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HS Code |
803559 |
| Chemicalname | Silver Metavanadate |
| Chemicalformula | AgVO3 |
| Molarmass | 226.80 g/mol |
| Appearance | Yellow to orange powder |
| Density | 5.03 g/cm3 |
| Meltingpoint | Decomposes before melting |
| Solubilityinwater | Insoluble |
| Casnumber | 13718-26-8 |
| Crystalstructure | Orthorhombic |
| Molecularweight | 226.80 |
| Odor | Odorless |
As an accredited Silver Metavanadate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Silver Metavanadate, 100g, is supplied in a sealed, amber glass bottle with hazard labeling, ensuring safe storage and transportation. |
| Shipping | Silver Metavanadate should be shipped in tightly sealed, corrosion-resistant containers, clearly labeled, and packaged to prevent spills and contamination. Transport must comply with hazardous material regulations, avoiding contact with incompatible substances. Ensure appropriate documentation and safety data are included, and protect the shipment from moisture and physical damage during transit. |
| Storage | Silver metavanadate should be stored in a tightly sealed container, away from light, moisture, and incompatible substances such as strong acids and reducing agents. Store at room temperature in a cool, dry, and well-ventilated area, away from sources of ignition or heat. Proper labeling and secure location are essential to prevent accidental exposure or environmental contamination. |
Applications of Silver Metavanadate in Industrial ManufacturingSilver metavanadate is a precision inorganic compound used in specialty applications where selectivity, high redox activity, and advanced catalytic or electrochemical functionality are required. As the direct manufacturer, we deliver material with consistent physical and chemical profiles suitable for integration into complex downstream processes. The following sections detail key industrial application scenarios. 1. Lithium-Ion Battery Cathode AdditiveBattery cell producers utilize silver metavanadate as a high-performance cathode additive in lithium-ion batteries, especially for specialty batteries requiring high energy density and unique discharge profiles. Its stable crystal structure, mixed valence state, and electrochemical redox properties can enhance charge/discharge cycling and overall output efficiency. Downstream manufacturers adjust dosing based on the electrode matrix composition, discharge rate requirements, and compatibility with electrolyte systems in advanced primary and secondary cell assembly lines. Industry compliance standards
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2. Catalytic Oxidation in Fine Chemical SynthesisSynthesis facilities employ silver metavanadate as a heterogeneous catalyst in oxidation reactions requiring selectivity for alcohol-to-aldehyde or alkyne functional group transformations. Its performance arises from its mixed oxidation states and surface reactivity, critical in multi-stage organic manufacturing, pharmaceutical intermediates, and dye chemistry. Formulators control loading and reactor conditions to maximize product yield and minimize unwanted by-products, adapting recipes to substrate and process scale. Industry compliance standards
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3. Solid-State Ion-Selective Sensor Element FabricationSensor manufacturers employ silver metavanadate in fabricating solid-state ion-selective electrodes, notably for analytical probes and environmental monitoring. Its defined response to redox-active analytes and ion-exchange characteristics align with sensor designs needing low drift, strong selectivity, and rapid response, particularly in detection of vanadate, silver, or related species. Strict control during electrode deposition, sintering, and encapsulation steps ensures predictable performance in critical analytical equipment. Industry compliance standards
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4. Photocatalyst in Advanced Oxidation Water TreatmentAdvanced water treatment plants use silver metavanadate as a critical semiconductor photocatalyst for removing organic pollutants and microbial contaminants. Its photoactive transition metal structure forms reactive oxygen species under UV or visible light, enhancing mineralization or disinfection in flow-through and batch reactors. Facilities closely manage catalyst loading, light dosage, and reactor hydrodynamics according to contaminant loading, target effluent quality, and local regulatory discharge requirements. Industry compliance standards
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Silver Metavanadate, with the chemical formula AgVO3, has earned its relevance in specialized markets by combining the catalytic activity of vanadium with the full conductivity of silver. Our factory brings years of practical experience crafting this unique compound for research institutions, battery innovators, and advanced materials development. We offer it under the designation AgVO3-PURE, in fine powder form, maintaining a purity level consistently above 99.9%.
Regular feedback from our industrial clients has sharpened our focus on what makes Silver Metavanadate distinctive. Unlike regular vanadates or traditional silver salts, this complex oxide delivers not just chemical reactivity, but also robust stability across a wide range of temperatures. During pilot synthesis, we experienced some challenges with silver’s easy reduction, so we developed techniques for oxidation control that preserve the crystal integrity. Maintaining oxidation state during the process defines effective manufacturing on our floor. That lends reliability to each shipment, letting customers repeat their results.
Routine chemical manufacture rarely tolerates mistakes. We noticed many earlier commercial supplies suffered from contamination, either due to inadequate washing or the presence of excess sodium vanadate. Our continuous filtration and proprietary drying system reduce these side-products to trace background. Every kilogram gets full-spectrum material analysis before packing. Our in-house XRD checks confirm the absence of commonly co-produced vanadate phases—monovanadate or polyvanadate—meeting expectations for pure AgVO3.
A lot of discussion with battery engineers showed that trace alkali ions, especially sodium, introduce unwanted conductivity and destabilize electrode formulations. Many traders and brokers overlook this, viewing material “in specification” if it simply passes a metals screen. As direct manufacturers, we sample batches from different reactors every week, making sure consistency passes real laboratory scrutiny. In batteries and sensor development, reproducibility means everything. Long-standing research relationships grew out of our willingness to supply custom particle sizes, from a sub-micron cut for surface-active needs to coarse powders for classical catalysis. This helps materials perform precisely as designed, not just on a single test but at scale.
Silver Metavanadate shows up most often as a cathode material for lithium and sodium batteries, exploiting silver’s natural conductivity and the multi-electron exchange of vanadium. Back in 2018, a leading university research group validated our AgVO3-PURE in high-voltage cell assemblies, observing lower impedance and a sharp reduction in capacity fade over cycling. They credited clarity of XRD phase and particle uniformity for the result. Other silver vanadates lacked this stability due to inconsistent oxidation states. We see repeat orders from both large manufacturing plants and boutique labs working on specialized energy storage prototypes.
Water treatment chemists purchase Silver Metavanadate for its oxidative capacities. Our own trials demonstrated high removal rates for refractory organics when AgVO3-PURE acted as a catalyst under mild solar irradiation. Lab comparisons showed twice the conversion activity versus more common sodium vanadate analogues. This difference came from silver’s capacity to shuttle electrons efficiently, speeding up intermediate breakdown. Some clients aim to formulate antimicrobial textiles or coatings, where silver ions release with greater control when anchored in a vanadate lattice rather than nitrate or acetate salts. Again, our end-to-end manufacturing oversight allows us to guarantee specific release rates, fitting the requirements of medical device and textile manufacturers.
Silver Metavanadate stands apart from silver nitrate, acetate, and basic vanadates primarily through its dual redox and conductivity profile. In our facility, years of side-by-side pilot testing consistently revealed: nitrate and acetate react quickly, suiting simple silver transfer needs, but they lack lasting structural stability or redox activity. Monovanadates offer some catalytic advantage, but without silver’s electron mobility, they struggle in electronic or energy applications. Only by combining both elements in the correct crystal structure does the material perform to its potential.
A second point: handling and storage. Silver nitrate quickly absorbs moisture and decomposes; it leaves a risk of brown-black stains and releases nitrogen oxides under mishandling. Our Silver Metavanadate powder, after proper drying, packs in tightly sealed HDPE drums and resists sluggish water uptake. We’ve learned through decades that downstream process control hinges on initial storage hygiene, so we enforce anti-static, humidity-controlled dispensing areas. This effort, although sometimes overlooked in pure sales channels, pays off during scale-up and integration into glovebox cell prep, where air sensitivity undermines reliability if unchecked.
Within vanadates, the ratio of vanadium to silver impacts both chemical and electronic features. Our process stabilizes the vanadium in the +5 oxidation state—essential for catalytic and battery chemistries. Some lower-grade products, whether due to cost-saving shortcuts or insufficient monitoring, persistently include reduced vanadium forms. We measure trace impurities on each lot. That’s not just a marketing point; missing this causes additional downstream purification, delays, or inconsistent results for customers. We decided years ago to avoid unnecessary additives, such as coloring agents or dispersants, ensuring that AgVO3-PURE integrates directly into both solution and solid-state applications free from residue concerns.
Scaling Silver Metavanadate manufacturing is not just about bigger reactors or faster output. Our own journey involved automating agitation and pH adjustment, as local fluctuations led to non-uniform nucleation and secondary vanadate formation. Attention to stirring regime translates to fewer agglomerates and improved dispersibility. Consistent batch processing, each supported by a full analytical lot report, creates accountability uncommon in the general chemical marketplace.
Traceable manufacturing delivers more than just peace of mind. By logging raw lot numbers, synthesis times, reactor conditions, and operator records, we troubleshoot any downstream issue within 24 hours of feedback. Several battery assemblers told us that working directly with the material source, rather than an anonymous distributor, meant much faster iterations and lower attrition in pilot lines. Universities setting protocols for advanced materials benefit from our willingness to adjust small parameters. Our policy opened new collaborations worldwide, with clients confident they could order the same quality year after year.
Modern chemical production must address sustainability. Silver and vanadium sourcing draw scrutiny for environmental impact—ours follows documented chains audited for responsible mining and refining. Local environmental standards, including effluent neutralization and waste minimization, guide our process at every step. Silver recovery from process water keeps losses in the parts-per-million range, and solid vanadium-bearing byproducts undergo on-site separation and re-use in secondary feeds.
Regulatory requirements differ country-by-country, but we stay ahead by following both ISO9001 practices and GHS standards across packaging and labeling. This reduces border clearance delays and inspires confidence as materials move worldwide. Auditors visiting our facility see not just compliance binders, but real infrastructure: sealed reagent storage, fume extraction, operator training, and emissions monitoring. These efforts are not simply box-checking—they directly improve employee health and customer product safety. Our job as primary manufacturer remains not only to serve immediate demand but to respect health, safety, and the future sustainability of specialty chemicals supply.
Each year, we receive dozens of atypical requests from the research sector. Sometimes, a group develops a novel hybrid cathode; other times, a biomedical startup attempts a new polymer–vanadate composite. AgVO3-PURE adapts to both through reliable phase composition and multiple available morphologies. Our technical staff participate in resolving application issues, not just shipping orders. One project last year sought ultra-thin films of Silver Metavanadate for ion-selective electrodes. Our R&D team adjusted wet milling to achieve sub-500 nanometer dispersion, collaborating through several feedback cycles. The experience sharpened our understanding about surface energy and the importance of aggregation control. Without hands-on manufacturing, quick iteration and custom adjustment would not be possible.
Educational institutes value consistency above price. Once a protocol succeeds, they require identical material for future cohorts. Our fixed documentation—certificate of analysis, batch logs, and retained reference samples—ensures that a successful experiment remains replicable over time. This long view, born from manufacturing reality, creates partnerships extending beyond a single transaction.
The specialty chemical landscape keeps shifting. New battery types, alternative green oxidants, antimicrobial platforms—each development drives precise material needs. We observe a rising interest in hybrid vanadate-silver composites, where small changes in synthetic route affect everything from discharge rate to toxicity profile. As upstream manufacturers, we commit engineering resources to early-stage research, ensuring clients can trust the supply chain as breakthroughs occur. Custom blending or micronization, once fringe requests, now often form part of bulk orders.
Working from direct experience with industrial and research clients clarifies the essential difference between manufacturing and distribution. We see our personal oversight—from raw material purchase to final packing—shape real-world outcomes. Whether saving time in experimental scale-up or tightening compliance in regulated markets, supplying Silver Metavanadate means standing behind each gram as manufacturers, not salespeople.
Our commitment goes further than just making a chemical. Silver Metavanadate sits at the intersection of modern electronics, energy, and environmental chemistry. We have watched labs struggle with batch-to-batch variation when sourcing through traders, only to turn to direct producers for secure reliability. Addressing every stage—raw silver and vanadium sourcing, careful phase stabilization, thorough washing, tailored particle size, and secure packing—takes more effort. But the end result reaches projects where low-level contaminants would otherwise stall innovation.
Working closely with users gave us deeper understanding of application pain points—particle morphology, consistent electrochemical properties, antimicrobial longevity. Each challenge drove us to refine production, not just copy a spec sheet. By manufacturing Silver Metavanadate on our own floor, we stand accountable for its performance, ready to help customers solve specific problems rather than send them elsewhere or blame a faceless supplier upstream.
As energy storage and sustainable chemistry grow, Silver Metavanadate’s unique capabilities will matter more. We plan continuous investment—automation, purity verification, custom orders—because quality at the source defines every downstream step. Those looking to shift from commodity supply to reliable results find that working with true manufacturers brings peace of mind as well as real-world, measurable progress.