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1,2-Cyclohexanedione Dioxime

    • Product Name 1,2-Cyclohexanedione Dioxime
    • Alias Nioxime
    • Einecs 629-157-4
    • 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
    VTB
    Specifications

    HS Code

    126213

    Chemical Name 1,2-Cyclohexanedione Dioxime
    Cas Number 3098-53-5
    Molecular Formula C6H10N2O2
    Molecular Weight 142.16 g/mol
    Appearance White to off-white crystalline powder
    Melting Point 208-212 °C
    Solubility In Water Slightly soluble
    Purity Typically ≥ 98%
    Synonyms 1,2-Dioximecyclohexane; Cyclohexane-1,2-dione dioxime
    Storage Conditions Store at room temperature, keep container tightly closed
    Hazard Statements May cause irritation to skin, eyes, and respiratory system
    Ec Number 221-539-0

    As an accredited 1,2-Cyclohexanedione Dioxime factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The chemical 1,2-Cyclohexanedione Dioxime is packaged in a 25g amber glass bottle with a secure, tamper-evident cap.
    Shipping 1,2-Cyclohexanedione Dioxime should be shipped in tightly sealed containers, away from sources of moisture, heat, and incompatible substances. It typically requires labeling according to applicable chemical transport regulations. Use appropriate hazard labeling and ensure shipping documentation is complete. Handle and transport in accordance with local, national, and international chemical safety guidelines.
    Storage 1,2-Cyclohexanedione dioxime should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers and acids. Protect from moisture, heat, and direct sunlight. Store at room temperature and avoid sources of ignition. Proper chemical labeling and secure storage to prevent accidental release or mixing is essential.
    Application of 1,2-Cyclohexanedione Dioxime

    Applications of 1,2-Cyclohexanedione Dioxime in Industrial Manufacturing

    Our production-grade 1,2-cyclohexanedione dioxime supports a range of advanced industrial processes, providing specialized properties in select downstream sectors. As a direct manufacturer, we deliver consistently high-quality material for established applications, ensuring traceable compliance, process efficiency, and end-product integrity. Below we detail major application scenarios with precise compliance benchmarks, recommended utilization levels, integration within industrial workflows, and the real finished products manufactured by industry leaders.

    1. Hydrometallurgical Refining of Non-Ferrous Metals

    In hydrometallurgy, our material functions as a selective chelating agent in solvent extraction circuits. Its high complexation affinity for specific transition metals—most notably nickel and cobalt—enables efficient phase transfer and purification during laterite ore processing and spent catalyst recycling. Operators depend on this chemical for consistent separation performance under controlled conditions, contributing to high-purity metal recovery while complying with environmental and occupational safety standards.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems for metallurgical operations
    • ISO 14001:2015 Environmental Management requirements for chemical processing
    • OECD guidelines for threshold exposure and effluent limitations
    • Material Safety Data (MSD) conformance and hazardous substance registration per REACH (EU 1907/2006)

    Typical usage ratio

    • Extraction phase concentrations typically range from 0.5% to 2.5% by weight in organic solvent systems, adjusted based on ore grade and desired selectivity profile

    Downstream process integration

    • Dosed directly into the organic phase during solvent extraction—between leaching and stripping steps—within counter-current mixer-settler units or column circuits

    Final product types

    • High-purity nickel sulfate and cobalt sulfate for battery precursor manufacture
    • Electrolytic nickel cathodes
    • Cobalt intermediates for specialty alloy fabrication

    2. Analytical Reagents for Spectrophotometric Metal Detection

    Laboratories utilize this reagent as a sensitive chromogenic agent in the colorimetric determination of trace metal ions, especially nickel. Its application extends to environmental monitoring, wastewater analysis, and industrial hygiene assessment, where high specificity and reproducibility are required under official method criteria. Reliable results rely on exact formulation and adherence to validated protocols in regulated analytical settings.

    Industry compliance standards

    • ISO/IEC 17025 requirements for analytical laboratory competence
    • EPA Method 3500-Ni (U.S.) for nickel determination in water and waste samples
    • Standard Methods for the Examination of Water and Wastewater (APHA, AWWA, WEF) Method 3500-Ni D
    • GLP (Good Laboratory Practice) as set out by OECD/US EPA

    Typical usage ratio

    • Reaction solutions typically contain 0.1–0.8 mmol/L, optimally titrated by sample matrix and target detection sensitivity

    Downstream process integration

    • Added to sample preparation step as a derivatization reagent prior to absorbance or photometric measurement following sample digestion or filtration

    Final product types

    • Portable test kits and laboratory reagent sets for metal ion monitoring
    • Ready-to-use spectrophotometric assay solutions supplied to commercial and municipal laboratories
    • Certified reference materials for proficiency testing

    3. Synthesis of Heterocyclic Compounds for Agricultural Chemical Intermediates

    Chemical syntheses of certain crop-protection active ingredients exploit this oxime moiety as a key building block for ring-closure reactions and intermediate stabilization. Its consistent behaviour in condensation or cyclization routes enables predictable conversion yields and downstream purity, especially in the manufacture of specific herbicide and pesticide base compounds through patented routes.

    Industry compliance standards

    • ISO 9001:2015 certified environmental, health, and safety protocols for agchem synthesis
    • REACH Substance Registration (EU) covering process intermediates
    • FAO/WHO Guidelines on Pesticide Specification and Residue Limits (for manufacturing chain only)
    • Internal Quality Agreements specific to proprietary actives (e.g., ISO 14001 for effluent controls)

    Typical usage ratio

    • Intermediate charge typically comprises 1.5–4.5 mol% relative to target product mass, calculated per stepwise yield and the presence of competing nucleophiles

    Downstream process integration

    • Charged to reaction vessels during cyclization or condensation stages following initial halogenation or amidation

    Final product types

    • Technical-grade herbicide intermediates
    • Precursor compounds for broadleaf weed control actives
    • Pesticide synthesis blocks used in further downstream formulation

    4. Polymer Stabilization and Cross-Linking Additive in Specialty Plastics

    In certain high-value polymer applications, such as performance coatings and engineered resins, this dioxime-based compound contributes to matrix stabilization and controlled cross-linking. Used selectively where metal chelation and controlled binding are necessary, it helps mitigate metal-catalyzed degradation and can participate in the formation of advanced polymer networks, especially in anti-corrosion or high-barrier plastics.

    Industry compliance standards

    • ISO 9001:2015 for product quality and root-cause traceability in plastic manufacturing
    • RoHS (Restriction of Hazardous Substances) compliance for electronics plastics in the EU
    • EN 71-3 for safety of toy plastics (if applicable to application)
    • REACH Annex XVII compliance for additives in industrial and specialty plastics

    Typical usage ratio

    • Integration ratios run between 0.02% and 0.2% by weight in masterbatch or polymer compounding batches, tailored to resin type and end-use performance requirements

    Downstream process integration

    • Dispersed during melt blending or compounding, prior to extrusion, molding, or film casting

    Final product types

    • Protective polymer coatings for electrical and automotive components
    • Barrier film layers for chemical packaging
    • Corrosion-resistant cable jacketing materials
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    Certification & Compliance
    More Introduction

    Understanding 1,2-Cyclohexanedione Dioxime: Our Perspective as a Direct Manufacturer

    A Close Look at the Real Product and What Sets It Apart

    Working daily with 1,2-Cyclohexanedione Dioxime in our manufacturing plant, we’ve come to recognize the practical strengths and challenges of this oxime. The material, with the formula C6H8N2O2, represents more than a chemical identity or a ticked box on a spec sheet. We see its subtle reaction behaviors, storage quirks, and real-world impact across applications ranging from analytical chemistry to complex organic synthesis.

    We’ve seen a lot of customers looking for that reliable chelating agent or a reagent with the consistency and stability needed for specialty synthesis work. Common requests arise around the choice between 1,2-cyclohexanedione dioxime and related oximes like dimethylglyoxime or diacetyl monoxime. Some users confuse their performance in metal ion detection or selective binding. We’ve put a lot of care into achieving a material that doesn’t just meet a purity threshold, but keeps its stability in storage and delivers consistent results when exposed to actual processing conditions.

    Production Experience Shapes the Material

    As the actual producer, we understand how subtle production factors shape the end product’s usability. Synthetic pathways bring impurities if not managed strictly. Batch consistency reflects more than just ratio calculations; it’s about handling temperature controls, pH adjustment, and even how quickly the intermediate is transferred in our reaction vessels. We’ve adjusted agitation speeds, solved filtration bottlenecks, and monitored trace moisture—factors that often go unnoticed by downstream processors, but that make a real difference over weeks or months of storage and repeat lab use.

    Some competitors offer the product at very high stated purities, but we’ve learned that purity figures don’t tell the whole story. Residual solvents, trace inorganic contaminants, and particular byproducts—these show up in long-term test runs, affecting everything from dissolution rates to color responses in analytical assays. Our process focuses on deep purification using multiple recrystallization steps and advanced vacuum-drying procedures. We test every lot for not just purity, but batch-to-batch uniformity, so researchers and process engineers know what they’ll get each time they open a container.

    Real-World Uses and What They Involve

    One of the obvious strengths of 1,2-cyclohexanedione dioxime lies in its selectivity with nickel and cobalt ions, both in qualitative and quantitative analyses. Years of supplying material to universities and industry labs have taught us to expect detailed technical questions: solubility in common solvents, reactivity under various pH conditions, and behavior under heat. Through these hands-on experiences, we’ve optimized our process so the material dissolves smoothly in polar solvents and maintains its structure under mild acidic or alkaline conditions, supporting a broader range of laboratory and pilot plant protocols.

    In application, this oxime has shown its value beyond classical analytical chemistry. We have customers who use it in advanced organic synthesis—sometimes as a protecting agent, sometimes as a building block for more complex heterocycles. It’s also been used in the development of certain colorimetric reagents, due to its ability to form intensely colored complexes with transition metals. Feedback from these users has prompted us to maintain extra vigilance for low-level colored impurities or side-products that can throw off the results in color-based assays.

    Consistency in melting point becomes more relevant in applications that depend on phase transitions, such as those in some materials research settings. Our technical team routinely cross-references melting points, not only as a sign of purity but to check for batch reliability. Minor shifts can hint at subtle contamination—a detail that only becomes apparent under the eye of someone who works with the material every day, as we do.

    Specifications Come From Practice, Not Just Theory

    We list our product as having a purity over 98%, with a melting range consistently falling within 209–211°C, based on repeated controlled laboratory checks. Many buyers take note of those numbers, but as a manufacturer, we see that specifications must match what happens in a real process environment. For example, material with fine needle-like crystals works better in some automatic dispensing systems, while chunkier grains reduce static and dust in manual weighing scenarios. We modify our recrystallization conditions based on user need, something a third-party distributor seldom offers.

    Storage advice also comes from practice. While most oximes require protection from light and moisture, 1,2-cyclohexanedione dioxime particularly benefits from dry, cool environments. Even a day’s exposure in a humid warehouse causes clumping or alters flow properties, so we’ve updated our packaging in response: thick, airtight containers with silica gel pouches and a tamper-evident seal. This is the kind of attention our production and logistics teams bring, earned from decades of troubleshooting real supply chain concerns, rather than copying standard data sheet phrases.

    Users’ Feedback and Improving the Product

    Interacting directly with end-users gives us the most honest insights. Researchers have shared both success stories and headaches. Some have described solvent-resistant properties that aided their formulation work, though they wished for finer control over particle size distribution to minimize settling during mixing. As a manufacturer, we’ve been able to create tighter sieving and milling protocols, giving customers more options based on their lab or production requirements.

    Others working in trace metal detection mentioned difficulties with cloudiness or slight background coloration in control experiments. Digging into the problem, we traced the source to micro-level organic byproducts from an inefficient batch step. Fixing this meant not just checking raw materials but tracing backward through the entire synthesis and purification process, identifying critical points for additional filtering and washing cycles. Only by having complete control over all process stages—from raw chemical sourcing to finished drying—could we achieve the clarity and reproducibility that our users demanded.

    Requests for larger-scale quantities brought new challenges. Oximes are not the easiest compounds to scale; we’ve had to install inert atmosphere reactors, train operators to handle varied crystal morphologies, and design custom equipment to prevent cross-contamination. Our plant documentation now includes daily logs on humidity, cleaning procedures, and even operator handover notes to maintain high standards across every kilogram produced.

    Comparisons With Other Oximes—Why It Matters

    A common question we get is how 1,2-cyclohexanedione dioxime stacks up against other oximes like dimethylglyoxime or benzil dioxime. Each one plays its own role in industry. Dimethylglyoxime has high selectivity for nickel and is a staple in many analytical labs, but it tends to have a lower melting point and can show lower chemical stability under harsh conditions. Benzil dioxime offers different coordination chemistry, often preferred for specific catalytic uses, but can bring higher cost and sourcing hurdles.

    1,2-Cyclohexanedione dioxime shows a strong balance of stability and reactivity in complexation reactions, especially in nickel and cobalt detection protocols that need to operate across a range of environmental conditions. Unlike some other oximes, it resists breakdown under moderate heat and does not give off strong odors or volatiles during handling, making it more comfortable for older lab setups lacking advanced ventilation.

    The chelating behavior of this compound also gives more predictable endpoint detection, which helps reduce false positives in analytical settings. That’s not always the case with mixed batches or poorly purified material, which we’ve seen when evaluating competitor products brought to us by frustrated clients. Our focus has been on delivering a clean, reproducible material—free of interfering components—so analysts get trustworthy results, not unnecessary troubleshooting.

    Scaling and Handling Insight: From Lab Bench to Factory Floor

    Producing 1,2-cyclohexanedione dioxime in small glassware is a different world from making it in batch reactors by the drum. Over the years, our team has worked out the sticking points—crystallization rates that spike as batches grow larger, or difficulties with uniform mixing in high-viscosity intermediates. Our plant’s in-line monitoring helps keep batch parameters stable and flags deviations early. Operators are trained to notice subtle physical cues: a barely perceptible color shift, a change in slurry texture, even the way a filter cakes up—details that never make it into generic datasheets but save product and prevent waste in the long run.

    We’ve moved beyond manual batch production by integrating programmable reaction controls and using more precise temperature regulation. Automation, though expensive, lets us reduce human error, especially in terms of timing reagent addition or maintaining oxygen exclusion for sensitive stages. Our system records every batch parameter, from agitation speed to solvent evaporation rates, so we can track down the source of even rare quality blips—an advantage you don’t get when buying from intermediaries with no direct plant oversight.

    Logistics present their own set of puzzles. Shipping oximes internationally involves paperwork, packaging that stands up to rough transit, and the risk of customs delays that may compromise quality if climate controls slip. From our end, we have reduced losses by switching to impact-resistant drums, vacuum-sealed liners, and batch-lot tracking that quickly identifies any issues in the entire distribution chain. Continuous tracking also speeds up response time should a recall or technical support request arise.

    Environmental Responsibility from Inside the Plant

    Like all chemical producers, we face continual pushes for greener practices and regulatory scrutiny. Our synthetic route generates some wastewater and minor organic byproducts, both of which need to be handled with care. We treat plant effluent through on-site oxidation and filtration, capturing trace oxime residues for incineration and recycling solvent streams where feasible.

    It’s easy to make claims about environmental responsibility, but as the manufacturer, we’ve learned that concrete steps matter more than pledges. We’ve converted to using lower-toxicity reagents in the main reaction step and invested in enclosed filtration and transfer lines to keep exposure levels down for both our workers and the environment. Our team keeps up with regulatory shifts—sometimes needing to reformulate or install new scrubbers at a month’s notice—because compliance is not optional. We engage our operators in frequent training, so everyone understands not just the "what" but the "why" of safe handling and responsible disposal.

    Continuous Improvement—Driven by Daily Experience

    Market shifts and new research topics prompt us to evolve. We’ve had clients in battery research ask for ultra-pure 1,2-cyclohexanedione dioxime, screened for elements that may interfere with electrochemical testing. We responded with expanded ICP-MS screening and upgraded glassware to limit trace boron or sodium contamination. Other teams in pharmaceuticals requested documentation on residual solvents per ICH Q3C—a need we met by pushing our drying and analytical processes further.

    We also receive new inquiries about blending the dioxime with custom stabilizers or carriers for easier integration into end-user workflows. Having experience with additive compatibility, we run pilot trials in the plant, adjust mixing steps, check for unwanted side reactions, and fine-tune timing and sequence—something only a hands-on producer can provide with confidence.

    Problems that surface in the field, whether stemming from long-distance shipping or unforeseen chemical interactions, circle back into our production planning. We track all complaints and batch failures, investigating each in detail until we reach the underlying process variable or materials issue—feeding that learning back into our QC, procurement, and operator training manuals.

    The Real Value—Built from Direct Manufacturing

    Some might see 1,2-cyclohexanedione dioxime as just another fine chemical on a long product list. Having lived through the headaches of scale-up, the tedium of endless purity verification, and the satisfaction of helping a client troubleshoot a stubborn analytical glitch, we see more than just chemical jargon. Our plant workers, R&D staff, and technical support team invest daily effort into this product, from raw material selection through to blend adjustment and post-packing stability checks.

    You can read about dioximes in literature, but only a producer can tell you how real crystals behave in shipping, how temperature swings affect stability, or why a certain lot performed so well in your last project. Every kilogram shipped reflects hundreds of hours of accumulated know-how, shaped not by office-bound descriptions but hands-on work with the chemistry, the equipment, and the people who make it happen again and again.

    Through this manufacturer’s perspective, we aim to offer something deeper than lists of model numbers and stock phrases. By investing in direct technical support, agile process tweaks based on user needs, and rigid quality controls, we give downstream users the confidence not just to use our 1,2-cyclohexanedione dioxime, but to push the boundaries of what their projects can achieve—knowing that the support behind the product comes from real-world expertise and daily engagement with the materials themselves.