Bisphenol A Polyoxypropylene Polyoxyethylene Ether

    • Product Name: Bisphenol A Polyoxypropylene Polyoxyethylene Ether
    • Chemical Name (IUPAC): Poly(oxypropylene-co-oxyethylene) bis(4-hydroxyphenyl)propane
    • CAS No.: 9049-29-2
    • Chemical Formula: C₁₅H₁₆O₂(C₃H₆O)ₙ(C₂H₄O)ₘ
    • Form/Physical State: Liquid
    • Factroy Site: Binhai Economic and Technological Development Zone, Weifang City, Shandong Province
    • Price Inquiry: sales2@liwei-chem.com
    • Manufacturer: Shandong Haihua Group Co.,Ltd.
    • CONTACT NOW
    Specifications
    HS Code 687695
    Chemical Name Bisphenol A Polyoxypropylene Polyoxyethylene Ether
    Cas Number 39443-66-8
    Appearance Colorless to pale yellow viscous liquid
    Molecular Formula C21H24O2(C3H6O)n(C2H4O)m
    Molecular Weight Varies depending on the degree of polymerization
    Solubility In Water Soluble
    Density Approximately 1.05 g/cm³ (at 25°C)
    Boiling Point Decomposes before boiling
    Flash Point >200°C (closed cup)
    Viscosity High, depending on molecular weight
    Odor Mild characteristic odor
    Storage Temperature 5-35°C
    Ph 6.0-8.0 (5% solution in water)
    Applications Used as a surfactant, emulsifier, and resin modifier

    As an accredited Bisphenol A Polyoxypropylene Polyoxyethylene Ether factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Packaged in a 200 kg blue HDPE drum, tightly sealed, with clear labeling indicating "Bisphenol A Polyoxypropylene Polyoxyethylene Ether" and safety information.
    Container Loading (20′ FCL) Container Loading (20′ FCL) for Bisphenol A Polyoxypropylene Polyoxyethylene Ether: Typically loaded with 16-20 metric tons, packed in secure drums or IBCs.
    Shipping Bisphenol A Polyoxypropylene Polyoxyethylene Ether should be shipped in tightly sealed, clearly labeled containers, protected from moisture and direct sunlight. Store and transport at ambient temperatures in accordance with local regulations for chemicals. Ensure proper handling equipment is available and follow all safety data sheet (SDS) recommendations during shipment.
    Storage Bisphenol A Polyoxypropylene Polyoxyethylene Ether should be stored in tightly sealed containers, away from direct sunlight and moisture, in a cool, well-ventilated area. Keep away from incompatible materials such as strong oxidizing agents. Store at temperatures between 5°C and 30°C to maintain stability. Clearly label containers and ensure proper secondary containment to prevent leaks or spills.
    Shelf Life Bisphenol A Polyoxypropylene Polyoxyethylene Ether typically has a shelf life of 12–24 months when stored in cool, dry, sealed conditions.
    Application of Bisphenol A Polyoxypropylene Polyoxyethylene Ether

    Applications of Bisphenol A Polyoxypropylene Polyoxyethylene Ether in Industrial Manufacturing

    As an established upstream manufacturer, we supply Bisphenol A Polyoxypropylene Polyoxyethylene Ether for select industries where its unique molecular properties deliver essential performance as a key nonionic surfactant and functional building block. We support downstream partners with consistent quality, batch traceability, and fully transparent technical guidance for regulated applications.

    1. Nonionic Emulsifier in Rigid Polyurethane Foam Production

    Producers of rigid polyurethane foams use this material to improve cell structure, surface finish, and dimensional stability in insulation panels and construction boards. Its chemical composition controls cell nucleation and dispersion during polymer expansion, which is essential for achieving thermal conductivity and mechanical integrity in building materials. Our production expertise ensures tight batch-to-batch specification and compatibility with primary polyols and surfactants used by foam formulators.

    Industry compliance standards

    • ASTM D3575 (Flexible Cellular Materials)
    • EN 14315-1 (Thermal Insulating Products for Buildings)
    • REACH Regulation (EC) No 1907/2006 (Substance Registration and Use)
    • ISO 9001 Quality Management Systems

    Typical usage ratio

    • 1.5% – 4% by weight of total polyol resin; adjusted based on target density and blowing agent system

    Downstream process integration

    • Pre-blended with polyol components before polyaddition with isocyanate; facilitates uniform cell development during high-shear mixing and in continuous lamination lines

    Final product types

    • Closed-cell insulation panels
    • Refrigerator and appliance foams
    • Structural sandwich panels
    • Pipe and vessel insulation

    2. Dispersing Agent in Waterborne Epoxy Coatings

    Formulators of waterborne epoxy coatings for metal surfaces leverage the surfactant and dispersing properties of this ether to stabilize pigment slurries, control viscosity, and enhance leveling during film formation. Its amphiphilic structure helps maintain pigment distribution in challenging low-VOC environments, meeting modern environmental and performance requirements for corrosion protection coatings.

    Industry compliance standards

    • ISO 12944 (Corrosion Protection of Steel Structures by Protective Paint Systems)
    • EU Directive 2004/42/EC (VOC Content Limits)
    • GB/T 9754-2007 (Paints and Varnishes—Determination of Gloss)
    • ISO 14001 Environmental Management

    Typical usage ratio

    • 0.5% – 2.5% by total formulation mass; optimized by pigment volume concentration and resin system

    Downstream process integration

    • Introduced during millbase preparation; maintains pigment dispersion and viscosity control in the letdown phase before final coating application

    Final product types

    • Anti-corrosive steel primers
    • Low-VOC industrial topcoats
    • Marine container coatings
    • General machinery finishes

    3. Demulsifier Additive in Oilfield Chemicals

    Oilfield chemical manufacturers utilize this ether as a demulsifier intermediate to break water-in-oil emulsions during crude oil dehydration and desalting. Its molecular architecture enables targeted phase separation under high temperature and pressure, with consistent performance in oil–water separators and electrostatic treaters, supporting stable operations in upstream production facilities.

    Industry compliance standards

    • API RP 45 (Analysis of Oilfield Waters)
    • ISO 10414-1 (Field Testing of Drilling Fluids—Water-Based Fluids)
    • OSHA 29 CFR 1910 (Occupational Safety and Health Standards)
    • REACH Registration for Supplier Disclosure

    Typical usage ratio

    • 0.02% – 0.15% by emulsion volume, subject to crude composition and separation system requirements

    Downstream process integration

    • Dosed into production separators or crude dehydration units via injection pumps; acts during multiphase emulsion breakdown before downstream water treatment

    Final product types

    • Oilfield demulsifier concentrates
    • Ready-to-inject water clarifiers
    • Degassing system blends
    • Crude oil dehydration reagents

    4. Nonionic Surfactant in Textile Auxiliaries Manufacturing

    Textile auxiliary formulators employ this polyether as a nonionic wetting, cleaning, and emulsifying agent to improve fabric processing efficiency in pre-treatment and dyeing operations. Its low-foaming profile and thermal stability allow for effective removal of lubricants, waxes, and contaminants from synthetic and blended fibers, supporting high-speed continuous processing lines.

    Industry compliance standards

    • OEKO-TEX® Standard 100 (Textile Eco-Safety Certification)
    • ZDHC MRSL 3.0 (Zero Discharge of Hazardous Chemicals List)
    • GB 4287-2012 (Discharge Standard of Water Pollutants for Dyeing and Finishing)
    • ISO 14001 Environmental Management

    Typical usage ratio

    • 0.3% – 1.0% by fabric weight (owf); varies per process conditions and fabric loading

    Downstream process integration

    • Added at the scouring, pre-treatment, or dye bath stage; ensures thorough wetting and contaminant removal during high-temperature jet and overflow dyeing

    Final product types

    • Synthetic fiber scouring agents
    • Dyeing levelers for polyester and blends
    • Low-foam detergent concentrates
    • Textile soaping agents

    5. Emulsifier for Silicone Emulsion Synthesis

    Specialty chemical producers incorporate this polyether as a primary emulsifying agent in the synthesis of silicone oil emulsions. Its controlled hydrophilic–lipophilic balance supports the formation of stable, finely-dispersed silicone phases, critical for producing antifoam, softening, and release agent formulations in industrial and consumer sectors. Our material consistency ensures predictability in large-volume batch and continuous emulsion processes.

    Industry compliance standards

    • US FDA 21 CFR 176.200 (Silicone Release Agents for Paper/Paperboard in Contact with Food)
    • GB 15332-2019 (Industrial Silicone Emulsions)
    • REACH SVHC Compliance
    • ISO 9001 Quality Systems

    Typical usage ratio

    • 2% – 6% of silicone oil phase mass; adjusted according to target droplet size and emulsion stability

    Downstream process integration

    • Blended with silicone fluids and water phase under high-shear mixing during emulsion formation; supports stable droplet formation in batch or continuous reactors

    Final product types

    • Antifoam emulsion concentrates
    • Textile softener emulsions
    • Release agent formulations for paper and plastics
    • Water-based lubricant emulsions

    6. Polyol Modifier for Polycarbonate Synthesis

    Engineering plastics manufacturers utilize the polyether moiety to modify polyol precursors in melt or interfacial polycarbonate polymerizations. This influences polymer chain flexibility and impacts the optical clarity, processability, and impact resistance of engineering-grade polycarbonate resins, especially for specialty sheet and optical components required in regulated markets.

    Industry compliance standards

    • EN ISO 527 (Tensile Testing of Plastics)
    • UL 94 (Flammability Testing of Plastic Materials)
    • RoHS Directive (2011/65/EU)
    • REACH Regulatory Registration

    Typical usage ratio

    • Up to 1.5% of total diol mass; dosage determined by desired end-use mechanical and optical properties

    Downstream process integration

    • Co-fed with main bisphenol and carbonate source in polycondensation reactors; allows property fine-tuning at pre-polymer or finishing stages

    Final product types

    • Polycarbonate optical films
    • Impact-modified PC sheets
    • Precision-molded electrical housings
    • Automotive glazing panels
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    Certification & Compliance
    More Introduction

    Bisphenol A Polyoxypropylene Polyoxyethylene Ether: Performance Rooted in Chemical Precision

    From the Perspective of the Manufacturer

    Decades in chemical production have shown us that certain molecules outperform others in addressing the evolving needs of industry. Among our line-up, Bisphenol A Polyoxypropylene Polyoxyethylene Ether consistently proves itself as a foundation for specialty formulations. Many know its practical role in polyether manufacturing, but over time, our team uncovered broader functions: its structure bridges demands for balance—between hydrophobic and hydrophilic properties, temperature resilience, and chemical durability.

    Distinctive Structures, Concrete Results

    Our production of Bisphenol A Polyoxypropylene Polyoxyethylene Ether relies on strict control over raw material quality. Starting with high-purity Bisphenol A, every lot goes through precise propoxylation and ethoxylation sequences. Adjusting the mole ratio of propylene oxide and ethylene oxide, we fine-tune the molecular weight and HLB value. This approach supports adaptable performance, especially in emulsification and plastic modification applications.

    Unlike lower molecular weight surfactants, this product offers much more than basic wetting. The backbone formed by Bisphenol A ensures stability under heat and mechanical stress. Propylene oxide units deliver water resistance. Ethylene oxide segments grant compatibility with polar phases. By selecting the right grade, formulators can design products targeting anti-fog, anti-static, or plasticizing effects without sacrificing basic toughness or flexibility.

    Why End Users Value Our Approach

    Practical challenges drive our research. Frequently, buyers ask why we recommend this ether over simple polyether polyols or mono-functional polyethers. Here, structure matters. The aromatic core in Bisphenol A deepens chemical inertness and blocks migration of additives. In polycarbonate or epoxy resin blending, customers observe less yellowing and lower volatility compared to classic polyols. Industrial users of rigid foams and sealants often report greater resistance to deformation, even in physically demanding builds.

    Discussing applications, film manufacturers turn to this compound to solve haze, surface tension, and static problems. It doesn't just dissolve; it acts at an interface, altering the way raw plastics process or finish. The same feature gives paint and ink producers better pigment dispersion. Years of customer feedback reveal lower sag, fewer microbubbles, and less separation in final products.

    Consistency That Engineering Demands

    One question appears regularly: does Bisphenol A Polyoxypropylene Polyoxyethylene Ether handle production cycles with minimal fuss? The answer is rooted in each drum’s batch records and purified supply chain. Our skilled operators monitor polymerization parameters and confirm structural uniformity by GPC and FTIR analysis. These checks bypass issues associated with minor impurities, like premature crosslinking or gelling, that arise with less carefully managed competitors.

    As manufacturers, we see the gap between technical literature and factory realities. Some rivals present generic numbers and broad polymer types but cannot guarantee consistent quality across runs. Our process prevents shifts in viscosity and active content, reducing off-grade material and stoppages on automated lines. Polyurethane system installers and continuous-cast film lines, in particular, notice fewer disruptions after switching from commodity polyethers.

    Adaptation to Demanding Sectors

    Certain sectors constantly push the limits of material properties. Take electronics: anti-static coatings for device housings require Ethers that won’t migrate or leave residue on precision parts. Our Bisphenol A Polyoxypropylene Polyoxyethylene Ethers hold up where standard nonionic surfactants cannot—staying put even under repeated cleaning or exposure to solvents. The architecture resists hydrolysis, delivering durability for circuit protection that outlasts many alternatives.

    In fiber processing, especially synthetic textiles, spinners demand surfactants that control lubrication without sacrificing dyeability. Customers using our ether report lower yarn breakage, even during high-speed drawing. Since the molecular design leaves no ionic residue, final fabrics emerge cleaner and richer in shade retention during post-treatment. We see these outcomes firsthand within technical support reports and routine customer audits.

    Scalability and Customization

    Scaling-up isn’t as simple as increasing reactor volume. As manufacturers, the peculiarities of heat transfer, stirring, and reaction kinetics emerge during each scale jump. Our workflows benefit from in-house application labs and pilot plants, allowing small-run batches to translate into commercial quantity without shifts in specification. Adjusting the degree of propoxylation or ethoxylation, we support requests from industrial adhesives—demanding higher hydrophobicity—to cleaning agents, where maximum solubility helps target oily soils.

    Each year, new regulation or customer request arrives: lower VOC, better biodegradability, clarity under regulatory scrutiny. Instead of off-the-shelf tweaks, our chemists evaluate molecular adjustments, such as extending EO or PO chains or modifying end-group reactivity. Testing proceeds in collaboration with downstream users—some running automotive headlamp lens production, some blending into pressure-sensitive labels. Direct feedback lets us catch problems at the bench—not during large batch production.

    How This Ether Differs From Old-School Surfactants

    Tradition runs deep in chemistry—many stick with legacy alkylphenol ethoxylates or nonylphenol-based surfactants, even as regulatory pressure rises against persistent organics. Our experience shows a decisive shift when switching to Bisphenol A Polyoxypropylene Polyoxyethylene Ether: lower aquatic toxicity, greater biodegradability, and reduced environmental footprint. Independent testing verifies minimal bioaccumulation tendencies in effluent. For formulators, this means easier compliance and reduced downstream treatment costs.

    Early generations of polyethers sometimes failed at high temperature, lost function after repeated sterilization, or yellowed visibly after UV exposure. By contrast, the aromatic central structure of Bisphenol A in our ether helps maintain clarity, stability, and color for much longer. Coatings on electronics, panels, and display films keep their transparency—an advantage that older alkylphenol or straight PE/PP ethers can’t guarantee. Many of our clients in medical and food-contact plastics stress-test each batch for migration and extractables, finding that careful molecular design pays off in regulatory audits and final product reviews.

    Supporting Real-World Production Goals

    The world of manufacturing rarely offers a perfect fit. For some customers, viscosity control dominates the agenda; for others, minimizing haze or maximizing thermal life trumps every other factor. That’s why every batch of Bisphenol A Polyoxypropylene Polyoxyethylene Ether receives thorough real-time monitoring, covering both basic molecular benchmarks and application performance outcomes—foam stability, surface smoothness, process throughput.

    Downtime hurts more than most realize. Running a continuous production line for films or polyurethane panels means minor variation in a surfactant can translate to hours of lost time or failed output. Unlike variable lots from traders or casual suppliers, our integrated manufacturing eliminates unexpected stoppages due to composition swings. Each customer visit uncovers stories—machines kept idle as operators scramble to adjust mix ratios or clear fouled lines. Our technical staff often review these events and feed process improvements back into the plant. This loop delivers a level of predictability that end users in construction, packaging, or specialty fiber spinning bank on when margins grow tighter.

    Functionality for Changing Industry Standards

    Shifting standards in food contact, electronics, and health care present recurring challenges. Customers no longer accept general assurances—they require real numbers, test certificates, and traceable supply chains. Bisphenol A Polyoxypropylene Polyoxyethylene Ether, with its inert backbone and customizable EO/PO block ratio, adapts to stringent requirements. In-house QA teams track batch numbers, send out representative retains for outside analysis, and document compliance for migration, purity, and performance.

    As REACH and global hazardous substance laws advance, customers ask us to support safer formulations. Early replacement of alkylphenols in our product lines means formulators reduce risk for themselves and downstream users. Our documentation covers not just regulatory affairs but direct application data—demonstrated in panels, films, cleaning formulations, and composite parts. Plant managers and lab teams rely on prompt delivery of genuine samples for verification, knowing that repeat orders will show the same consistency batch after batch.

    Addressing Customer Hurdles at the Source

    Experience in chemical manufacturing leads to a unique understanding of customer bottlenecks. Polyurethane processors, resin manufacturers, and specialty foam makers bring us their compounding and process challenges. Some struggle with poor cell structure in foams or undesirable stickiness on finished plastics. Our laboratory partners run iterative trials, testing adjustments in propoxylation or ethoxylation, tuning viscosity or polarity to help their process. Each sample we recommend arises from parallel plant capabilities—not generic catalog numbers.

    Case histories from film manufacturing, for example, show how small differences in structure influence outcomes. One lot may give sharp improvement in surface release for labels; another, slightly off in EO content, causes slippage or haze under stress. We pay attention to these results, reviewing not only our raw material sources but every stage in blending and finishing. By managing every step ourselves, we reduce surprises.

    Durability That Goes Beyond Testing

    Claims about performance mean little if they don’t persist over the long term. Accelerated aging, weather exposure, repeated sterilization cycles—these conditions break down less robust molecules. Our Bisphenol A Polyoxypropylene Polyoxyethylene Ether builds on an understanding of aromatic resilience and the benefits of EO/PO flexibility. Finished plastics and coatings using our material keep their intended gloss, clarity, and surface properties even after months or years of use.

    Automotive interiors, appliance housings, flexible cables, and insulation products benefit from the stability embedded in our design. Where legacy materials degrade or become brittle, our ethers retain elasticity without excessive leaching or softening. Real-world customer returns confirm claims—components fabricated five or seven years ago keep performing, bearing out the value of careful synthesis and ongoing technical support.

    Dedicated Support from the Source

    Our doors and communication lines remain open for feedback, whether a client faces a mixing challenge or needs documentation to satisfy new compliance checks. We offer not only samples and test data but suggestions based on shared challenges. If a batch doesn’t perform, our technical teams dig into plant logs, raw material trends, and user feedback to identify the cause.

    Regular training—both in-house and at client sites—means operators and R&D staff handle Bisphenol A Polyoxypropylene Polyoxyethylene Ether with the confidence that comes from understanding its strengths and limitations. Close relationships with users build accountability on our side and transparency in the supply chain.

    Moving Toward Lower Environmental Impact

    The chemical industry faces growing scrutiny for its environmental track record. We see responsibility not as a buzzword, but as a mandate. In our Ether production, energy is conserved wherever feasible, waste streams are audited quarterly, and polymerization efficiency is maximized to lower unreacted monomer content. By eliminating persistent ingredients like nonylphenol, we steer customer formulations away from problematic chemicals, aiding in end-of-life product management and reducing ecological footprints.

    It’s not just about facing stricter laws. Many of our partners use life-cycle analysis to set purchasing standards. As manufacturers, we respond by offering the option for renewable-sourced EO or PO, supporting recycled raw material initiatives, or providing detailed LCA reports. Transparent reporting and willing adaptation have kept us in step with industry leaders.

    Every Batch Has a Story

    Behind every ton of Bisphenol A Polyoxypropylene Polyoxyethylene Ether lies a trail—raw material verification, pilot-scale testing, QA records, hands-on adjustments, and user feedback. Sometimes unheralded, these steps yield real results: products moving smoothly through compounding, films with clarity and lasting release, foams with reliable texture, and coatings that last longer. Manufacturing is more than reaction chemistry; it is sustained by collaboration, consistency, and accountability.

    The next generation of clients—those who care about product performance, environmental impact, and transparent sourcing—already ask sharper questions. As chemical producers, we value those challenges, knowing each one leads to a better, safer, and more useful product. Through all circumstances, our focus stays on delivering not just a raw material but a springboard for progress, supported by honest expertise and long-term investment in quality.