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HS Code |
421278 |
| Chemicalname | Cerium(III) Nitrate Hexahydrate |
| Chemicalformula | Ce(NO3)3·6H2O |
| Molarmass | 434.22 g/mol |
| Appearance | Colorless to pale yellow crystals |
| Density | 2.05 g/cm³ |
| Meltingpoint | 65 °C (decomposes) |
| Solubilityinwater | Very soluble |
| Casnumber | 10294-41-4 |
| Ecnumber | 233-580-7 |
| Odor | Odorless |
| Ph | Acidic (approx. 3.5 in 5% solution) |
| Stability | Stable under recommended storage conditions |
| Storageconditions | Store in a cool, dry place, tightly closed |
As an accredited Cerium(III) Nitrate Hexahydrate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Cerium(III) Nitrate Hexahydrate, 100g, packaged in a tightly sealed amber glass bottle with hazard labeling and product information. |
| Shipping | Cerium(III) Nitrate Hexahydrate is shipped in tightly sealed containers, protected from moisture and incompatible substances. It must be labeled as an oxidizer and handled with proper safety precautions. Transportation complies with local, national, and international regulations, often as a hazardous material, ensuring safe delivery and storage. Avoid extreme temperatures during shipping. |
| Storage | Cerium(III) Nitrate Hexahydrate should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from incompatible substances like strong acids and organic materials. Keep away from heat, moisture, and direct sunlight. Segregate from combustibles and reducing agents. Ensure proper labeling, and avoid physical damage to containers. Store at room temperature and minimize exposure to air. |
Applications of Cerium(III) Nitrate Hexahydrate in Industrial ManufacturingAs a direct manufacturer with consistent production quality control, we supply Cerium(III) Nitrate Hexahydrate for specialized, high-value industrial sectors. The following downstream application scenarios demonstrate its established roles in advanced materials, specialized coatings, polishing, and analytical chemistry, each governed by specific regulations, incorporation guidelines, and final market needs. 1. Glass Polishing Compounds for Optical and Electronic DevicesGlass processing companies integrate Cerium(III) Nitrate Hexahydrate in ceria-based slurries and powders during the precision polishing of optical lenses, display panels, and specialty tech glass. Its reactive properties chemically interact with silicon dioxide, enabling scratch removal and high-gloss finishes demanded by the electronics and optics sectors, with process control driven by international end-user specifications. Industry compliance standards
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2. Automotive and Architectural Glass Decontamination TreatmentsIn glass manufacturing plants, Cerium(III) Nitrate Hexahydrate supports surface decontamination treatments for removing stubborn stains, oxide residues, and molten tin residues from float glass lines. This chemical component ensures consistent glass clarity before downstream tempering, coating, or lamination, which directly impacts both aesthetics and performance lifecycle. Industry compliance standards
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3. Catalyst Precursor for Emission Control SystemsEnvironmental catalyst producers incorporate Cerium(III) Nitrate Hexahydrate as a precursor in the production of ceria-based solid oxide catalysts for catalytic converters, diesel particulate filters, and industrial exhaust treatment modules. Its role is essential in providing source cerium for redox support, oxygen storage, and promoting the long-term thermal stability of final catalysts in compliance with emission control frameworks. Industry compliance standards
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4. Analytical Chemistry Reagent for Titrimetric DeterminationsReagent manufacturers and certified chemical suppliers utilize Cerium(III) Nitrate Hexahydrate in the formulation of volumetric solutions for redox titrations, including iron(II), uranium(IV), and other rare element analyses. Its stability and well-defined redox characteristics under controlled conditions allow for consistent endpoint detection in testing, supporting high-accuracy quantification in laboratory and quality control environments. Industry compliance standards
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5. Specialty Coating Additive for UV-Absorbing FilmsCompanies in the advanced coatings sector adopt Cerium(III) Nitrate Hexahydrate as an ultraviolet shielding agent in sol-gel derived coatings and films. Its UV-absorbing capacity stems from the cerium ion’s intrinsic properties, improving long-term photostability of the coated substrates, which is crucial for automotive parts, protective eyewear, and high-performance packaging materials subjected to outdoor exposure. Industry compliance standards
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Every day on our production floor, Cerium(III) Nitrate Hexahydrate stands out as a reliable workhorse among cerium compounds. We handle it with the care it deserves, knowing it supports not just lab innovation but problems researchers and manufacturers deal with consistently. As a manufacturer who works with actual raw rare earth ores, we pay close attention to the consistency and reliability that chemists and process engineers expect.
We produce Cerium(III) Nitrate Hexahydrate directly from purified cerium oxide using nitric acid. The model most asked for by our clients comes with a Ce content of 99.9% minimum (on a rare earth oxide basis), and trace elements kept under strict limits. This cleanliness matters to many end users—whether fabricating glass, forming catalysts, or developing specialty coatings—because stray metals cause headaches down the line. Granular or crystalline, Cerium(III) Nitrate Hexahydrate forms translucent, free-flowing crystals that don’t clump if kept dry and cool. We test granular size, chemical composition, and loss on drying batch by batch, since real world applications depend on real repeatability. Small differences in hydration or trace impurities really do make or break a process in our experience.
Across decades of production, we’ve seen how material purity is much more than a spec sheet number. For example, glass makers care not just about main cerium content but about iron and copper traces. Even parts-per-million swings lead to unwanted glass color shifts or catalyst poisoning. By controlling every step from ore dissolution to recrystallization, we actively weed out contamination that would undermine a customer’s process. Our lab staff routinely tracks not just Ce, Fe, Cu, and Pb by modern ICP, but checks for subtle variables like chloride or sulfate carryover. These details rarely make it into the marketing, but customers doing high-value synthesis or surface finishing definitely notice.
Most buyers have clear goals—glass polishing, UV-shielding glass, water treatment, or catalysis for organic synthesis or hydrogen peroxide decomposition. We’ve supplied Cerium(III) Nitrate Hexahydrate into these industries long enough to watch their needs evolve. In glass polishing, users rely on cerium’s strong oxidation power and fine crystal size to avoid scratching. In specialty coatings, purity and solubility trump all as process yields depend on both.
Catalyst makers often approach us not just for bulk quantity but for trial batches tailored down to the impurities. Over time, we’ve built batch history that shows exactly how standards link to performance outcomes: run-to-run color changes, inconsistent thermal stability, and reaction yields all tie back to what’s inside the drum. Beyond established applications, newer customers in electronics and nanomaterials push for even tighter controls on trace yttrium, lanthanum, and heavier rare earths. Their specs can appear excessive on paper, but from our seat, small variations at the supply stage ripple into big effects on advanced surface modification or energy storage research.
Cerium(III) Nitrate Hexahydrate demands careful handling because of its hygroscopic character and moderate solubility. In our plant, we see caking or decomposition only when corners get cut with container sealing or storage humidity. Silica gel sachets and double-seal packaging are non-negotiable to prevent uptake of moisture, so we always pack in airtight, double-lined drums or HDPE bottles—never standard cardboard. In shipping, we warn about temperature swings that lead to condensation, so chain of custody isn’t just paperwork, it’s how you prevent avoidable loss.
Users should avoid mixing open containers with free air, as Cerium(III) Nitrate Hexahydrate can absorb water and clump. Repeated exposure to moisture not only changes bulk density but eventually breaks down the crystal structure, impacting both measurable purity and ease of dissolution. For long-term storage, closed containers in cool, dry rooms remain standard operating procedure. This prevents hydrolysis and extends shelf life far beyond nominal expiry dates, based on our stability tests under both lab and warehouse conditions.
Buyers sometimes ask if Cerium(III) Nitrate Hexahydrate is interchangeable with Cerium(IV) salts or cerium chloride. Over the years, side-by-side feedback from large customers and research partners has been clear. Nitrate salts dissolve easily in water and many polar solvents, which is not true for cerium oxides or hydroxides without aggressive treatment. Nitrate form supplies Ce3+ ions cleanly and leaves no unacceptable residue in glass or catalyst applications, unlike chloride traces that corrode or introduce halide contamination.
Cerium(IV) salts deliver higher oxidation potential, but they introduce color and instability problems when purity matters most. Cerium(III) Nitrate Hexahydrate stays colorless and remains more stable in storage if kept dry, avoiding those frustrating color shifts or sediment formation that users report with higher valence cerium chemicals. Our technical teams often guide new customers away from blanket substitutions and into material matching based on real-world outcomes rather than textbook anion properties.
Working in the chemical industry, we’ve witnessed rising attention to health, safety, and environmental compliance. Cerium(III) Nitrate Hexahydrate requires clear hazard communication. The nitrate content makes it an oxidizing agent and requires separation from flammable materials—something regulators and transporters always check. But compared with other chemicals used in glass making, water treatment, or electronics, cerium nitrate is relatively well understood and manageable when basic handling principles are followed.
Our teams coordinate with regulatory auditors and customer safety managers on documentation, labeling, and traceability. We avoid excess packaging and emphasize safe drum recycling, minimizing environmental impact at all steps. Rare earth sourcing carries its own responsibilities, so we trace incoming ore batches to ensure they meet both national and international guidelines for mining impact and radiation, staying ahead of growing sustainability demands.
Handling thousands of tons over many years, we’ve learned that customer feedback offers the best insight. If something is off—suspension cloudy after dissolving, odd pH behavior, visible particles—engineers reach out for supplier-side troubleshooting. Our process chemists dig into each batch record and frequently run counter-analyses, knowing that even small flaws affect downstream value. For example, we once tracked an issue in a glass customer’s process to a sub-ppm spike in sodium, traced back to pump seal wear at our plant—real-world details that only regular oversight reveals.
We build relationships with technical teams, often visiting user plants and labs, to see how our Cerium(III) Nitrate Hexahydrate blends into their actual workflow. Sometimes it means tweaking granulometry, sometimes it’s about packaging size or more robust outer containers. These seemingly minor adjustments, accumulated from years of experience, set the difference between delivering “just chemical” and providing the stable performance developers and process engineers count on.
Rare earth pricing can swing sharply because of mining quotas, energy costs, and global demand. In-house production gives us a buffer and steady source, so buyers aren’t exposed to whiplash with every news cycle. Regular investment in purification and process modernization lets us keep CeN3O9·6H2O production both high-quality and competitively priced, even as rare earths get more attention for energy and electronics.
Forecasting, of course, never gets easier, but we insulate customer demand by running planning models that balance spot market signals with real offtake numbers. We keep emergency inventory in strategic locations to support both large and small buyers. New projects in energy storage or electronics sometimes demand rapid ramp-up—our flexible batch reactors and packaging lines help us adapt to both long-term contracts and short-lead orders.
Plenty of alternatives exist for those working with cerium salts. Straight cerium oxide, for example, demands high energy input to dissolve and isn’t suitable for every catalytic or chemical synthesis. Cerium(III) acetate offers another entry, but the higher organic content can cause decompositional side reactions, and sometimes solubility falls short in select glass and surface engineering steps.
Our Cerium(III) Nitrate Hexahydrate strikes a balance by offering rapid dissolution, neutral color, and minimal organic or halide contaminants. Experienced technicians choose the nitrate hydrate for those reasons, especially wherever solution-phase chemistry or controlled precipitation forms the core of the process. Electron microscopy and high-purity glass applications show better outcomes with our consistently low Fe, Ni, and Ca readings. These aren’t just minor differences—months of batch-to-batch stability reduce troubleshooting, cut downtimes, and secure end-product quality claims that matter to every link in the chain.
Looking ahead, we already see emerging markets like automotive emissions, energy storage, and semiconductors adding fresh requirements. Demand for more controlled surface chemistry and ever-purer materials raises the bar. We participate in pilot projects that push sample purity toward nine-nines and below-ppm metal contamination, often extending analytical runs and tightening every filtration and drying step. By investing alongside our clients, we pass the improvements directly into industrial flows while keeping lead times in check.
We continue adapting Cerium(III) Nitrate Hexahydrate to match new technical requirements. Sometimes this means scaling up pilot lines for nano-cerium salt production, other times it’s about customizing crystal habit to suit niche metal-organic frameworks. Our growth, ultimately, is tied to listening closely and investing in both people and processes that give end users the flexibility to innovate. It’s satisfying seeing customers use our products not just to meet spec, but to push their fields forward—whether it’s controlling light absorption in advanced optics or finding safer, more robust catalyst supports.
Every drum or bottle shipped from our plant reflects years of technical experience and real customer feedback. Cerium(III) Nitrate Hexahydrate isn’t just an item on an invoice or a line in a laboratory protocol here. It’s a carefully managed material, one that rewards close attention and precise recipe control. Our ongoing investment in plant modernization and process oversight owes as much to our people’s pride as to market competition.
As researchers and engineers push further into smarter materials, environmental remediation, and new catalytic cycles, we’ll keep supporting their drive by offering Cerium(III) Nitrate Hexahydrate that stands up to scrutiny. We believe in direct feedback, open communication, and solving the real, ground-floor challenges our customers face. That’s the source of trust from labs, plants, and production lines worldwide who rely on our chemical and our commitment—batch after batch.