problems at the bench, not just fulfill catalog requests. More than once, a proposed specification or alternate packing configuration from a collaborator has led us to fresh internal innovation, improving the process for all customers.
Improvements in product quality and process efficiency never stop at the big shifts—automation, equipment upgrades—but in small fixes and everyday vigilance. A process engineer refining solvent addition protocols, a technician reporting residue stains from an unexpected polymorph, or a customer flagging long-term stability issues—all make up the living memory of our plant. Lessons drawn from each wrinkle get shared through on-site meetings, technical reports, and staff training routines, ensuring every production run carries hard-won knowledge forward.
Through years of interaction with users across continents, the team’s understanding of Ferrocenecarboxylic Acid has deepened far beyond its base structure and catalog description. Practical knowledge about solvent compatibility, the impact of trace impurities, and packaging improvements shape both product quality and the service delivered. Unlike third-party offering, the roots of our expertise come straight from the manufacturing floor, passed along by everyone from line operators to research chemists.
Manufacturing Ferrocenecarboxylic Acid isn’t just a technical challenge. The pride, strictness, and continuity built into every batch flow directly from the people who care about the final result. Our relationships with research and development professionals are valued, not as faceless sales but as genuine partnerships in scientific achievement. Every departing shipment reflects both a quiet confidence in our process and a commitment to keep raising the bar for reliability, quality, and user support.
While market trends and customer needs evolve, responsiveness and accountability remain constant. By controlling each stage of production—from buying the first drum of ferrocene to packing the last jar for dispatch—we can stand behind every gram that leaves the facility. End-users tell us their breakthroughs and setbacks, and each story informs the next batch for a sharper focus on what really matters in the lab or on the project floor.
Every gram of Ferrocenecarboxylic Acid reflects the work of hands-on staff who understand more than just the formula—they know the pressures of research deadlines, the difference a stable melting point makes, and how a minor impurity can derail downstream chemistry when left unchecked. Unlike mass-market models that rely on volume over value, our commitment circles back to personal accountability: phone calls answered by real technical staff, questions resolved by skilled chemists, and feedback treated as fuel for the next round of improvement.
For any chemist weighing sources for this compound, the distinction comes in both consistency and adaptability. No low-touch product description beats the assurance that material comes straight from a manufacturing line attentive to every stage, from chemistry to packaging. Long-term investments in staff, facility upgrades, and open dialogue with the research community ensure that with every shipment, users receive more than a reagent—they gain a piece of our manufacturing experience and direct investment in their results.