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10,10-Oxybisphenoxarsine

    • Product Name 10,10-Oxybisphenoxarsine
    • Alias OBPA
    • Einecs 221-984-1
    • 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
    VTB
    Specifications

    HS Code

    426796

    Cas Number 58-36-6
    Molecular Formula C12H8As2O3
    Molecular Weight 386.05 g/mol
    Synonyms OBPA, Bis(10-phenoxyarsine) oxide
    Appearance White to off-white powder
    Melting Point 220-224 °C
    Boiling Point Decomposes before boiling
    Solubility In Water Insoluble
    Density 1.73 g/cm3
    Odor Odorless
    Stability Stable under recommended storage conditions
    Flash Point Non-flammable
    Partition Coefficient log Kow = 6.11

    As an accredited 10,10-Oxybisphenoxarsine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A 50 kg fiber drum, securely sealed, labeled with hazard symbols and handling instructions for 10,10-Oxybisphenoxarsine, UN-approved for transport.
    Shipping **10,10-Oxybisphenoxarsine** should be shipped as a hazardous material, classified under UN 3077, Environmentally Hazardous Substance, Solid, N.O.S. It must be packed in tightly sealed containers, labeled appropriately, and transported according to local, national, and international regulations to prevent leaks, spills, and environmental contamination.
    Storage 10,10-Oxybisphenoxarsine should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong acids and oxidizers. It must be protected from moisture and direct sunlight. Proper labeling and secure storage are essential to prevent accidental exposure or environmental release. Use secondary containment to minimize spill risks.
    Application of 10,10-Oxybisphenoxarsine

    Applications of 10,10-Oxybisphenoxarsine in Industrial Manufacturing

    10,10-Oxybisphenoxarsine, recognized for its potent antimicrobial characteristics, integrates into diverse industrial sectors demanding long-term protection against bacteria, fungi, and algae. As original manufacturers, we supply material formulated to the highest specification, supporting established processes in professional use across several downstream value chains.

    1. Antimicrobial Additive in PVC and Polymeric Building Materials

    Construction material producers use this compound to extend resistance against microbial degradation in polymers frequently exposed to damp or humid conditions. Incorporation during compounding enhances microbial protection, particularly for products deployed in public infrastructure and facility interiors where hygiene over time is mandatory.

    Industry compliance standards

    • ISO 846:2021 (Plastics – Evaluation of the action of microorganisms)
    • EN 71-3:2019 (Migration of certain elements for building materials)
    • REACH Regulation (EC 1907/2006) Annex XVII restrictions
    • EPA 40 CFR Part 180 (US Environmental Protection Agency, tolerance exemptions)

    Typical usage ratio

    • 0.1% – 0.3% by total polymer weight; exact dosage depends on duration and degree of microbial exposure in end-use environment

    Downstream process integration

    • Added during polymer melt compounding before extrusion or molding; disperses in resin to achieve homogenous protection throughout matrix

    Final product types

    • PVC flooring tiles
    • Wall cladding panels
    • Water pipe coatings
    • Insulating foam boards

    2. Preservation Agent in Leather Processing and Finished Leather Goods

    Leather tanneries utilize this raw material to inhibit mold and bacterial attacks during the wet blue preservation and post-finish storage phases, reducing product spoilage during overseas shipment or warehousing, and meeting export standards for mold-free shipments throughout extended distribution cycles.

    Industry compliance standards

    • ISO 15700:1998 (Leather – Determination of resistance to mold growth)
    • CFR 21, §573.940 (FDA – secondary direct food additives)
    • German BfR XXI guidelines (consumer articles and leather safety)
    • EU Biocidal Products Regulation (BPR, Regulation EU No 528/2012)

    Typical usage ratio

    • 0.05% – 0.15% based on wet hide weight; adjusted according to leather type, storage humidity, and intended shelf life

    Downstream process integration

    • Distributed in the pickling or post-tanning bath, either dissolved or as a dispersion, ensuring even absorption into hide cross-section

    Final product types

    • Automotive seat leathers
    • Upholstery hides
    • Finished footwear uppers
    • Industrial glove leather

    3. Slimicide and Mildew Control in Paper and Pulp Manufacturing

    Pulp and paper mills use our raw material to maintain aggregate hygiene within process water loops, critically reducing machine fouling, reducing paper web breaks, and ensuring the physical and visual quality required by high-specification packaging and printing substrates.

    Industry compliance standards

    • ISO 8795:2018 (Pulp, Paper, Board – Determination of acrylamide)
    • TAPPI T487 (Fungi resistance of paper and paperboard)
    • FDA 21 CFR 176.300 (Slimicides for paper-making for food contact paper)
    • REACH registered biocidal product approval

    Typical usage ratio

    • 1 – 25 ppm in process water, continuously metered; rate adapted to microbial load and system retention times

    Downstream process integration

    • Dosage into white water circuits, broke pulps, or as part of wet-end chemistry before fourdrinier or cylinder forming

    Final product types

    • Coated and uncoated fine papers
    • Sanitary and tissue papers
    • Corrugated containerboard
    • Specialty filtration media

    4. Mildew-Proofing in Industrial Water-Based Paints and Coatings

    Coating formulators rely on this active to prevent fungal colonization during shelf life in-can and after the application of architectural and protective paints. This ensures compliance with performance standards in sectors demanding hygienic and durable coated surfaces, especially in hospitals and food-service environments.

    Industry compliance standards

    • ISO 16000-23:2018 (Indoor air – Test method for evaluation of fungal growth on coatings)
    • ASTM D5590 (Fungi resistance of paint films)
    • GB/T 1741-2007 (Mold resistance of emulsified coatings)
    • China Environmental Labeling Technical Requirement HJ 2537

    Typical usage ratio

    • 0.02% – 0.10% based on total wet paint mass; final level determined by binder type, in-can preservation need, and target wash cycles

    Downstream process integration

    • Incorporated during pigment dispersion or let-down stage to ensure compatibility and even distribution throughout the liquid matrix; quality control must monitor antimicrobial activity post-mixing

    Final product types

    • Hospital wall coatings
    • Bathroom and kitchen architectural paints
    • Protective marine coatings
    • Food processing plant floor paints

    5. Biocidal Systems for Industrial Metalworking Fluids

    Fluid systems in cutting, grinding, and forming operations require continuous fungal and bacterial management. Integration maintains coolant clarity, suppresses rancidity, and extends the lifetime of operational fluids under real-world recirculation and variable temperature cycles.

    Industry compliance standards

    • ASTM E686-91 (Standard Test Method for Evaluating Biocide Release Rate by Sites in Metalworking Fluids)
    • DIN 51385 (Testing of Metalworking Fluids to Determine Resistance to Microbial Degradation)
    • Directive 98/24/EC (Protection of health and safety from chemical agents at work)
    • NIOSH Guidelines for Metalworking Fluids Exposure

    Typical usage ratio

    • 10 – 30 ppm based on total sump volume, modulated according to sump size, turnover rate, and contamination load

    Downstream process integration

    • As an additive in premixed concentrates or dosed directly into coolant reservoirs; often requires agitation for complete mixing in large systems

    Final product types

    • Semi-synthetic metalworking fluids
    • Synthetic machining coolants
    • Soluble oil emulsions
    • Chemical cleaning baths for automotive parts manufacturing
    Free Quote

    Competitive 10,10-Oxybisphenoxarsine prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    10,10-Oxybisphenoxarsine: Experience-Driven Reliability from a Chemical Manufacturer's Perspective

    Real-World Production: Practical Strengths and Lessons Learned

    In our years of chemical synthesis, few products draw as much consistent attention from our clients as 10,10-Oxybisphenoxarsine. Known by many in the industry for its pronounced performance as a biocidal compound, this molecule finds a place in numerous high-demand applications. Below, I want to share not only why we continue to dedicate production resources to this material, but also the knowledge we've gained by working hands-on with it across various batches, formulations, and practical applications.

    Molecular Integrity and What It Means for Manufacturing

    At its core, 10,10-Oxybisphenoxarsine is an organoarsenic compound, with the chemical formula C₁₂H₈As₂O₂. Its molecular structure offers dual arsenic centers connected by an ether linkage between phenoxy rings. This configuration results in pronounced antimicrobial properties, which remain stable even in complex product formulations. Anyone who has dealt with persistent microbial contamination in manufacturing knows that not all biocides can handle the challenge. Across our production runs, we measure consistency batch after batch, using gas chromatography and titration to confirm structure and purity. Stability is not just a theoretical promise; it's something we check against daily realities like pH drift and variable humidity in processing facilities.

    Handling and Quality Assurance

    Handling 10,10-Oxybisphenoxarsine brings specific demands. Our experience shows that strict environmental controls during synthesis keep moisture and cross-contamination at bay. Workers receive up-to-date training because, even with improvements in reaction vessel design and dust containment, this compound commands respect. Our standard packaging keeps the product dry and shields it from light. Regular batch sampling, infrared spectroscopy, and a full run of biological activity assays tell us if our process needs slight tweaks—and allow us to guarantee quality. We do not assume that a reaction that went right last week will perform identically tomorrow; tracking exact temperature profiles and solvent ratios during synthesis pays off by avoiding costly reprocessing and waste.

    Specifications as Experience, Not Just Numbers

    A product’s specification sheet offers just a glimpse of what matters. While the technical documents mention a usual purity of 98% or higher, it’s what goes into achieving and maintaining that number that matters most. From our plant's perspective, slight differences in feedstock phenol quality, the timing of oxidant addition, or the rate at which the reaction mixture is cooled can all affect the finished product’s appearance, melting range, and biocidal action. We routinely calibrate our equipment so each lot behaves consistently—granule size, dust levels, and flow properties all influence downstream blending during client use.

    Applications: Serving Real-World Needs

    Most inquiries we address revolve around industrial biocidal protection. 10,10-Oxybisphenoxarsine sees primary use in formulating paints, coatings, and plastic polymers meant for long-term contact with humid environments. Because resisting mold and bacterial growth is vital where end-use surfaces face water exposure, our customers, especially in construction and wire insulation manufacture, return to this compound again and again. Often, upstream users report that efficacy remains even after repeated sterilization cycles, or after years of use in harsh service. It is common to see effective performance in rubber conveyor belts, automotive materials, and specialty adhesives, especially in operations where reliability translates to significant cost savings.

    Meeting User Demands: Why This Compound Remains in Favor

    We hear plenty about alternative preservatives and fungicides, but most lack the sustained activity delivered by 10,10-Oxybisphenoxarsine. Lower-cost options in the market, be they organic or metallic, tend to show either rapid depletion under UV-exposed or wet conditions or cause compatibility issues with plasticizers used in flexible polymer systems. The consistency of our product—confirmed by yearly trend data—means fewer customer complaints about discoloration, off-odor, or loss of mechanical performance in compounded materials. These are not abstract advantages; they save time, shipping returns, and protect hard-won customer relationships. Clients involved in marine or underground cable manufacture, who face some of the toughest microbe-rich environments, often report that switching to other materials results in greater product failure rates or end-user dissatisfaction.

    Regulatory Expectations and Ongoing Compliance

    Working with an arsenic-containing compound brings more scrutiny now than ever. We navigate a thicket of global regulations, including REACH in Europe and TSCA in North America. While some jurisdictions express concern about environmental persistence, our experience in managing documentation and communicating safe handling practices gives users confidence that they stay well within regulatory limits when following outlined procedures. Years of dust management, personal protective developments, and waste handling improvements give assurance to inspectors—and peace of mind to downstream environmental managers. This is not a job for the inexperienced; correct labeling, SDS composition, and ongoing traceability require vigilance.

    Continuous Improvement: Tradition Meets Innovation

    Veteran technicians and process chemists at our plant regularly brainstorm how to further contain process emissions, minimize arsenic volatilization, and raise the yield from current production lines without compromising safety. Years of optimizing batch size, agitation speed, and filtration technique have helped us offer a consistent supply even as market demand fluctuates. For our downstream partners, these improvements mean more predictable blending in their batch processes, tighter control over finished goods shelf life, and a stronger defense against disruptive microbial attack.

    Difference Makers: Standing Apart from Other Solutions

    It is not enough for a product to work; it needs to fit seamlessly into large-scale and specialty operations. Compared with non-arsenic biocides, 10,10-Oxybisphenoxarsine demonstrates stronger resistance to leaching and a far lower rate of material degradation during forced aging and environmental simulation tests. In situations where legacy actives failed under high humidity or UV exposure, our compound provides a clear route to improved performance with no added need for reformulation. Also, our decades of direct handling and large-volume synthesis give our technical advisory team unique insights into adjusting dosing and troubleshooting unexplained problems in customer plant settings. Beyond lab performance, these “dirty hands” lessons mean the difference between a theoretical solution and a real fix implemented in a busy factory.

    Lessons from Customer Support and Collaboration

    Rarely does a month go by without a plant manager or R&D engineer reaching out about integrating 10,10-Oxybisphenoxarsine into a new formulation. Common topics include compatibility with new plasticizers, solvent carriers, or new pigment technologies. Because we spend time running parallel tests, simulating client blending procedures, and stress testing under more aggressive heat and humidity cycling than most end users ever encounter, we stand behind our advice. If a customer’s polymer blend separates, or if a paint compound begins to gel unexpectedly, we have usually tackled something similar in our own labs. Pinpointing these practical, hands-on fixes saves both sides money and production time.

    Not Just Chemistry: Pragmatism in Waste Handling and Worker Safety

    Our own experience with the compound's toxicity profile pushes us to invest in high-performance scrubbers and continuous worker health monitoring. Engineering controls, dust-suppressant tactics, and regular refresher training go far beyond compliance; they protect people we know by name. If an incident ever occurs—whether it’s a leaking gasket or an unexpected rise in process pressure—the response protocols are the result of years of drills and after-action reviews. Waste management systems minimize residual arsenic discharge, and our ongoing audits often lead to incremental improvements nobody thought of at the design stage. These day-to-day safeguards, not one-off safety slogans, provide resilience against regulatory or reputational setbacks.

    Adapting to Industry Shifts: Supply Chain and Market Fluctuations

    The chemical industry seldom gives much room for error with intermediate supply disruptions or price shocks. Our reputation with major suppliers of feedstock chemicals rests on years of regular business and clear communication. Whenever we see signals of supply tightness—such as sudden changes in raw phenol pricing or oxidant quality issues—we work double shifts and pre-qualify second source vendors long before shortages trickle down to our clients. Our stockpiling strategy and willingness to ramp up production capacity prevent the ripple effects from reaching customers, avoiding panic orders and costly downtime in their own manufacturing lines.

    Comparative Insights from Direct Manufacturing Experience

    We do not claim that 10,10-Oxybisphenoxarsine is the answer for every situation. Some applications no longer welcome arsenic-based compounds due to shifting regulatory or consumer preferences. Our in-house R&D regularly reviews alternatives, including oxazolidines, isothiazolinones, or silver-based antimicrobials. None so far have provided the loaded biocidal action, particularly in thick-section industrial rubber or cable sheathing, that our flagship compound achieves with lower added dose and no need for frequent retesting. Experience teaches us to share these honest trade-offs with clients, not because we are unwilling to push alternatives, but because downtime and failed batches impose far greater real-world costs than informed, conservative decision-making.

    Troubleshooting: From Bench Scale to Full Production

    Scaling up any synthesis brings its own surprises. We learned early on that lab-bench crystallization profiles look quite different when running a reactor ten times the size. Small shifts in cooling rates or agitator design can create larger crystals or, worse, undesirable fines that complicate downstream use. Every batch report sent to our clients documents not only final assay and particle size analysis but also historical data trends so that process engineers know what to expect with each delivery. By opening up our process logs when requested—rather than hiding behind dense technical jargon—we help downstream users diagnose their own processing headaches.

    Patience, Skill, and Reliability: The Keys to Lasting Partnerships

    Few partnerships between manufacturer and industrial user survive long when shipments run late, or if technical advice proves shallow. We learned to run pilot lots with customer-supplied plastics, lubricants, or solvents, observing sometimes unexpected interactions before any large-scale deliveries happen. These studies often reveal subtle problems, such as the migration of trace compounds during thermal cycling or the impact of newly introduced stabilizers on antimicrobial longevity. By building this extra effort into our manufacturing and technical support model, we eliminate guesswork and allow customers to plan confidently for long-term supply and effective performance.

    Environmental and Social Responsibility

    10,10-Oxybisphenoxarsine, being an arsenic derivative, commands a higher level of environmental stewardship. Our facility has progressively invested in advanced wastewater treatment plants, cleaner process chemistries, and closed-loop material transfers to reduce environmental releases. We sponsor periodic third-party reviews of our emission controls and adjust operating procedures based on their recommendations. These efforts protect both the environment and our own standing in regulated markets. While regulatory trends increasingly disfavor arsenic-based agents, our investment in stewardship and transparency continues to permit responsible use in essential sectors where alternatives have yet to match performance.

    Collaborative Innovation: Listening to the Industry

    Clients often request minor tweaks in product morphology or suggest changes in packaging that simplify their own logistics. Our technical and packaging teams adopt improvements directly driven by this feedback. One common example is the transition from fiberboard to high-barrier polymer drums for bulk product export to tropical destinations; these shifts protect against both humidity ingress and accidental punctures during ocean transport. Sharing these design changes boosts reliability not just for us but also for our clients who cannot afford shipment failures due to packaging breakdown.

    Investing in Expertise as a Manufacturer

    The value we offer comes not only from the compound’s molecular properties but also from the bench-to-shipment discipline practiced by every chemist, process engineer, and plant operator in our team. The difference between an average supplier and one with institutional experience lies in rapid response to unplanned challenges, honest technical communication, and an ingrained focus on repeatable quality. Decades of troubleshooting and continuous improvement permit us to anticipate instead of simply reacting, and to take pride in a product that our industrial partners rely upon for protection against microbial attack, material degradation, and the risk of regulatory shortfalls.

    The Manufacturer’s Voice: Respect for the Entire Value Chain

    Years of manufacturing 10,10-Oxybisphenoxarsine have made one thing clear: excellence results from more than just the raw chemistry. Reliability stems from knowing that each part of the process—formulation, production, testing, packing, customer support—builds on the last. Trust grows when a supplier stands ready to share data, offer technical fixes, and consistently deliver product that functions as expected in tough, high-risk settings. For our team, the future of this compound rests on care, adaptability, and openness to customer feedback, matched by attention to internal discipline in safety, compliance, and long-term environmental care.