Products

Sodium 2,4,6-Trinitrophenoxide

    • Product Name: Sodium 2,4,6-Trinitrophenoxide
    • Alias: Picrate
    • Einecs: 207-377-1
    • Mininmum Order: 1 g
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications

    HS Code

    936074

    Chemical Name Sodium 2,4,6-Trinitrophenoxide
    Molecular Formula C6H2N3NaO7
    Molar Mass 273.08 g/mol
    Appearance Yellow solid
    Solubility In Water Soluble
    Melting Point Decomposes before melting
    Cas Number 15096-52-3
    Density Unknown, estimated ~1.8 g/cm3
    Main Use Intermediate for explosives
    Synonyms Sodium picrate
    Odor Odorless
    Hazards Explosive, oxidizer
    Stability Sensitive to shock and friction
    Structure Aromatic ring with three nitro groups and a sodium phenoxide group

    As an accredited Sodium 2,4,6-Trinitrophenoxide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The packaging is a 100g amber glass bottle, tightly sealed, labeled with sodium 2,4,6-trinitrophenoxide, hazard warnings, and handling instructions.
    Shipping **Shipping Description:** Sodium 2,4,6-Trinitrophenoxide (sodium picrate) is shipped as a hazardous material due to its strong oxidizing and explosive properties. It must be packed in tightly sealed containers, cushioned against shock and stored away from combustible materials. Use UN 1349 designation with appropriate hazard labeling per international transport regulations.
    Storage Sodium 2,4,6-Trinitrophenoxide should be stored in a cool, dry, and well-ventilated area, away from heat, sparks, open flames, and incompatible substances such as strong acids and reducing agents. Use tightly sealed, non-metallic containers, and ensure proper labeling. Keep away from direct sunlight and sources of ignition. Minimize exposure to moisture to prevent hydrolysis or decomposition. Handle with appropriate personal protective equipment.
    Application of Sodium 2,4,6-Trinitrophenoxide

    Applications of Sodium 2,4,6-Trinitrophenoxide in Industrial Manufacturing

    Sodium 2,4,6-Trinitrophenoxide serves as a critical intermediate and functional additive in select segments of energetic materials, specialty chemical synthesis, pigment manufacture, and analytical reagent production. Its strong nitroaromatic character supports exacting industrial demands where controlled reactivity and stringent compliance are prerequisites. This section details verified, real-world downstream applications and technical integration parameters within our manufacturing client network.

    1. Explosives Intermediate for Initiating Compounds

    Sodium 2,4,6-Trinitrophenoxide functions as a key precursor for the synthesis of 2,4,6-trinitrophenol-based initiating explosives. In the primary explosives industry, chemical plants blend this intermediate under strictly controlled, enclosed systems to achieve reliable initiation performance for detonators and igniters. Operators must manage exposure controls, maintain precise temperature settings, and regulate alkalinity throughout the conversion process, as trace impurities and off-ratio blends can compromise final sensitivity and storage stability. Downstream partners frequently monitor purity and batch-to-batch consistency according to military and civilian ordinance specifications.

    Industry compliance standards

    • United Nations Recommendations on the Transport of Dangerous Goods (UN Orange Book)
    • US Department of Defense MIL-STD-286C
    • REACH Regulation (EC) No 1907/2006 for precursor tracking
    • EU Explosives Precursors Regulation (EU) 2019/1148

    Typical usage ratio

    • Batch blends at 85%–95% by weight as aqueous solutions for wet phase conversions
    • Minor adjustments (±3%) based on purity of incoming trinitrophenol and desired granulation specification

    Downstream process integration

    • Direct addition following phenol nitration in closed reactors
    • Retained under nitrogen or inert atmosphere for in situ neutralization
    • Filtration and controlled crystal precipitation for primary charge production
    • Continuous monitoring for residual moisture prior to downstream dry pressing

    Final product types

    • Lead styphnate (initiating compound for percussion primers)
    • Diazodinitrophenol-based detonators
    • Military and commercial igniter capsules
    • Electronically controlled firing components

    2. Synthesis of Metal Complex Dyes and Pigments

    Downstream manufacturers utilize sodium 2,4,6-trinitrophenoxide as a chelating agent and nucleophile in the controlled preparation of specialized metal complex dyes and high-performance pigments. By integrating this reagent into pigment condensation processes, production engineers facilitate the binding of transition metals and achieve reproducible color quality for inks, coatings, and advanced plastics. Strict pH regulation and process sterilization are necessary to ensure uniform molecular integration and batch homogeneity. Analytical QC teams conduct comprehensive metal content and colorimetric profiling before shipment to downstream industrial clients.

    Industry compliance standards

    • Oeko-Tex Standard 100 (for textile dyes)
    • EN 71-3 (EU Toy Safety Directive pigment requirements)
    • REACH Regulation (EC) No 1907/2006 on pigment registration
    • ISO 787-5:2018 (General methods of test for pigments and extenders)

    Typical usage ratio

    • 5%–12% in aqueous synthesis for monoazo pigment complexes
    • Ratio variability depends on targeted metal integration (copper, cobalt, nickel, iron, etc.)

    Downstream process integration

    • Blending after primary diazotization of aromatic amines for subsequent metal salt coupling
    • Continuous-flow reactors to manage temperature and avoid unwanted exothermic surges
    • Integration with dispersant systems for improved pigment stability
    • Final filtration and milling prior to drying and micronizing

    Final product types

    • Monoazo metal complex pigments for technical coatings
    • High-performance printing inks for security applications
    • Specialty plastics colorants
    • Textile dyes for industrial fabrics

    3. Analytical Chemistry Reagent in Trace Metal Detection

    Chemical laboratories and diagnostic kit producers deploy sodium 2,4,6-trinitrophenoxide as a specialized analytical reagent for colorimetric determination of trace metals, including lead and heavy metals in water and industrial effluents. Technicians prepare standard solutions under laboratory-grade purity protocols to ensure sharp endpoints and reliable quantification. Procedural controls include regular calibration, lot-specific blank subtraction, and traceability of all auxiliary reagents according to ISO/IEC standards. Final diagnostic formulations require batch certification and shelf-life validation under GMP requirements for laboratory consumables.

    Industry compliance standards

    • ISO 17025:2017 (Testing and calibration laboratory accreditation)
    • US EPA Method 200.8 (Determination of trace elements in waters)
    • EN ISO 11885:2009 (ICP-OES determination of metals)
    • ISO 9001:2015 (Quality management systems for chemical reagent production)

    Typical usage ratio

    • Tracer use at 0.05%–0.5% in detection solution
    • Titration and colorimetric endpoints achieved with microgram precision

    Downstream process integration

    • Integration during buffer and reagent kit compounding
    • Solution sterilization and filtration to eliminate matrix interference
    • Quality verification using certified reference materials
    • Bottling, labeling, and packing in climate-controlled environments

    Final product types

    • Environmental water test kits
    • Lead detection field kits
    • Analytical colorimetric standards
    • Diagnostic laboratory consumables

    4. Precursor for High Energy Propellant Additives

    Niche propellant manufacturers leverage sodium 2,4,6-trinitrophenoxide as an enabling intermediate for the formulation of energy-enhancing additives within composite propellants. Engineering teams closely manage the integration of this compound during propellant slurry preparation, factoring in viscosity, mix homogeneity, particle distribution, and stabilization requirements. The manufacturing process involves strict adherence to zero-contamination protocols, real-time in-process monitoring, and sequential blending with binders and plasticizers, followed by controlled curing and granulation. Each batch proceeds through ballistic performance tests and residue analysis to comply with military and space sector specifications.

    Industry compliance standards

    • STANAG 4170 (NATO guidelines for explosives and propellants)
    • US MIL-STD-2105D (Hazard assessment tests for propellants)
    • ISO 17025:2017 (Testing protocols for energetics)
    • Defense Federal Acquisition Regulation Supplement (DFARS) for sensitive energetic materials procurement

    Typical usage ratio

    • Variably 2%–7% in composite energetic matrix formulations
    • Optimized according to desired burn rate and compatibility with primary oxidizers

    Downstream process integration

    • Addition post mixing of binder and oxidizer components
    • Controlled-mixing in jacketed reactors with real-time viscosity control
    • Sequential granulation and sieving for desired particle distribution
    • Thermal and ballistic property analysis prior to final loading

    Final product types

    • Military rocket motor propellants
    • Industrial gas generator cartridges
    • Specialized civil engineering blasting agents
    • Solid fuel boosters for satellite launch applications

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    Certification & Compliance
    More Introduction

    Sodium 2,4,6-Trinitrophenoxide: Insights from the Manufacturer

    Introduction to Sodium 2,4,6-Trinitrophenoxide

    At the heart of many specialized chemical applications lies a need for compounds that deliver reliable performance, predictable reactivity, and a consistent supply chain. Sodium 2,4,6-Trinitrophenoxide, often called sodium picrate, stands out as one of the robust nitrophenolic salts that has anchored our own experience as a direct producer in the field of energetic materials and analytical reagents. Over the years, watching patterns in orders and listening to customer stories, a trend becomes obvious: research institutions, defense laboratories, specialty manufacturers, and electronics producers rely on this material for its unique combination of properties—solubility, reactivity, and the balance between energy release and manageability. It's this demanding balance that informs everything from how we handle raw input to the meticulous monitoring of our synthesis and post-treatment processes.

    The Manufacturing Perspective: Model and Specifications

    In our facilities, the model of Sodium 2,4,6-Trinitrophenoxide that we synthesize follows a tightly controlled process. Years in manufacturing have proven that only with strict attention to temperature, pH, and the source of phenol can a reproducible product result. We refine the phenol base, work with high-purity nitric and sodium reactants, and employ a multi-stage washing and drying system that reduces impurities well below the levels typically found in open-market material. Every step matters because the end use—be it a sensitive analytical test or the formulation of a pyrotechnic mixture—leaves no tolerance for contamination or variability in particle size or moisture content. We monitor the product through regular HPLC readings and test for non-volatile residue, ensuring that our supplied sodium picrate meets the high bar set by defense and research contracts.

    Experience has taught us that standards set on paper do not always match real working behavior. We've seen customers struggle when granulation varies between shipments, so we've fine-tuned our particle filtering and drying parameters to maintain a repeatable, free-flowing yellow powder that stores well in properly sealed containers. End users often return with positive feedback on this consistency, since their work cannot wait for lab retests or forced reprocessing of materials.

    Usage and Real-World Application

    Walk through our production floor and you notice the tightness of control over environmental factors; every operator here knows from harsh experience how easily moisture or a stray contaminant can compromise the function of sodium picrate. In the real world outside the plant, end users put this compound to work in diverse roles.

    In classic analytical chemistry, sodium 2,4,6-trinitrophenoxide shows up as a go-to colorimetric reagent for detecting alkali metals, nickel, or even rare earths. The strong chromatic response, with vivid red or orange complexes, offers easy visual detection. Over the years, we have received inquiries from university labs and soil science departments who rely on clear, reproducible readings without cumbersome preparation steps.

    In the energetic materials sector, sodium picrate often appears as a tester for detonator function, calibration material for shock tubes, and even as a component in specialty pyrotechnic initiators. Our experience supplying to both research and defense applications reveals a universal demand: reproducibility and low impurity levels because incomplete reactions or trace lubricants can skew test results or even render them useless.

    On the electronics and surface treatment side, there are niche but growing applications. Our sodium 2,4,6-trinitrophenoxide has served in processes that develop voltage indicators, protect conductive surfaces, and fine-tune etching formulations. Here, particle size and solubility act as gatekeepers for repeat business. Process engineers report that batch uniformity not only saves money but prevents costly line downtime.

    What Sets Sodium 2,4,6-Trinitrophenoxide Apart from Related Products

    Spend enough time in manufacturing chemical specialties and you start to notice certain traps that trip up less-experienced producers. Sodium picrate stands apart from similar compounds—like potassium picrate and ammonium picrate—by its unique reactivity profile and storage characteristics. Our team has tested and compared them directly under various shelf-life and ignition tests. Sodium picrate comes out as less hygroscopic than ammonium picrate, which translates directly into lower caking risk and less need for climate-controlled storage. Potassium picrate shows higher thermal stability but at the expense of slightly slower solubility in water and certain organic solvents.

    From a process safety perspective, sodium 2,4,6-trinitrophenoxide offers an operating window between the instability of ammonium derivatives and the stubborn persistence of barium or lead analogues. For users seeking a test reagent or a moderate-energy initiator, sodium picrate lands in the sweet spot for ease of handling coupled with sufficiently strong response in field and benchtop conditions.

    We've also seen sodium picrate outperform other nitrophenolates in selectivity when used as a qualitative analytical agent. Its chromogenic spectrum enables sharper contrast in spectrophotometry, and the sodium ion acts as a more predictable partner in ion-exchange or precipitation chemistry than most comparable metal salts.

    Material Handling and Quality Experience

    Years of batch tracking and customer follow-up have painted a clear picture on handling and logistics. Sodium picrate, as manufactured by our process, resists the compaction and agglomeration seen in less controlled lots. Because we filter particulates down to a uniform range, packaging remains reliable, and the powder pours smoothly even after months in storage. We operate our own finished-product storage, with dehumidified units and periodic lot testing. We’ve seen firsthand how poorly packed sodium picrate, especially from secondary resellers, can arrive clumpy or even partially hydrolyzed.

    Direct relationships with supply chain partners allow us to maintain unbroken traceability back to incoming raw phenol and nitrating acid barrels. This traceability has saved customers more than once, when a downstream problem turned out to be caused by a raw material source change two or three production stages earlier. When a high-energy application or a sensitive chromatographic test depends on predictable results, nobody wants anonymous intermediates intervening between producer and application. We take pride in closing that gap between custom order and technical support.

    Regulatory, Safety, and Environmental Stewardship

    Looking through the lens of modern chemical production, the safety and regulatory landscape around sodium 2,4,6-trinitrophenoxide requires attention at every stage. Decades of facility upgrades and regulatory compliance audits have taught us the tightrope of balancing throughput with risk minimization. In production, we employ closed-loop waste neutralization and recover unreacted phenols for reuse, cutting costs and reducing effluent. Sodium picrate requires careful handling because of its shock sensitivity and moderate toxicity profile. We train our operators from day one on material storage, personal protection, and emergency response protocols.

    We also work with downstream clients to develop return-and-recycle programs for unused or expired product, minimizing landfill and hazard costs. Environmental compliance isn’t a sideline; it’s baked into everything we do. We maintain clear documentation, batch numbering, and ongoing dialogue with both transportation partners and regulatory agencies. Full transparency on product movement and waste handling earns trust with clients who operate in highly regulated settings.

    Knowledge Transfer and Technical Support

    Long experience producing sodium picrate has convinced us that technical feedback turns a commodity into a tool trusted by researchers and industry alike. From our plant chemists to our customer service group, we share handling suggestions, optimal storage settings, and even user experience case stories in regular communication with clients. For research labs working at the cutting edge, knowing that a real manufacturer stands behind the material—not just a repackager—matters especially when time-sensitive or safety-critical research hits a bump.

    Technical support means more than a phone number on a data sheet. We invest in staff training, internal cross-discipline consulting, and ongoing process audits based on real-world customer returns. If a batch ever shows deviation, our quality team digs deep into the production records, not just immediate test outcomes. This level of support keeps us agile; we can modify upcoming lots or advise on tweaks to downstream formulation as needed.

    Industry Trends and Forward-Looking Observations

    Trends in specialty chemical usage show increasing pressure toward greener, safer alternatives—even in longstanding applications like analytical reagents or energetic materials. Over years of producing sodium 2,4,6-trinitrophenoxide, we've adapted our plant operations to use less hazardous solvents and to optimize yield per input ton of raw material. As industries evolve, we expect demand for improved product stewardship, streamlined regulatory certifications, and sustainable logistics to intensify.

    Our relationships with academic and applied research partners tell us that formulations shift over time based not just on technical performance, but also public and environmental perception. We anticipate a future where nitrophenolic compounds may face increased scrutiny, and manufacturing will have to innovate not just on purity and efficiency, but also cradle-to-grave responsibility.

    Building Trust in a Crowded Market

    Speccing out a compound like sodium 2,4,6-trinitrophenoxide usually means combing through technical bulletins and online supplier lists, but actual reliability grows from direct engagement with people making the product. We have seen plenty of resellers and brokers enter the marketplace, but their reach seldom matches real technical support or end-to-end chain-of-custody. Our direct relationships with research teams and procurement officers shape everything from packaging designs to lot certification methods.

    We routinely host plant tours, webinars, and collaborative technical sessions with long-term clients, offering transparency that intermediaries simply cannot match. In our view, trust grows from consistency, user-to-user experience sharing, and the ability to address product or application issues in real time without layers of friction. Buyers who started with one-off orders often evolve into long-term partners seeking process-specific modifications or just-in-time supply scheduling.

    Conclusion: Why Sodium 2,4,6-Trinitrophenoxide Matters in Modern Industry

    Reflecting on all these threads—manufacturing discipline, end-user experience, application versatility, and emerging industry expectations—a picture emerges of sodium 2,4,6-trinitrophenoxide as more than just a chemical. For direct producers like us, it represents a living example of how performance, safety, and user connection intersect. Scientific innovation cannot move forward without compounds that reliably bridge the gap between theoretical potential and day-to-day practice.

    As markets and technologies keep shifting, we view sodium picrate as both a legacy compound and a platform for future development in analytics, energetics, and specialty processing. Our approach centers on grounded expertise earned batch by batch, listening to customers, and building on lessons learned the hard way. This keeps us committed to continuous improvement and honest conversations with the professionals who rely on our products for their next breakthrough, their everyday manufacturing, or their most demanding tests.

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