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Cobalt(II) Molybdate Anhydrous

    • Product Name Cobalt(II) Molybdate Anhydrous
    • Alias Cobalt Molybdate
    • Einecs 240-021-1
    • 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

    863326

    Chemical Name Cobalt(II) Molybdate Anhydrous
    Chemical Formula CoMoO4
    CAS Number 13768-15-5
    Molar Mass 218.89 g/mol
    Appearance Purple to violet solid
    Density 4.36 g/cm3
    Melting Point 890°C
    Solubility in Water Insoluble
    Crystal Structure Monoclinic
    Magnetic Property Paramagnetic
    Coordination Geometry Distorted octahedral (Co2+)
    Primary Use Catalyst or pigment
    Stability Stable under normal conditions
    Odor Odorless

    As an accredited Cobalt(II) Molybdate Anhydrous factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Cobalt(II) Molybdate Anhydrous, 100g, securely packed in a sealed amber glass bottle with hazard labeling and tamper-evident cap.
    Shipping Cobalt(II) Molybdate Anhydrous should be shipped in tightly sealed containers, protected from moisture and physical damage. Label containers with appropriate hazard warnings. Transport according to local, national, and international regulations for hazardous substances, ensuring compatibility with other materials and preventing spillage or contamination during transit. Handle with suitable protective equipment.
    Storage Cobalt(II) Molybdate Anhydrous should be stored in a tightly closed container, in a cool, dry, and well-ventilated area. Keep it away from incompatible substances such as strong acids and oxidizers. Protect from moisture and sources of ignition. Clearly label the storage area and restrict access to trained personnel only. Follow all relevant safety regulations and guidelines for chemical storage.
    Application of Cobalt(II) Molybdate Anhydrous

    Applications of Cobalt(II) Molybdate Anhydrous in Industrial Manufacturing

    Cobalt(II) Molybdate Anhydrous serves as a specialized inorganic component in multiple industrial sectors, where it supports selective oxidation, catalysis, and material property enhancement. As a direct manufacturer, we supply cobalt molybdate tailored for consistent quality, controlled particle distribution, and stringent compliance in regulated downstream environments.

    1. Hydrogenation and Dehydrogenation Catalysts for Petrochemical Processing

    Refining operations in petrochemical plants use this material as a precursor to hydrodesulfurization and hydrogenation catalysts. It provides a critical source of both cobalt and molybdenum for catalyst formulations applied in fixed-bed and slurry-phase reactors, enabling precise adjustment of activity and selectivity during sulfur compound removal and molecular hydrogenation. Catalyst producers integrate this compound to meet sulfur emission guidelines and maintain product quality throughout high-volume fuel processing lines.

    Industry compliance standards

    • ASTM D5762 for sulfur content in fuels
    • ISO 10478:2022 for hydroprocessing catalysts
    • REACH Regulation (EC) No 1907/2006
    • API RP 942 for material compatibility in refining

    Typical usage ratio

    • 2.5–7 wt% (calculated as Co, Mo basis) in final catalyst precursor mixtures, adjusted based on reactor type, desired HDS/HDN activity, and target impurity profile

    Downstream process integration

    • Catalyst compound blending initiated prior to impregnation on alumina or silica supports, then calcination under controlled atmosphere before loading in reactor units

    Final product types

    • Hydrodesulfurization catalysts (CoMo/Al2O3)
    • Hydrogenation catalysts for diesel and naphtha treatment
    • High-activity hydrotreating catalyst grades
    • Custom catalyst extrudates and powders for oil refinery use

    2. Advanced Ceramics for Electronic and Magnetic Components

    The electronics industry employs this compound as a dopant and colorant additive in advanced ceramic materials. Its presence in ceramic glazes and dielectric compositions contributes cobalt ions for enhanced electric, magnetic, and chromatic properties. Electronics manufacturers dose each ceramic batch depending on target dielectric strength and color uniformity, following strict batch record protocols for consistency in finished capacitors and magnetic cores.

    Industry compliance standards

    • IEC 60384 for fixed capacitors
    • RoHS Directive 2011/65/EU for hazardous substances
    • EN 60950-1 for electrical safety of ceramic-based components
    • JIS R1601 for ceramic dielectric materials

    Typical usage ratio

    • 0.2–1.5 wt% as a dopant or pigment in ceramic and glaze formulations, optimized based on base oxide system, color requirements, and targeted electrical characteristics

    Downstream process integration

    • Introduced during raw ceramic powder mixing and prior to calcination, or included in glaze slip blends prior to kiln firing, ensuring uniform distribution within matrix

    Final product types

    • Ceramic capacitors
    • Electronic insulators
    • Magnetic ferrite cores
    • Ceramic color-glazed components for resistors and microchips

    3. Chemical Synthesis Intermediate for Selected Organic and Coordination Compounds

    Fine chemical producers and research laboratories use this compound as an intermediate in complex chemical syntheses, especially in preparing coordination complexes and functionalized organometallics. The controlled moisture-free nature of the anhydrous form allows precise stoichiometric control in multi-stage reactions, crucial for producing catalysts, dyes, and specialized organic compounds where cobalt and molybdate serve as key reactive moieties.

    Industry compliance standards

    • CFR Title 40 (EPA) for chemical process handling
    • ISO 9001:2015 for quality systems in chemical synthesis
    • ICH Q7 for GMP in active pharmaceutical ingredient intermediates (as applicable)
    • Good Laboratory Practice (GLP) Guidelines

    Typical usage ratio

    • Stoichiometric application from 0.05 to 1.5 molar equivalents relative to target organic substrate; adjusted based on synthetic route, solvent system, and purification requirements

    Downstream process integration

    • Dosed at the initial or intermediate step of synthesis in glass-lined reactors or batch reactors, followed by phase transfer, filtration, or solvent exchange as per reaction protocol

    Final product types

    • Organometallic complexes for catalyst R&D
    • Specialty pigments and dyes for industrial use
    • Transition metal reagents for organic synthesis
    • Custom laboratory compounds for pharmaceutical and agrochemical intermediates

    4. Glass Manufacturing for Optical and Heat-Resistant Applications

    The glass industry employs this material as a coloring and functional additive, leveraging the specific blue hues and infrared absorption properties of cobalt oxides within glass matrices. High-performance technical glass manufacturers use precise dosing to achieve desired optical clarity and heat resistance, critical for specialty glassware used in laboratory, industrial, and lighting applications.

    Industry compliance standards

    • EN 1748-1-1 for glass in building applications
    • ISO 4802 for glassware chemical resistance
    • ASTM C1036 for flat glass production
    • RoHS Directive 2011/65/EU for product safety

    Typical usage ratio

    • 0.01–0.2 wt% in glass batch composition, depending on color tone, IR absorption, and base glass chemistry; adjustments made during batch formulation stage based on QC testing

    Downstream process integration

    • Added alongside other metal oxides during raw glass batch mixing prior to melting; thorough mixing ensures uniform distribution, followed by furnace processing and forming into final product

    Final product types

    • Optical blue and cobalt-glass laboratory glassware
    • Infrared-absorbing technical glass for lighting
    • Decorative colored flat and hollow glass
    • Precision optical elements and glass sensors

    5. Battery Manufacturing for Rechargeable Energy Storage Systems

    Lithium battery producers use this compound as a component in multi-metal oxide cathode precursor mixes. Cobalt and molybdenum contribute to the formulation of certain battery chemistries, particularly in research pilot lines optimizing cathode stability and conductivity. Strict control during precursor blending and calcination delivers uniform active materials critical for battery cell consistency and lifecycle performance.

    Industry compliance standards

    • IEC 62660 for secondary lithium cells
    • UN 38.3 for battery transport regulations
    • ISO 9001:2015 for QA in battery manufacturing
    • GB/T 31484 for cycle life requirements in automotive batteries

    Typical usage ratio

    • 0.5–3 wt% integrated into cathode precursor blends; precise dosing based on desired electrochemical profile, pilot line results, and targeted cell energy density

    Downstream process integration

    • Material introduced during initial cathode slurry mixing with nickel, manganese, and lithium sources; followed by high-temperature calcination and powder classification prior to electrode fabrication

    Final product types

    • Lithium-ion battery cathode powders (research grade)
    • High-performance secondary battery cells
    • Prototype batteries for grid storage and e-mobility
    • Custom multi-metal oxide rechargeable cells
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    Certification & Compliance
    More Introduction

    Cobalt(II) Molybdate Anhydrous: A Manufacturer’s Perspective

    Understanding Cobalt(II) Molybdate Anhydrous and Its Real-World Value

    Standing on our production floor, you quickly see that chemical manufacturing isn't just about running formulas or pushing out tonnage. It’s about carefully tuning every input, every reaction, and protecting the reliability and purity of what leaves our facility. Our work with cobalt compounds goes back decades, and among them, Cobalt(II) Molybdate Anhydrous offers a unique junction of performance, stability, and process flexibility that our clients across industries keep coming back for.

    This compound, forming a deep red-violet powder at room temperature, has an established place in inorganic chemistry. Through controlled synthesis in carefully managed environments, we achieve the tetrahedral structure that distinguishes Cobalt(II) Molybdate Anhydrous from other transition metal molybdates. Its key model for us, from a chemical structure point of view, is CoMoO4, consistently maintained in its anhydrous form both for easier handling and higher purity.

    Why Model and Purity Make All the Difference

    In industrial catalyst manufacture and ceramic pigmentation, the details matter most. Chemists and production managers who buy directly from us demand a predictable product. They need Cobalt(II) Molybdate Anhydrous whose morphology is known, with low trace-metal contamination, and without unpredictable hydration levels. We leverage high-temperature solid-state reaction methods and a tight control over raw material inputs. Our quality control checks every batch for consistent morphology and verifies that the anhydrous phase dominates. These steps matter because incomplete reactions or unwanted side products can cripple yields downstream or skew research data.

    Some clients have asked us to explain how Cobalt(II) Molybdate Anhydrous compares with hydrated forms or related cobalt/molybdenum blends. Unlike hydrates, which often contain water content up to 10%, anhydrous material exhibits greater shelf life and doesn’t introduce water-related issues when used in catalyst precursor blends. Moisture can cause clumping, difficult weighing, or react with other inputs, causing variability batch to batch. For ceramics and glass production, the absence of bound water means fewer processing artifacts and a clear signal on color development. We see this especially in industries demanding consistent pigmentation or electroceramic dielectric properties.

    Working Directly with Manufacturers: Why Downstream Performance Starts Here

    Manufacturing isn’t just about listing chemical names or packaging powders—it's about applying real-world knowledge to help customers get what they came for. Synthetic methods allow us to produce cobalt(II) molybdate to match demanding purity requirements. Each kilogram runs under the eyes of staff who have learned, through years at the reactors, how small variables matter. Our material targets a purity of 99% minimum and a particle size distribution—from sub-micron to around 10 microns—tailored for actual usage needs.

    Clients building catalysts count on fast, full dispersion in organic or aqueous systems. That only happens if we control particle aggregation and residual water. They have told us that cobalt-molybdate mixtures from less careful vendors lead to ongoing system fouling, incomplete dispersions, or underperforming active sites. By keeping batch-to-batch deviations below set thresholds, we protect customers from those headaches. Metallurgists working with battery or fuel cell material syntheses remark on how impure inputs force more downstream purification steps, raising costs. Our strict contaminant limits help shield their margins.

    Catalysts for hydrodesulfurization, the workhorse of modern refineries, rely heavily on the reliability of cobalt and molybdenum precursors. If supply inconsistencies creep in, plants are forced to run expensive screening or reprocessing steps. Small amounts of sodium, magnesium, or other cations can deactivate catalysts or introduce hazardous byproducts. We keep these below 200 ppm through repeated washing and careful sourcing, a level our refining clients know to request by name.

    Comparing Cobalt(II) Molybdate Anhydrous With Other Cobalt Molybdates

    Some users ask why not run with a hydrated or partially amorphous form. Through experience, we’ve seen what happens to shelf life, process throughput, or functional outcomes. Hydrated forms tend to pick up and lose water as storage conditions fluctuate. This unpredictability creeps in not only during storage but also in handling—the weight of a scoop today may not match the active ingredient tomorrow, as relative humidity changes. Anhydrous material, by contrast, brings stability you can plan around.

    For electronic component makers, crystalline phase purity stands high on the list of must-haves. Impurities and amorphous components can undermine dielectric performance or introduce defects in thin films. Our experience shows that even if analytical specifications look close on paper, only strict process control can stop phase impurities from ending up in finished goods. Differentiation here means repeatable, XRD-confirmed phase purity and a red-violet color matched to customer standards.

    Looking at other cobalt or molybdenum blends, such as double salts or mixed oxides, the a n hydrous forms often introduce improved thermal stability and predictable behavior under firing or calcination steps. For pigment makers and frit manufacturers, this means fewer surprises during blend preparation or following sintering. Customers who previously used less controlled blends reported variable pigment intensity or uneven firing results—outcomes we sidestep by obsessive phase and moisture control.

    Practical Uses of Cobalt(II) Molybdate Anhydrous in Modern Industry

    The most common sector for Cobalt(II) Molybdate Anhydrous is catalyst production. In hydroprocessing, petroleum refiners blend our product into base catalysts, activating it through sulfiding with H2S gas. The resulting catalyst beds can remove sulfur compounds from crude feeds, pushing down emissions and keeping fuels within regulatory limits. With consistent anhydrous powder, customers have said their catalyst activity holds steady across multiple charge cycles.

    Glass and ceramic manufacturers have other needs. They demand a pigment that brings reliable, bold color to glazes or enamel coatings, without bleeding into other hues. Cobalt(II) Molybdate Anhydrous imparts a rich, distinctive tint driven by its crystal structure; with our tightly controlled process, every batch matches a standard, leaving no guesswork at the mixing station. By sticking to a single anhydrous form, we eliminate color variation caused by trace water or particle size shifts.

    Electronics and energy storage industries chase materials for anodes, supercapacitors, or specialty dielectrics. Cobalt and molybdenum bring high redox stability and broad voltage windows, if you get the starting powders right. Companies working with advanced ceramics or functional components report that shift in phase or trace impurity undercuts device consistency. We collaborate closely with engineers from these sectors, dialing in particle size distributions and confirming batch reproducibility. Product performance on the line reflects what’s happening on our shop floor—scrutiny and tight tolerances from start to finish.

    From Batch to Batch: What Controls Process Reliability

    The core principles behind our Cobalt(II) Molybdate Anhydrous lie in attention to the full production cycle. We start with high-purity precursor selection, sticking to vendors with clear provenance on their starting salts. The blending, calcining, and post-treatment steps happen in reactors where parameters like temperature, agitation speed, and residence time are logged on a by-batch basis. We avoid direct contact with atmospheric moisture at every stage after calcination. Material cools under controlled gas flow, heads directly to sealed packaging, and leaves our plant labeled with batch traceability and run IDs.

    Certification isn’t about ticking a box—it means that for each shipment, our analysis tracks elemental composition, residual moisture, and crystal phase percentages. Only full anhydrous, crystalline CoMoO4 leaves our site. Analytical tools like X-ray diffraction and ICP-OES confirm the work. We encourage customers to audit our processes or request third-party compositional tests. Years of these open practices built trust with customers, who keep coming back rather than bouncing between suppliers looking for short-term savings.

    When handling customer feedback, we stick with open lines. Clients who encounter unusual performance can reach staff who know the reactor conditions for their specific batch and the underlying reasons side batches might behave differently. If a batch exhibits abnormal color, flow, or moisture, we look up its full synthesis record. Mistakes get flagged across the process, and lessons carry forward into the next run. We urge experienced users to tell us how our powder performs in their reactors, coatings, or blends, feeding that info back into the production side so each next batch is sharper.

    Facing Industry Challenges: Quality, Consistency, and Emerging Demands

    Industrial users set a high bar for cobalt compounds because the cost, reliability, and safety margins all rely on consistency at scale. Over time, we've seen interest shift from large batch buying to customer-specific specification matching. Increasingly, regulation around trace metals in catalysts or ceramics requires us to enhance workflows: temporary process water gets filtered, dryers run with dehumidification lines, and regular audits check against environmental standards.

    Supplying high-purity molybdate isn’t as simple as ordering generic salts and blending in a drum. Cobalt precursors sometimes deliver with small unintended shifts—too much base during neutralization, or contaminating ions from reaction vessels. Our staff keeps logbooks, tracks input lots, and tests for metals like magnesium, copper, or lead that could affect sensitive users. This systematic record-keeping, paired with a willingness to adjust process on-the-fly for urgent orders or new purity specs, sets manufacturers apart from traders stuck with stock inventory.

    Pressure from downstream users in energy storage or advanced ceramic fields also means new process standards. CoMoO4 might seem like a commodity, but it’s become a specialty item for those turning out lithium-ion or sodium-ion battery parts. The tolerance for particle size variation, phase impurity, or off-odor powder dropped in the past decade. Collaborating with cell engineers at the design stage, we adjust calcining profiles for tighter grain size or tweak purification to solve an application problem before it causes a field recall.

    Real-World Solutions: Production and Process Innovation

    Scaling precise chemistry past the kilogram or ton scale takes more than academic knowledge. A production team learns to anticipate moisture pickup on humid days, to stagger reactor loadings to avoid cross-contamination, and to implement negative-pressure packing rooms. Our experience taught us that small-scale lab specs don’t always translate at metric ton levels. Drying time, agitation, and scale of mixing must be re-validated through actual production runs. Each new large order brings opportunities to fine-tune and spot emerging risks.

    Problems sometimes crop up as supply chains tighten, or regulations evolve. Customers focusing on eco-label ceramics reported new bans on certain trace metals. Our team responded by running additional purity cycles, replacing vessel linings, or switching to more inert reactants. If pigment users request trace element matching for color consistency (say for automobile enamel), we sample output more frequently and expand the battery of tests per batch. For energy applications with narrow tolerance bands, we’ve sourced alternative input salts and retested process endpoints to maintain compliance.

    Innovation on the production end ties directly to new research fields. As universities and industry groups explore new battery chemistries or high-performance catalysts, we engage directly, providing sample lots, technical feedback, and even hosting visiting chemists at our plant. Feedback from these collaborations gave us new targets for water, particle size, or impurity limits. The resulting improvements do more than secure business—they drive the wider field forward, one controlled batch at a time.

    Maintaining High Standards in a Competitive Landscape

    In markets full of bulk suppliers and intermediaries who never set foot in a reactor room, manufacturers like us keep production close and information transparent. Buyers who have tried generic, stock inventory often return to direct producers to resolve persistent process problems. By sticking with in-house process control, constant testing, and willingness to tweak based on user feedback, manufacturers like ours keep a reputation for reliability in Cobalt(II) Molybdate Anhydrous supply.

    As competitors emerge and pressure to lower costs rises, we resist shortcuts such as loose contamination controls, minimal drying, or running only basic quality checks. Every lesson from customer reports—whether a pigment runs under or oversaturated, or a catalyst batch underperforms—funnels straight back into our raw material sourcing and reactor controls. Having a flexible yet accountable approach allows us to keep pace with new industry demands while safeguarding our historical commitments to legacy customers.

    The Edge of Direct Manufacture: Insights from Experience

    Being close to the chemistry pays off for users on the other end. Over the years, we’ve seen the direct effects of small changes—a tweak in molybdenum sourcing, an update to cobalt salt concentration, or a switch in drying technology. Customers relying on robust, high-quality powder to mix with organics or fire in kilns notice even the tiniest shift. Open feedback loops and willingness to adopt process improvement make the difference between routine production and supply interruptions.

    The connection with frontline users, be it pigment specialists, catalyst engineers, or battery researchers, shapes the priorities of our staff. Every special request or performance report gives direct input into updated spec control and batch documentation practices. We avoid chasing the lowest bid cycle. Instead, our goal remains delivering reliable, consistent, data-backed Cobalt(II) Molybdate Anhydrous to those whose workflows depend on it. Customers appreciate knowing the process behind what goes into their reactors or kilns.

    Looking Ahead: Meeting New Applications and Broadening Value

    Industry needs keep evolving, and so do expectations for specialty cobalt compounds. As researchers and product managers look to develop greener batteries, stronger ceramics, or lower-polluting fuels, we keep a close watch on where demand pushes next. Pilot batches, new analytical technology, and tighter coupling between synthesis and application drive forward what gets made.

    Our history with Cobalt(II) Molybdate Anhydrous stands not just on the basics of purity or phase confirmation, but on clear, honest relationships with the users who trust their process to us. Every batch shows the commitment to process rigor and practical problem solving that separate committed manufacturers from repackagers or traders. Through transparent operations and continuous learning, we keep making a difference for industries relying on materials that perform under pressure.

    As new fields call for higher standards—be that energy storage, emissions controls, or advanced functional ceramics—we stand ready to work side by side, keeping pace with changing expectations. Each day in the plant adds another layer to what we know about producing and supplying reliable, high-quality Cobalt(II) Molybdate Anhydrous, and the value of staying close to both the chemistry and the people who count on it.