Bisphenol A

    • Product Name: Bisphenol A
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications
    HS Code
    Product Name Bisphenol A
    Iupac Name 4,4'-(propane-2,2-diyl)diphenol
    Cas Number 80-05-7
    Ec Number 201-245-8
    Molecular Formula C15H16O2
    Molar Mass 228.29 g/mol
    Appearance White to light brown solid, flakes, crystals, or powder
    Odor Faint phenolic odor
    Density 1.195 g/cm3 at 25 °C
    Melting Point 158–159 °C
    Boiling Point 360 °C at 760 mmHg; 220 °C at 4 mmHg
    Water Solubility 120 mg/L at 25 °C
    Solubility Soluble in ethanol, acetone, acetic acid, and benzene; slightly soluble in water
    Logp 3.32
    Pka 9.6–10.2
    Vapor Pressure 5.3e-6 Pa at 25 °C
    Flash Point 227 °C closed cup
    Autoignition Temperature 510 °C
    Refractive Index 1.599

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

    Packing & Storage
    Packing 500 g of Bisphenol A in a sealed, amber glass bottle with hazard labels and a secure screw cap.
    Container Loading (20′ FCL) Chemical Bisphenol A is loaded in 20′ FCL containers, palletized in bags/drums, properly secured and labeled for sea transport.
    Shipping Bisphenol A is shipped as a solid in sealed fiber drums, bags, or lined containers. It may be regulated as UN 3077, Class 9, PG III, environmentally hazardous substance/marine pollutant when applicable. Follow DOT/IATA/IMDG marking, labeling, and documentation rules. Keep cool, dry, away from oxidizers, and prevent environmental release.
    Storage Store bisphenol A in a cool, dry, well-ventilated area, away from heat, sparks, and open flames. Keep containers tightly closed, labeled, and upright. Separate from strong oxidizers, acids, and bases. Avoid dust generation and use appropriate personal protective equipment. Protect from moisture and direct sunlight. Provide spill containment and follow local hazardous-chemical storage regulations.
    Shelf Life Bisphenol A is stable under recommended storage conditions; no specific shelf life if kept cool, dry, and protected from light.
    Application of Bisphenol A

    What Actually Limits Molecular Weight Build in a BPA/Phosgene Interfacial Train?

    In an interfacial polycarbonate train, purified BPA is first dissolved in aqueous sodium hydroxide to form the disodium bisphenolate salt. The organic phase consists of phosgene in methylene chloride. Polycondensation proceeds at the liquid-liquid interface, and molecular weight is controlled not by a temperature ramp but by the addition of a monofunctional chain stopper, usually p-tert-butylphenol. A polycarbonate-grade BPA specification is not interchangeable with standard-grade material: acceptance requires purity of 99.85 wt% or higher, free phenol below 100 mg/kg, iron below 0.2 mg/kg, water below 0.1 wt%, and a Pt-Co colour number below 20 under ASTM D1209. Free phenol acts as a monofunctional chain stopper; an incoming batch running 150 mg/kg free phenol can shift melt flow rate upward by several units and move a product from injection-molding grade toward a lower-viscosity extrusion grade. Iron above the specification promotes yellowing and hydrolysis, while residual water consumes phosgene and generates chloride contamination. After polymerisation, the methylene chloride phase is washed with dilute hydrochloric acid and deionised water to remove residual sodium chloride and sodium hydroxide. The resin is recovered by steam precipitation or devolatilizing extrusion. The final pellet must be dried to below 0.02 wt% moisture before injection molding; higher moisture produces splay, bubbles, and molecular weight reduction at melt temperatures in the range of 280–320 °C.

    ParameterPC grade acceptanceTest methodProcessing consequence of deviation
    Purity≥99.85 wt%GC or HPLC assayImpurities alter chain end balance and optical clarity
    Free phenol≤100 mg/kgGC after derivatisationRaises melt flow rate; lowers molecular weight
    Water≤0.1 wt%ISO 760 Karl FischerConsumes phosgene; increases hydrolytic degradation
    Iron≤0.2 mg/kgICP-OESColour shift and hydrolysis catalysis
    Colour≤20 Pt-CoASTM D1209Visible yellowing in finished sheet and lenses

    Melt transesterification represents an alternative BPA-to-polycarbonate route. Molten BPA is mixed with diphenyl carbonate at 170–180 °C, and phenol is removed under vacuum to shift equilibrium. Vacuum levels in the finishing reactor must fall below 1 mbar; insufficient vacuum leaves residual phenol, which terminates chains and prevents target molecular weight. Temperature must be bounded to avoid Fries rearrangement, which introduces branched sites and colour bodies. Twin-screw compounding of BPA-derived polycarbonate with impact modifiers requires barrel temperatures of 250–300 °C and an L/D ratio above 40:1 for dispersion of low-density modifiers. Melt flow rate is measured under ISO 1133-1:2022 at 300 °C with 1.2 kg load. Injection-molding grades typically run 10–15 g/10 min; extrusion and sheet grades run 2–4 g/10 min. Unfilled BPA-based polycarbonate has tensile yield strength of 60–70 MPa under ASTM D638-14. Notched Izod impact can exceed 600 J/m, but these values vary with molecular weight distribution and end-cap composition.

    End products include optical disc substrates, automotive headlamp lenses, medical device housings, and glazing sheet. Optical disc substrate molding uses injection-compression equipment with clamp force of 250–350 t, a mould temperature of 80–110 °C, and cycle time below 5 seconds for CD/DVD replication. Residual stress birefringence measured at 633 nm must remain below 50 nm double pass in optical grades. For medical devices, ISO 10993-1:2018 requires biological evaluation according to contact duration and tissue type; USP Class VI classification of the resin is not a substitute for device-level testing. Food contact polycarbonate in the United States is covered under FDA 21 CFR 177.1580. In the EU, Regulation 10/2011 as amended by 2018/213 sets a BPA specific migration limit of 0.05 mg/kg food, and Directive 2011/8/EU prohibits BPA-based polycarbonate in infant feeding bottles. Processing incompatibilities include strong alkalis, amines, and ketones; molded parts exposed to these environments can show stress cracking and embrittlement.

    Liquid DGEBA Hydrolysable Chlorine Constraints in High-Shear Dispersion

    Liquid epoxy resin derived from BPA is manufactured by etherification of BPA with epichlorohydrin in a sodium hydroxide-catalyzed reaction, followed by dehydrochlorination. Epichlorohydrin is charged in large molar excess to suppress chain extension; the excess is recovered under vacuum. The washed, dehydrated resin is filtered and tested. The dominant specification parameter for electrical and electronic applications is hydrolysable chlorine, measured under ASTM D1726-11. Standard bisphenol-A liquid epoxy resins have an epoxide equivalent weight of 182–192 g/eq under ASTM D1652-11 and dynamic viscosity at 25 °C of 11,000–14,000 mPa·s under ISO 3219. Low-chlorine grades intended for semiconductor encapsulants can specify hydrolysable chlorine below 0.05 wt%; standard coatings grades may permit up to 0.50 wt%. Hydrolysable chlorine matters because it is released during cure as chloride ions, which corrode copper traces and accelerate electrochemical migration in humid conditions.

    In high-shear dispersion for structural adhesives and composite matrices, the resin is mixed with an amine hardener at a stoichiometric ratio calculated from epoxide equivalent weight and amine hydrogen equivalent weight. Off-ratio mixing by more than ±5% from stoichiometry shifts the final network from glassy to leathery because unreacted amine or unreacted epoxy remains as plasticizer. Vacuum mixing equipment with a paddle-and-scraper geometry operating below 50 mbar reduces air entrapment. Pot life at ambient temperature can drop below 30 min in fast polyamide systems, which constrains large-panel infusion schedules. The cured network has a glass transition temperature that depends on hardener type and post-cure; aromatic amine systems can reach 180–220 °C after full cure.

    Wind blade shell infusion uses BPA-based epoxy with a long open time and low initial viscosity. A resin-side viscosity below 500 mPa·s at 25 °C is required for adequate wet-out of glass and carbon spar caps; higher viscosity produces dry fibre regions and exothermic accumulation in the shear web. Aerospace prepregs use BPA-based epoxy with dicyandiamide hardener and latent urea accelerators; cure is staged at 120–130 °C in an autoclave at 6 bar outer pressure. Fibre volume fraction is measured by acid digestion or thermogravimetric analysis; deviations above ±2% from panel specification alter interlaminar shear strength. Electrical laminate applications use BPA-based epoxy in FR-4 formulations. The resin is dissolved in a low-boiling solvent and coated onto glass cloth before B-staging. The drying oven must remain below the resin gel point; residual solvent above 2 wt% after B-staging causes voids in the pressed laminate. The finished FR-4 laminate must meet ANSI/IPC-4101 slash sheet requirements and UL 94 V-0 flame classification. Laminate buyers specify hydrolysable chlorine below 0.05 wt% because chloride residues can migrate to copper traces under humidity and accelerate electrochemical migration.

    Powder coatings based on solid BPA epoxy resins use a carboxyl-functional polyester hardener. The extruder premix is run at 90–110 °C screw temperature to avoid premature reaction, then ground to a median particle size below 35 μm. The cured film must pass ISO 1519 cylindrical bend and ASTM D2794 impact tests. Overbaking above 200 °C causes yellowing in white appliance finishes.

    In a two-piece drawn and ironed beverage can line, pre-coated aluminium or tinplate coil is fed into a cupping press at speeds above 3,000 cups per minute. The internal protective coating is a high-molecular-weight BPA-based epoxy crosslinked with a phenolic or amino resin, applied to a dry film thickness of 5–10 μm and cured at a peak metal temperature of 200–205 °C for 10–15 seconds. The coating must survive ironing, necking, and flanging without cracking or delamination; this requires a balance between crosslink density and flexibility. Higher crosslink density improves corrosion resistance but reduces formability in the neck area. BPA content in the resin is not the only regulatory variable; residual BPA and BADGE migration into the beverage are controlled under EU Regulation 2018/213, which sets a specific migration limit of 0.05 mg/kg food for BPA and prohibits BPA-based epoxy coatings for infant food contact articles. In the United States, FDA 21 CFR 175.300 governs resinous and polymeric coatings; end-use extraction limits are determined by food type and coating surface ratio.

    Formulation adjustments for drawn cans include the use of solid epoxy resins with an epoxide equivalent weight above 2,500 g/eq and a xylene/butanol solvent blend. The coil line applies the coating by reverse roll; wet film thickness is derived from dry film target divided by volume solids. If volume solids are 35–45 %, a wet film of 15–25 μm is required. Failure modes appear as blush, pinhole corrosion, and feathering at the can shelf. Migration testing under EN 1186-14 uses food simulants such as 3% acetic acid and 10% ethanol; test temperature and time are selected according to the worst foreseeable conditions of use.

    ReferenceConditionTest regimeOperational boundary
    EU Regulation 2018/213BPA specific migration limit 0.05 mg/kg food; no BPA-based coatings for infant food contactFood simulants 3% acetic acid and 10% ethanol; HPLC/LC-MS/MSCoating must survive can necking without cracking; repeated-use testing according to article use
    FDA 21 CFR 175.300Resinous and polymeric coatings; extraction limits depend on food type and surface-to-volume ratioEnd-use extraction with distilled water, heptane, 8% ethanol, and 50% ethanol as appropriateCoating must be fully cured; single-use and repeated-use articles are evaluated separately

    Polysulfone Membrane Casting Demands a Narrow Intrinsic Viscosity Window

    Polysulfone is synthesized from BPA disodium salt and 4,4′-dichlorodiphenyl sulfone in a dipolar aprotic solvent such as dimethyl sulfoxide or N-methyl-2-pyrrolidone. The polycondensation is a nucleophilic aromatic substitution; water must be removed by azeotropic distillation with toluene before the main polymerization is advanced. The molecular weight of the dried polymer is not monitored by melt flow rate alone. Membrane manufacturers specify reduced viscosity in chloroform at 25 °C at 0.20 g/dL under ASTM D2857; typical membrane-grade polysulfone values fall between 0.45 and 0.60 dL/g. A resin below the window tends to form brittle hollow-fibre walls, while a resin above the window increases dope viscosity and produces uneven macrovoid collapse.

    The casting dope is prepared by dissolving polysulfone in NMP at 12–18 wt% with a pore former such as polyvinylpyrrolidone. The dope is filtered through 5–10 μm absolute cartridges before entering the spinneret. Phase inversion is carried out in a water bath held at 20–30 °C; the air-gap distance between spinneret face and water surface is adjusted within ±5 mm to control the skin layer. After coagulation, the fibre is rinsed to remove residual solvent. Residual NMP in medical grades is measured by gas chromatography; manufacturing targets are below 500 mg/kg before drying.

    End products include hemodialysis hollow-fibre membranes, steam-sterilizable surgical instrument trays, and aircraft interior panels. Medical devices made from BPA-based polysulfone are tested under ISO 10993-1:2018; a USP Class VI classification applies to the resin but does not exempt the finished device from its own biological evaluation. Polysulfone withstands autoclave cycling at 121 °C and hot air at 150 °C, but it is attacked by polar organic solvents such as dichloromethane, NMP, and dimethylformamide. Melt processing requires barrel temperatures of 330–385 °C and resin moisture below 0.05 wt%; hydrolysis at these temperatures releases phenoxy chain ends and lowers viscosity.

    Flue gas desulfurization service exposes vinyl ester laminates to a condensing acidic film at 50–80 °C, containing chlorides and sulphur oxides. The resin system is a BPA-based epoxy methacrylate dissolved in styrene at 40–50 wt%. Cure is initiated with methyl ethyl ketone peroxide at 1.0–2.0 parts per hundred resin; gel time at 25 °C is typically 20–40 minutes. An inner surfacing veil with a 0.5 mm chemical-resistant layer is used because the structural laminate alone cannot tolerate wet chlorides; the veil resin is formulated with a higher resin-to-glass ratio than the structural laminate.

    Laminates for tanks and ducts are qualified under ASTM C581 by measuring flexural strength and flexural modulus retention after immersion in the service chemical at design temperature. A common acceptance criterion is retention of at least 80% of flexural strength after 6–12 months of exposure. Piping systems follow ISO 14692 and the long-term hydrostatic strength methodology in ASTM D2992. In filament winding, the winding angle for a pressure-rated pipe is ±55° relative to the axis, which balances hoop and axial stress. Exotherm during thick laminate construction can exceed 140 °C if the lay-up exceeds 8–10 mm in one shot; the result is microcracking and loss of corrosion resistance. Fabricators therefore limit single-pass thickness or use a lower styrene content and longer gel time.

    Vinyl ester based on BPA epoxy methacrylate has a tensile elongation of 4–6% and a heat distortion temperature of 105–115 °C when measured under ASTM D648. The methacrylate groups are crosslinked by free-radical polymerisation; secondary hydroxyl groups along the BPA epoxy backbone provide wetting to glass fibre. In strong alkali service above pH 12, the ester linkages can hydrolyse; fabricators therefore use a surface mat with a caustic-resistant upper layer rather than relying on the BPA epoxy methacrylate alone. End products include scrubber shells, storage tanks, effluent ducts, and pump suction piping. Styrene emission is controlled under local VOC regulations; ventilation must maintain workplace exposure below the relevant occupational exposure limit. BPA-based vinyl ester linings are not intended for direct food contact and do not fall under the EU 2018/213 food contact threshold, but leachate from potable water tanks may be regulated under national drinking water approval schemes.

    When Thermal Paper Exits the Polymer Sector, REACH Annex XVII Entry 66 Applies

    Bisphenol A has a non-polymer application as an acidic colour developer in thermal paper. The thermal layer contains a leuco dye and a developer; when the print head applies heat, the developer melts and opens the leuco dye ring to generate the visible image. This is a physical solid-state interaction rather than a permanent chemical bond, which means BPA remains available on the paper surface and can transfer to skin. Under EU Regulation 2016/2237, BPA is restricted in thermal paper placed on the EU market at a concentration equal to or greater than 0.02 % by weight after 2 January 2020. The restriction is in REACH Annex XVII Entry 66. Receipt producers, coating converters, and importers must therefore verify incoming thermal paper by solvent extraction followed by HPLC or LC-MS/MS quantification.

    Thermal paper formulations affected by the restriction have shifted to alternative developers such as BPS, D-8, and Pergafast 201. For industrial BPA suppliers, the thermal paper segment now represents a compliance liability rather than a growth application. Any export batch intended for thermal paper use in the EU requires a certificate of analysis with a test method capable of quantifying BPA below 0.02 wt%. Outside Europe, the application continues in point-of-sale receipts and event tickets, but supply contracts increasingly reference the EU limit as a global specification baseline.

    Free Quote

    Competitive Bisphenol A prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please contact us at +8618136850665 or mail to admin@ascent-chem.com.

    We will respond to you as soon as possible.

    Tel: +8618136850665

    Email: admin@ascent-chem.com

    Inquiry

    Get Free Quote of Ascent Petrochem Holdings Co., Limited

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    Bisphenol A (4,4′-(propane-2,2-diyl)diphenol, CAS 80-05-7, EC 201-245-8) is supplied as white prills, flakes, or crystalline powder with a molecular formula C15H16O2 and molecular weight 228.29 g/mol. The solidification point of purified material falls between 155 °C and 156 °C when determined by ASTM D4493; the melt density is approximately 1.20 g/cm³ at 20 °C. Commercial bisphenol A is manufactured by acid-catalysed condensation of phenol and acetone, followed by purification to remove 2,4′-isomer, phenol, water, and iron. Two principal grades dominate downstream use: a polycarbonate grade with p,p′-BPA assay ≥99.90% by HPLC area percent and an epoxy resin grade with p,p′-BPA assay ≥99.50%. The product specification is not determined solely by assay; trace phenol, iron, and colour can shift polymerisation kinetics and final resin colour.

    Representative industrial specification envelope for bisphenol A grades used in polycarbonate and liquid epoxy resin production
    ParameterPolycarbonate gradeEpoxy resin gradeTest basis
    p,p′-BPA isomer≥99.90%≥99.50%HPLC area percent
    Phenol≤0.10%≤0.20%GC or HPLC
    Iron≤0.2 mg/kg≤0.5 mg/kgICP
    Molten colour≤10 APHA≤20 APHAASTM D1209
    Moisture≤0.10%≤0.20%Karl Fischer
    Solidification point≥154.5 °C≥153.0 °CASTM D4493

    What Limits Melt Transesterification Grade Bisphenol A During Polycarbonate Polymerization?

    In melt transesterification, bisphenol A and diphenyl carbonate are oligomerised under vacuum in a sequence of stirred reactors and twin-screw devolatilisation extruders. A typical line may use a horizontal gravity-driven reactor operating at 280–300 °C and pressures stepping from 100 mbar down to 0.5–2.0 mbar(abs) before pelletisation. Residual phenol in the BPA feed below 0.10% alters the stoichiometric balance and reduces molecular weight growth; a phenol value exceeding 0.15% can leave the melt strength too low for stable strand pelletising, and devolatiliser condensers must remove larger phenol loads at the oligomer stage.

    Trace iron acts as a thermal-oxidative catalyst. In a twin-screw devolatiliser with L/D ratio 36–44 and barrel temperatures 300–320 °C, iron above 0.5 mg/kg can produce measurable yellowness increases, although the precise kinetic response depends on residence time and oxygen partial pressure. Polycarbonate grade therefore specifies iron ≤0.2 mg/kg. Molten colour in the raw monomer is controlled by ASTM D1209. Published technical bulletins note that vent-line fouling increases when low-molecular-weight oligomer is entrained in the vacuum stream; this failure mode is not caused by BPA alone but by deviation from the target melt-phase stoichiometry and inadequate demister temperature control.

    The p,p′-isomer limit is also a hard boundary. 2,4′-BPA accumulates in the polymer as a chain irregularity; excessive ortho-substituted units reduce the glass transition temperature and affect clarity. For optical polycarbonate, monomer with p,p′-BPA ≥99.95% is preferred because haze and colour shifts are measured on 3.2 mm injection-moulded plaques under ASTM D1003. Published data for this specific configuration is limited, but supplier certificate-of-analysis templates generally link high-isomer feed to stabilisation of batch-to-batch melt flow rate.

    In epoxy resin synthesis, the alkaline condensation of bisphenol A with excess epichlorohydrin produces a diglycidyl ether resin (DGEBA). The epoxide equivalent weight is controlled by the initial molar excess, typically 1:6 to 1:10 epichlorohydrin to bisphenol A for liquid resin, followed by dehydrochlorination with aqueous sodium hydroxide. A standard liquid DGEBA resin exhibits an epoxide equivalent of 170–190 g/eq when titrated by ASTM D1652 and a Brookfield viscosity of 8,000–14,000 mPa·s at 25 °C. Higher-molecular-weight solid resins are produced by chain extension and can reach epoxide equivalents of 450–600 g/eq. The BPA backbone introduces aromatic ether segments that raise resin viscosity relative to bisphenol F diglycidyl ether; the central dimethylmethylene bridge restricts chain rotation and increases steric demand around the glycidyl ether, which is relevant in high-shear dispersion of pigment pastes and in vacuum-assisted resin transfer moulding.

    In curing with a stoichiometric amount of a liquid aliphatic amine or polyetheramine, the gel time of a standard liquid DGEBA at 25 °C typically falls between 20 min and 60 min for a 100 g mass under ASTM D2471. The value is formulation-specific and cannot be transferred between curing agents. Bisphenol A epoxy resins are also used in amine-cured floor coatings and in anhydride-cured composites where the aromatic backbone contributes to compressive strength and glass transition after cure. The limitation of BPA-based DGEBA is its tendency to crystallise at low storage temperatures; warming to 50–60 °C is usually required to restore pumpable viscosity, and repeated freeze-thaw cycles can nucleate crystallisation that blocks drum unloading lines.

    Thermal and Rheological Signatures Across Bisphenol A, F, S, and AF Monomer Structures

    Bisphenol A differs from bisphenol F, bisphenol S, and bisphenol AF primarily in the central bridging group. Bisphenol A contains a dimethylmethylene bridge; bisphenol F contains a methylene bridge; bisphenol S contains a sulfonyl bridge; bisphenol AF contains a hexafluoroisopropylidene bridge. The bridge controls monomer melting point, resin viscosity, polymer free volume, and thermal oxidation behaviour.

    Comparative monomer and commercial resin parameters for bisphenol A, F, S, and AF
    Bisphenol monomerCentral bridgeMolecular weightMelting/solidification rangeLiquid epoxy resin viscosity at 25 °C
    Bisphenol ADimethylmethylene228.29 g/mol155–156 °C8,000–14,000 mPa·s
    Bisphenol FMethylene200.23 g/mol159–162 °C3,000–5,000 mPa·s in typical DGEBF resin
    Bisphenol SSulfonyl250.27 g/mol245–250 °CSolid at 25 °C; typically formulated as a high-heat polycarbonate or polysulfone monomer
    Bisphenol AFHexafluoroisopropylidene336.23 g/mol161–163 °CViscosity data not comparable because fluorinated resin is typically used in optical and low-water-absorption formulations

    The BPA-based diglycidyl ether is the benchmark aromatic epoxy resin because it provides a balance of modulus, adhesion, and cost, but its relatively high viscosity and crystallisation tendency are not shared by bisphenol F systems. In polycarbonate, BPA-derived polymer typically shows a glass transition temperature near 147–150 °C by differential scanning calorimetry at 20 K/min. Bisphenol S copolymers shift the glass transition upward because the sulfonyl bridge is polar and rotationally confined; bisphenol AF introduces fluorinated methyl groups that reduce water uptake and refractive index. The choice of bisphenol is not a simple drop-in substitution: halogen-free flame-retardant packages, mould-release interactions, and ultraviolet stabiliser solubility all change when the bridging group is altered.

    When Bisphenol A Moves from Reactor to Food-Contact Polycarbonate Under EU and FDA Compliance

    Bisphenol A-based polycarbonate is used in food-contact articles only where the regulatory status of the specific article permits it. In the European Union, polycarbonate infant feeding bottles have been prohibited since 2011 under Regulation (EU) No 321/2011. For varnishes and coatings, Regulation (EU) 2018/213 specifies a specific migration limit for bisphenol A of 0.05 mg/kg food or food simulant, expressed as the sum of bisphenol A and its conjugates, and the substance is subject to restricted use in certain food-contact plastics under national measures. In the United States, polycarbonate resins that contact food may be assessed under 21 CFR 177.1580, which covers polycarbonate resins, and the monomer is also relevant to the general safety clause of 21 CFR 174.5. Compliance is not determined by monomer purity alone; migration testing must be performed on the finished article using the prescribed simulants and contact time/temperature conditions of Commission Regulation (EU) No 10/2011 or FDA migration guidance.

    Production of food-contact polycarbonate requires segregated silos, dedicated pneumatic conveying lines, and documented flush procedures to avoid cross-contact with non-compliant additives. Residual phenol and unreacted bisphenol A in the final resin are not the only migration species; hydrolytic degradation during retort conditions can release bisphenol A from polycarbonate surfaces when high-temperature aqueous food contact exceeds the validated use condition. A moulded polycarbonate article tested in 3% acetic acid at 100 °C for 2 h may show detectable migration well before the polymer mechanical failure threshold is reached. Published supplier declarations record compliance as a function of the specific additive formulation, not as an inherent property of BPA monomer.

    Prior to injection moulding, BPA-derived polycarbonate pellets are dried to a moisture content below 0.02% using a desiccant dryer with a dew point of −40 °C or better and an inlet air temperature of 120 °C for 3–4 h. Residual moisture above 0.03% generates splay, silver streaks, and molecular weight loss at melt temperatures of 270–310 °C. The melt flow rate of general-purpose polycarbonate is commonly measured at 300 °C under a 1.2 kg load according to ISO 1133-1:2022 or ASTM D1238, with values typically between 6 g/10 min and 18 g/10 min depending on molecular weight. For thin-wall optical parts, higher-flow grades are used, but high-flow BPA-based polycarbonate may require higher clamp force and shorter residence time. Injection moulding machines operating with clamping force from 1,800 kN to 12,000 kN are typical depending on projected area and part wall thickness; BPA-based polycarbonate requires a reduced screw compression ratio relative to polyethylene because the melt is stiff and sensitive to shear heating.

    In compounding, the BPA-derived resin is blended with flame retardants, impact modifiers, and hydrolytic stabilisers in co-rotating twin-screw extruders. A representative extrusion setup uses L/D ratio 32–40, modular screw elements with kneading blocks in the melt-mixing zone, and a screw speed of 300–600 rpm for medium-scale lines. The extruder is vented to 0.4–0.8 bar vacuum to remove moisture and low-molecular-weight volatiles. The compounded material is filtered through melt filtration with mesh ratings of 200–325 mesh count per inch before pelletisation. Unfiltered gels from overheated BPA-derived polycarbonate can cause black specks in injection-moulded parts, and standard quality control uses ASTM D1003 haze and ASTM E313 yellowness index measurements on 3.2 mm plaques.

    Alkaline Hydrolysis Is the Dominant Failure Mode in Flame-Retardant Polycarbonate Blends

    Bisphenol A polycarbonate is hydrolytically stable in neutral and mildly acidic aqueous conditions at room temperature, but alkaline environments cleave the carbonate linkage. In flame-retardant formulations that use phosphate ester additives or silicone-based anti-dripping agents, residual alkalinity from additive carriers can initiate surface hydrolysis during compounding. The hydrolytic degradation follows a chain-scission pathway that reduces molecular weight and impact strength. Alkaline stress-cracking screens for BPA-derived polycarbonate are run at pH 10–12 and 23–40 °C; visible surface crazing in stressed mouldings can occur within 24 h under these conditions. The failure mode is accelerated by moulded-in stress and by contact with amine-containing cleaning chemicals. The incompatibility extends to amine-cured epoxy coatings applied to polycarbonate: primary amines can attack the carbonate bond, and solvent blends containing ketones or chlorinated hydrocarbons promote environmental stress cracking. In epoxy resin form, BPA-based DGEBA is routinely cured with amine curatives, but the amine is consumed by reaction with the oxirane ring; unreacted amine in the cured network is kept within the stoichiometric tolerance of the formulation to avoid plasticisation and alkaline hydrolysis of ester linkages in adjacent substrates.

    For flame-retardant BPA polycarbonate, the UL 94 vertical burn classification is determined on 0.75 mm, 1.5 mm, and 3.0 mm specimens. The addition of potassium diphenyl sulfone sulfonate or other halogen-free salts at 0.1–1.0 wt% can enable V-0 performance without brominated flame retardants, but the chosen salt must not generate metal-hydroxide residues that catalyse hydrolysis. Published data for this specific configuration is limited; therefore, each compound is validated on the production twin-screw line under UL 94 and ISO 180 notched Izod impact protocols. Operational boundaries include maintaining melt temperature below 310 °C and avoiding residence times above 6 min in the extruder to limit colour shift.

    Occupational handling of bisphenol A as a raw material uses closed-loop pneumatic conveying where possible because the powder has a minimum ignition energy and can form combustible dust clouds when suspended in air. Dust explosibility is assessed under EN 14034 or ASTM E1226. The product should be stored in cool, dry conditions at or below 40 °C in sealed hoppers; long-term exposure to ultraviolet light should be avoided because photolytic discoloration of the aromatic monomer affects downstream colour. Rinsing and cleaning of process equipment after molten BPA service requires hot alkaline water or suitable solvent; the melt solidifies below 154 °C and can plug narrow transfer lines if steam tracing is interrupted. Worker exposure is limited by engineering controls and personal protective equipment because bisphenol A is classified as a reproductive toxicant under Regulation (EC) No 1272/2008 and is subject to occupational exposure banding in some jurisdictions.

    Top