|
HS Code |
411161 |
| Chemicalname | Tetrahydroxyquinone |
| Molecularformula | C6O6H2 |
| Molarmass | 172.07 g/mol |
| Appearance | Yellow crystalline solid |
| Density | 2.2 g/cm³ |
| Meltingpoint | ≥ 300 °C (decomposes) |
| Solubilityinwater | Slightly soluble |
| Structuretype | Benzoquinone derivative |
| Iupacname | Cyclohexa-2,5-diene-1,4,3,6-tetrone |
| Casnumber | 533-73-3 |
As an accredited Tetrahydroxyquinone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Tetrahydroxyquinone, 25g: Supplied in an amber glass bottle with a secure cap, labeled with safety information and handling instructions. |
| Shipping | Tetrahydroxyquinone should be shipped in tightly sealed containers, protected from moisture and light. It must be packed according to local and international regulations for chemicals, with appropriate labeling and documentation. Transport should ensure stability, avoiding excessive heat, ignition sources, and physical damage to prevent decomposition or hazardous reactions during transit. |
| Storage | Tetrahydroxyquinone should be stored in a tightly sealed container, protected from light and moisture, in a cool, dry, well-ventilated area. The storage environment should be free from incompatible substances such as strong oxidizers and reducing agents. Clearly label the container, and handle with appropriate personal protective equipment to prevent exposure. Follow relevant safety and regulatory guidelines for chemical storage. |
Applications of Tetrahydroxyquinone in Industrial ManufacturingTetrahydroxyquinone serves as a critical intermediate and functional material for specialized sectors in chemicals, electronics, energy storage, analytical chemistry, and advanced coatings. As a direct manufacturer, we implement tailored solutions to meet the diverse technical demands of these fields. 1. High-Performance Organic Battery MaterialsIn lithium-ion and flow battery research, manufacturers employ tetrahydroxyquinone as a redox mediator and active component to enhance charge/discharge cycling and conductivity in organic electrode formulations. This specialty material supports next-generation energy devices, especially where non-metallic organics are required for lightweight, high-capacity energy storage. Engineers adjust the content based on cathode balancing, solvent compatibility, and targeted energy density. Raw material purity and water content must be tightly controlled to prevent degradation in cell assembly. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Analytical Chemistry Reference StandardsAccredited labs use tetrahydroxyquinone as a specialty redox indicator and calibration standard for spectrophotometric, chromatographic, and electrochemical analysis. Its precisely defined oxidation-reduction behavior underpins quantitative tests for pharmaceutical APIs, food antioxidants, and industrial water quality. Correct concentration and solvent compatibility are essential. Labs require low-impurity, batch-certified raw material to guarantee reproducible reference values in critical measurements. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Electrochromic Displays and Smart Window MaterialsTetrahydroxyquinone acts as a core color-change component within organic electrochromic coatings for architectural smart glazing, automotive rear-view mirrors, and digital display prototypes. Manufacturers use its reversible redox behavior to shift optical properties under applied voltage. Purity, residual water, and polymer compatibility must be checked for processability and device lifetime. Application-specific dosing aligns with switching speed and durability requirements, and integration largely occurs within in-line polymer film production. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Corrosion Inhibitor Formulations for Metal CoatingsProducers of high-value metalworking fluids and anti-corrosion coatings add tetrahydroxyquinone as a chelating agent and redox-active inhibitor, particularly in systems for mild steel and aluminum components. This raw material participates in forming passivating layers and preventing oxidative surface attack. Manufacturers select loading rates based on test coupons, system pH, and compatibility with co-additives. Stability under storage, absence of metal impurities, and blending order are critical technical considerations, especially during large-scale batch mixing and pre-polymerization processing. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive Tetrahydroxyquinone 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!
The work behind crafting Tetrahydroxyquinone stretches back decades in chemical research and hands-on plant experience. Tetrahydroxyquinone, recognized by many as a robust oxidizing agent and synthetic intermediate, stands out due to its structural features: four hydroxyl groups attached to the quinone nucleus. In our facility, every batch draws on controlled oxidation and precision purification. We approach its manufacture as a true exercise in balancing safety, scalability, and chemical purity, which matters enormously for our partners in advanced materials, organic electronics, and specialty synthesis.
Our most requested model, sometimes referred to by its chemical formula C6O6H4, comes as a fine, deep yellow solid. Spectral testing confirms an assay of not less than 98%. Particle sizing is carefully managed, which helps maintain consistent results when customers rely on tight dosing. Water content typically falls below 0.5%, controlled through thorough drying and nitrogen-sealed packaging. In our lab, every production run runs through HPLC and NMR checks, because incomplete oxidation or contamination can derail lab results or cause broader quality headaches down the road. As a manufacturer, this is an area we monitor very carefully; production oversight matters much more here than in commodity fine chemicals.
Most demand for Tetrahydroxyquinone comes from researchers and companies working in organic synthesis, particularly where highly selective oxidants or electron transfer mediators are needed. We see frequent requests from labs exploring battery materials, sensor development, and specialty polymer research. The compound's structure—those four strategically-placed hydroxyl groups—brings unique redox behavior that isn’t easy to replicate using cheaper or more available substances.
We’ve helped several academic labs who ran into hurdles with low-purity starting materials or inconsistent crystalline forms from outside sources. Impurities disrupt catalytic performance and reproducibility in sensitive work like molecular electronics. Our approach remains straightforward: maintain rigorous controls, batch-to-batch document checks, and keep honest open lines with customers whenever a production hiccup comes up. Industry partners using Tetrahydroxyquinone for organic solar film or quinone redox flow batteries routinely tell us they care more about trace residuals than anything else. That forces us to avoid any shortcuts with solvents, filtration, or post-synthesis washing. Reliable Tetrahydroxyquinone often makes a difference between a successful run and a month of troubleshooting.
Synthesizing Tetrahydroxyquinone on a commercial scale brings a set of challenges few chemists outside of manufacturing see firsthand. Key intermediates, particularly tetrahydroxybenzene, need careful isolation to stop unwanted side-products. Reaction vessels and filtration systems corrode easily if material handling isn’t planned well. Our team learned the importance of minimizing exposure to moisture, as Tetrahydroxyquinone’s hydroxyl groups bind water and accelerate self-decomposition. People sometimes underestimate the influence of small humidity shifts on stability metrics. Fail to keep overruns in check or slacken on building blanket protocols, and losses mount rapidly. This is a classic case where good SOPs and real enforcement make the difference, not just idealized theory.
We committed to deeply refining our purification sequences right after discovering that even slight variations in solvent purity created colored byproducts and complicated drying. Real investments here—high-purity solvent lines, redundant filtration stages, nitrogen blanketing—proved cost-effective, because scrapping batches wastes money and strains relationships. Insights from our QA reports led us to implement batch traceability—something buying intermediates off the spot market won’t get you. Fielding fewer customer complaints and complaints about color or inconsistent reduction capability shows us the work pays off.
We’re often asked how Tetrahydroxyquinone differs from phenanthraquinone, benzoquinone, or p-benzoquinone. From where we stand, differences show up in both the redox profile and downstream compatibility. Other quinones lack the same hydroxyl density, so they can’t offer the same reversible redox cycles. Some customers switch to Tetrahydroxyquinone after running into limits using standard benzoquinones, especially during synthesis of conductive polymers and redox mediators. Several p-benzoquinone users described unpredictable side reactions; moving to our high-purity Tetrahydroxyquinone stabilized their yields and improved batch consistency. Electron-rich nature and solubility in polar solvents also set our product apart, supporting work that would stall if relying on more basic quinones.
Historically, p-benzoquinone wins in sheer availability, but we’ve seen a trend where researchers shift focus to specialty oxidants like Tetrahydroxyquinone once their protocols reach a certain technical depth. That’s because the nuanced reactivity—faster electron transfers, greater reversibility, fewer radical byproducts—delivers clear value in cutting-edge catalysis or battery work. Trace-metal content and byproduct carryover matter more now than they used to, and our plant targets these parameters closely since even low levels can undermine results in sensitive redox or photochemical work.
One recurring concern involves Tetrahydroxyquinone’s stability, especially during shipping or extended laboratory storage. Moisture and exposure to air prove troublesome; even small leaks in storage bags or jars will erode potency and produce color changes. After a couple of early hard lessons, we shifted to vacuum-sealed, foil-lined containers and cut normal batch sizes for research lots to keep things fresh. Customers reported far fewer complaints after this change. Dry boxes, desiccators, and coordinated shipping in cool, dry months further protect against environmental impact.
If users run into unusual degradation or color shifts, we invite them to review handling procedures—many issues trace back to temperature swings or open-air weighing during sample preparation. This is one chemical where supply chain and end-user habits both play a major role in preserving quality.
We hold safety as a core value, not a box on a compliance form. Quinones, including Tetrahydroxyquinone, demand real respect during handling. The compound can cause skin irritation; dermal barriers and gloves matter at the bench. On a production floor, inhalation becomes a bigger concern due to fine particle dust. Our people wear fit-tested masks and use air-flow benches during transfer and packaging. End-users receive clear paperwork and practical advice—they know the risks, and so do we.
Waste management deserves careful attention. Our waste streams get neutralized under basic conditions to minimize environmental discharge. Many university or pilot labs using Tetrahydroxyquinone face local disposal rules for oxidizing solids; we share successful approaches and documents to help them stay compliant. It’s more than regulatory alignment—it’s about stewardship up and down the chain. We’ve stopped offering larger package sizes to new buyers without a clear demonstration of responsible disposal protocols.
Real breakthroughs in advanced materials hinge on specialty chemicals of dependable purity. Tetrahydroxyquinone’s utility in redox-flow batteries, organic electronics, and high-specificity catalysis sets it apart from simpler oxidants. Over the years, our partnerships with battery technology researchers demonstrated how tight impurity limits improve device lifetimes and charge cycles. Researchers in polymer chemistry saw smoother polymerizations at precise, repeatable rates when working with our high-grade compound. Colorimetry specialists working in analytical chemistry value the product’s sharp, reliable responses. Even long-time users of commodity quinones shift to Tetrahydroxyquinone for more sophisticated applications—once their ambitions rise, so do purity and traceability demands.
We hear stories from process engineers about stringing together reliable pilot runs, finally breaking through after switching away from cheaper, variable-sourced quinones. Failures often traced back not to protocols, but to barely perceptible contamination. Our consistent production ensures that if an issue emerges, troubleshooting focuses on process, not the core material.
Years of chemical manufacturing demand humility and adjustment. Early bottlenecks in powder flow forced us to redesign our drying and transfer approaches. Small issues—lumps from excessive moisture, inconsistent drying, or static build-up—caused lost hours and delayed shipments. By adapting our process lines, we improved both safety and output. Our site now uses closed-loop automation in the finishing steps. This raised not just yield, but also traceable quality.
We spend significant time on staff training. Rotating junior chemists and new operators through each synthesis and purification stage keeps skills sharp and builds buy-in at every level. Hands-on experience with Tetrahydroxyquinone’s quirks makes theoretical SOPs stick. Anyone who’s handled a sticky batch, or watched yields slip due to lazy solvent swaps, sees why detail focus underpins our product reliability. We also invite feedback from our customers—anomalies, color changes, yield drops, and performance hiccups. This feedback gets passed straight to our operations and QC teams, closing the loop between real-world usage and manufacturing best practice.
Tetrahydroxyquinone’s broadening appeal in emerging sectors—battery storage, molecular magnetics, sensor development—drives us to innovate further. We commit resources to pilot studies in coordination with heavy users, sharing non-confidential process tweaks that lead to more stable performance or improved yields downstream. The line between supplier and technical advisor blurs, especially as applications stretch conventional boundaries.
As more R&D teams push for high-throughput screening or process scalability, they demand real documentation—certificate traceability, impurity breakdowns, and production narratives. Meeting these requests goes beyond stamping out material; it means building a two-way knowledge pipeline. Our technical team spends a growing share of their time supporting customer experiments, diagnosing unexpected results, and advising on best handling practices. These conversations drive our product upgrades. We keep refining drying methods, packaging selections, and shipping logistics to remove known pain points.
Staying competitive as a Tetrahydroxyquinone manufacturer depends on more than meeting specs. It requires active participation in the innovation cycle—listening to changing customer priorities, investing in purification tech, and always tending to health, safety, and environmental impact. We have witnessed first-hand the difference proper controls and customer-centric troubleshooting can make—not just in smoother sales, but also in helping researchers tackle ambitious projects.
Over the coming years, we anticipate new requirements surrounding trace-level impurity disclosure, adoption of sustainable production routes, and process digitalization. Several of our latest upgrades focus on solvent recycling, waste minimization, and down-to-the-gram batch reporting. We’re ready to work directly with our customers on upcoming challenges, providing both materials and insights grounded in hands-on plant experience. As more industries discover the subtle but game-changing benefits of Tetrahydroxyquinone, we expect to keep pushing our manufacturing practice to meet higher standards, stronger supply-chain transparency, and safer global stewardship.
The difference customers appreciate comes from direct oversight, transparency, and lot-to-lot predictability. Operations managers can only guarantee quality with complete upstream control—and our site handles everything from raw sourcing to final packaging under one roof. This direct-line responsibility assures customers every package of Tetrahydroxyquinone matches not just a number on a COA, but the measured, hands-on stewardship of a team whose expertise is proven batch by batch.
We stay ready to invest in upgrades as new knowledge emerges. Whether integrating advanced analytics, green chemistry alternatives, or improved dust containment, our guiding principle remains the same: offer reliable Tetrahydroxyquinone, suited for advanced applications, from a responsive, accountable manufacturer. The result is not just a transaction, but a foundation for mutual progress in science and industry.