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A phosphite secondary antioxidant that decomposes hydroperoxides formed during polymer processing, protecting color and mechanical properties — engineered to work alongside Antioxidant 1010 for complete oxidative protection.
| Product Name | Antioxidant 168 (Tris(2,4-di-tert-butylphenyl) phosphite) |
|---|---|
| Brand | SUNNOX® 168 |
| CAS No. | 31570-04-4 |
| Chemical Category | Secondary Antioxidant (Phosphite) / Plastic Additive |
| Main Function | Decomposes hydroperoxides formed during polymer processing, protecting processing stability and color retention |
| Applications | Polyolefins, engineering plastics, film & fiber extrusion, compounding & masterbatch, food-contact polymers — see full list below |
Antioxidant 168 (SUNNOX® 168, CAS 31570-04-4) is a phosphite secondary antioxidant belonging to the same product category as Irgafos® 168, a widely recognized industry reference point. It is based on tris(2,4-di-tert-butylphenyl) phosphite and used across polyolefins, engineering plastics, and other polymer systems as a processing stabilizer.
As a secondary antioxidant, Antioxidant 168 decomposes hydroperoxides — unstable intermediates that form when polymers are exposed to heat and shear during processing. Left untreated, hydroperoxides break down into new free radicals and accelerate degradation. Antioxidant 168 converts them into stable, non-radical products before that chain reaction can restart, which is a different mechanism from a primary antioxidant such as Antioxidant 1010, which scavenges free radicals directly.
Processing-stage discoloration — hydroperoxide buildup during melt processing drives yellowing and loss of clarity, even when a primary antioxidant is already present. Reduced antioxidant system life — without a phosphite secondary, hydroperoxides accelerate the consumption of primary phenolic antioxidants, shortening their effective protection window. Quality consistency — as with any polymer additive, inconsistent performance from batch to batch creates unpredictable finished-product quality.
Antioxidant 168 helps hold color and clarity steady through repeated heat history in extrusion, injection molding, and compounding, and extends the effective protection window of the primary antioxidant it is paired with. Antioxidant 168 is frequently used alongside a primary antioxidant such as Antioxidant 1010 for broader, complementary protection — see the synergy section below.
| CAS No. | 31570-04-4 |
|---|---|
| Chemical Formula | C42H63O3P |
| Chemical Synonyms | Irgafos® 168; Irganox® 168; Songnox® 1680; Hostanox PAR 24; ADK Stab 2112; Alkanox 240; Tris(2,4-di-tert-butylphenyl) phosphite — full synonym list available on request |
| Melting Point | 181–184 °C (lit.) |
|---|---|
| Boiling Point | 594.2 °C at 760 mmHg |
| Flash Point | 394 °C |
| Appearance | Pending SUNCHEM confirmation — typical commercial form (e.g. powder/granule) to be confirmed against the actual sourced grade |
| Storage Recommendation | Pending SUNCHEM confirmation — phosphite antioxidants are generally moisture/hydrolysis-sensitive; specific storage temperature and shelf-life data to be confirmed |
| Antioxidant Type | Secondary (phosphite), hydroperoxide decomposer |
|---|---|
| Common Pairing | Frequently combined with a primary phenolic antioxidant — e.g. Antioxidant 1010 — for synergistic protection |
| Dosage | Pending SUNCHEM confirmation — varies by polymer and process; contact SUNCHEM's technical team for guidance specific to your application |
Melt-processing stabilizer that helps prevent chain scission and color degradation during extrusion and injection molding.
Processing stabilizer for higher-temperature compounding, where oxidation risk rises with processing temperature.
High-surface-area processes are especially oxidation-sensitive; helps maintain clarity and mechanical strength through repeated thermal cycling.
Standard co-stabilizer paired with a primary phenolic antioxidant, such as Antioxidant 1010, in stabilizer packages.
Used in food-contact resin systems in the industry.
Pending SUNCHEM confirmation of the specific regulatory reference (FDA/EU) for the sourced grade before this is stated as a compliance claim.
Antioxidant 168 (secondary, phosphite) and Antioxidant 1010 (primary, hindered phenolic) protect polymers at two different points in the oxidative degradation cycle. Antioxidant 1010 scavenges free radicals as they form, interrupting the chain reaction. Antioxidant 168 decomposes the hydroperoxides that accumulate as a by-product of that same reaction, before they can break down into new radicals and restart the cycle.
Used together, the two provide more complete and longer-lasting protection than either used alone — Antioxidant 168 also helps protect Antioxidant 1010 from being consumed too quickly, extending the useful stabilization window during high-temperature processing.
| Antioxidant 168 (SUNNOX® 168) | Antioxidant 1010 (SUNNOX® 1010) | |
| CAS No. | 31570-04-4 | 6683-19-8 |
| Type | Secondary antioxidant (phosphite) | Primary antioxidant (hindered phenolic) |
| Mechanism | Hydroperoxide decomposer | Free-radical scavenger |
| Primary Role | High-temperature processing stability | Long-term thermo-oxidative protection |
| Often Combined With | Antioxidant 1010 (see right) | Antioxidant 168 (see left) |
Antioxidant 168 and Antioxidant 1010 act through different, complementary mechanisms — peroxide decomposition versus radical scavenging. Combining them provides broader protection across both the high-heat processing stage and the long-term service life of the finished polymer, a standard antioxidant system pairing in the plastics industry. For a full breakdown of when to use each, or both, see Antioxidant 1010 vs 168: How to Choose. View Antioxidant 1010 →
SUNNOX® 168 is SUNCHEM's sourced equivalent to the phosphite antioxidant widely known by the trade name Irgafos® 168, sharing the same CAS number (31570-04-4) and chemical structure.
Sourcing SUNNOX® 168 requires careful verification of manufacturers, compliance with export documentation, and proper logistics management — including packaging and handling suited to a moisture-sensitive phosphite antioxidant. SUNCHEM supports global customers by connecting them with qualified Chinese producers and managing the key steps from sourcing to shipment.
We help customers identify suitable Chinese manufacturers based on product specifications, production scale, quality records, and export capability.
We coordinate documents including COA, SDS, TDS, product specifications, and other export-related documents required for international trade.
SUNCHEM works with experienced logistics partners to ensure safe and compliant shipment arrangements, including proper handling for moisture-sensitive materials.
Whether you require regular commercial supply, trial orders, or long-term procurement support, we match suitable supply sources to your requirements.
We help manage supplier communication, quality follow-up, shipment schedules, and supply chain stability.
Purity, packaging, and destination captured.
Manufacturers qualified for phosphite-antioxidant handling and consistency.
Assay, appearance, melting point verified against spec.
Scheduling and tracking managed with the manufacturer.
Pre-shipment inspection; COA and packing docs prepared.
Export documentation and compliance requirements handled.
Coordinated through to destination, one point of contact.
Phosphite antioxidants are moisture-sensitive, quality-sensitive inputs — small purity or handling variation can measurably affect polymer processing results. This process gives Antioxidant 168 buyers consistent, verified quality batch to batch, without managing supplier relationships in China directly.
Certificate of Analysis (COA), Safety Data Sheet (SDS), and Technical Data Sheet (TDS) are available upon request.
For a batch-specific Certificate of Analysis matching your order, or customer-specific documentation, contact our team — we'll provide current documents for your shipment.
Request COA / DocumentsTypical packaging options are available for Antioxidant 168. Contact SUNCHEM to confirm current packaging options for your order.
Minimum order quantities and lead times depend on current production and your specific requirements — contact SUNCHEM for a solution tailored to your order.
SUNCHEM manages export documentation and shipping coordination, arranged per order based on destination and customer requirements.
Antioxidant 168 is a phosphite processing stabilizer used during polymer manufacturing to protect against heat- and shear-induced oxidative degradation, primarily in polyolefins (PE, PP) and engineering plastics. It is typically used alongside a primary antioxidant such as Antioxidant 1010.
Antioxidant 168 is a secondary (phosphite) antioxidant that decomposes hydroperoxides; Antioxidant 1010 is a primary (phenolic) antioxidant that scavenges free radicals. They address different stages of polymer oxidative degradation and are commonly used together.
SUNNOX® 168 shares the same CAS number (31570-04-4) and chemical structure as the antioxidant widely known under the trade name Irgafos® 168. SUNCHEM sources it from qualified Chinese manufacturers as a specification-equivalent product.
Pending SUNCHEM technical confirmation. General industry practice ranges roughly 1:1 to 2:1, depending on resin and processing conditions — contact SUNCHEM's technical team for guidance specific to your application.
Pending SUNCHEM regulatory confirmation. A specific FDA/EU reference for the sourced grade has not yet been confirmed — contact SUNCHEM for current compliance documentation.
Pending SUNCHEM confirmation. Phosphite antioxidants are generally moisture-sensitive; contact SUNCHEM to confirm current packaging and storage recommendations.
Tell us your specification, application, and destination — SUNCHEM will manage supplier evaluation, quality verification, and export, from requirement to delivery.
Or contact our team directly — Email: david@sunchemgroup.com · Tel/WhatsApp: +86-18605204888
Antioxidant 168 is part of SUNCHEM's Polymer Antioxidants range — compare it with Antioxidant 1010, 1076, DSTDP, and DLTDP, or browse buyer guides for your application.
Antioxidant 1010 is part of SUNCHEM's Polymer Antioxidants range — compare it with Antioxidant 1076, 168, DSTDP, and DLTDP, or browse buyer guides for your application.
Looking for antioxidants specifically? Explore SUNCHEM's Antioxidants Knowledge Hub for product comparisons, buyer guides, and application fit across Antioxidant 1010, 1076, 168, DSTDP, and DLTDP.
Five antioxidant products across three chemistries — sourced, quality-verified, and export-managed by SUNCHEM for global polymer manufacturers.
Polymer oxidation follows a chain reaction: heat, UV radiation, mechanical shear, or metal contamination generates free radicals, which react with oxygen and continue the chain. Left unchecked, this leads to yellowing, embrittlement, melt-flow changes, and surface degradation.
Antioxidants interrupt this process in one of two ways — primary antioxidants scavenge free radicals directly, while secondary antioxidants decompose the hydroperoxide intermediates that would otherwise reinitiate the chain. Most real-world polymer systems use both, in combination. See the full explanation in How Antioxidants Improve Polymer Stability.
Note: thioesters (DSTDP, DLTDP) are mechanistically also secondary antioxidants — hydroperoxide decomposers, the same functional role as phosphites like Antioxidant 168. They are shown as a separate branch here because that is the more buyer-navigable grouping, not because the underlying chemistry differs from the secondary-antioxidant family.
| Product | CAS No. | Branch | Mechanism | Best For | |
|---|---|---|---|---|---|
| Antioxidant 1010 | 6683-19-8 | Primary | Radical scavenger | Default primary choice; broad polyolefin / engineering plastic use | View → |
| Antioxidant 1076 | 2082-79-3 | Primary | Radical scavenger | Lower melting point (50–52°C) — easier handling/dispersion in some processes | View → |
| Antioxidant 168 | 31570-04-4 | Secondary | Hydroperoxide decomposer | High-temperature processing stability | View → |
| DSTDP | 693-36-7 | Thioester | Hydroperoxide decomposer | Cost-effective long-term thermal aging | View → |
| DLTDP | 123-28-4 | Thioester | Hydroperoxide decomposer | Alternative to DSTDP, different chain length | View → |
Compare products directly:
Using only a primary antioxidant leaves hydroperoxides to accumulate. Using only a secondary antioxidant does not scavenge radicals during processing. Combining a primary with a secondary or thioester option addresses both degradation pathways — this is why paired systems, not single additives, are the industry-standard approach for polyolefins.
Antioxidant 1010 + 168 — the most widely used polyolefin system. Antioxidant 1010 + DSTDP — a cost-effective long-term stabilization option in PP/PE. Antioxidant 1010 + 168 + HALS — full stabilization for outdoor applications (HALS addresses UV exposure and is outside this hub’s current product scope).
Both are primary hindered-phenolic antioxidants. The verified difference between them is structural and physical: Antioxidant 1010 is a tetra-functional ester with a higher melting point, while Antioxidant 1076 is a mono-functional ester with a lower melting point (50–52°C), which can make it easier to handle or disperse in certain processes. Contact SUNCHEM’s technical team to discuss which fits your specific processing conditions.
Primary (1010 or 1076) combined with a secondary or thioester antioxidant for processing and long-term stability.
Primary antioxidant plus a thioester (DSTDP/DLTDP) for long-term buried or outdoor service.
Primary antioxidant plus Antioxidant 168 for high processing-temperature stability.
Primary + secondary combination for heat-cycling resistance across long service life.
Low-volatility primary antioxidant grade is typically preferred.
Primary hindered-phenolic antioxidants support long-term thermal and oxidative stability.
We evaluate and qualify manufacturers across phenolic, phosphite, and thioester antioxidant chemistries.
COA, SDS, TDS, and export-related documentation coordinated for whichever product or combination you need.
Direct discussion of cross-product questions — choosing between 1010 and 1076, or building a primary+secondary system.
Consistent export documentation and shipping coordination across the full antioxidant range.
Tell us your polymer system, processing conditions, and application — SUNCHEM will help you choose between primary, secondary, and thioester options, then manage sourcing from requirement to delivery.
Email: david@sunchemgroup.com · Tel/WhatsApp: +86-18605204888 · Offices: Yangzhou · Hong Kong · Osaka · Seoul
A reliable hindered phenolic primary antioxidant for polymer processing and long-term stability — sourced, quality-verified, and export-managed by SUNCHEM.
| Product Name | Antioxidant 1010 (Pentaerythritol Tetrakis[3-(3,5-Di-tert-butyl-4-hydroxyphenyl)propionate]) |
|---|---|
| Brand | SUNNOX® 1010 |
| CAS No. | 6683-19-8 |
| Chemical Category | Hindered Phenolic Primary Antioxidant / Plastic Additive |
| Main Function | Prevents oxidative degradation during processing and long-term service life |
| Applications | Polyolefins, engineering plastics, PVC & rubber, food-contact polymers, fibers & film, adhesives — see full list below |
Antioxidant 1010 (SUNNOX® 1010, CAS 6683-19-8) is a hindered phenolic primary antioxidant belonging to the same product category as Irganox® 1010, a widely recognized industry reference point. It is based on pentaerythrityl tetrakis[3-(3,5-di-tert-butyl-4-hydroxyphenyl)propionate] and used across a broad range of polymers, plastics, and elastomers.
As a primary antioxidant, Antioxidant 1010 acts as a free-radical scavenger — it interrupts the oxidative chain reaction that breaks down polymer molecules when they are exposed to heat, processing stress, or long-term environmental exposure.
Oxidation — untreated polymers degrade under heat and processing stress, leading to yellowing, embrittlement, and lost mechanical strength. Processing stability — without adequate protection, the polymer melt can break down during the repeated heat history of extrusion, injection molding, and fiber spinning, risking scrap and rework. Quality consistency — inconsistent antioxidant performance from batch to batch creates unpredictable finished-product quality, which is exactly why supplier verification and quality control matter as much as the raw specification.
Consistent antioxidant performance lets manufacturers hold mechanical and optical properties steady batch to batch, reduces reject/scrap rates tied to visible degradation, and supports the service-life claims manufacturers make to their own customers. Antioxidant 1010 is frequently used alongside secondary antioxidants such as Antioxidant 168 for broader, complementary protection — see comparison below.
| CAS No. | 6683-19-8 |
|---|---|
| Chemical Formula | C73H108O12 |
| Chemical Synonyms | Pentaerythritol tetrakis(3-(3,5-di-tert-butyl-4-hydroxyphenyl)propionate); tetrakis[methylene-3-(3',5'-di-tert-butyl-4'-hydroxyphenyl)propionate]methane |
| Density | 1.077 g/cm³ |
|---|---|
| Boiling Point | 1005.8°C at 760 mmHg |
| Melting Point | 115–118°C (dec.) |
| Flash Point | 247.3°C |
| Refractive Index | 1.535 |
| Form | Neat |
| pKa | 11.71 ± 0.40 (Predicted) |
| Storage Temperature | 2–8°C |
| Antioxidant Type | Primary (hindered phenolic), free-radical scavenger |
|---|---|
| Common Pairing | Frequently combined with secondary antioxidants (e.g. Antioxidant 168) for synergistic protection |
| Dosage | Varies by polymer and process — contact SUNCHEM's technical team for guidance specific to your application |
High processing temperatures and long service-life expectations make polyolefins especially reliant on stable, low-volatility primary antioxidant protection.
Higher processing temperatures raise oxidation risk during compounding and molding; Antioxidant 1010 helps hold color and mechanical strength steady.
Protects against oxidative degradation across a range of elastomer and PVC formulations.
Supports stabilization requirements relevant to food-contact packaging applications.
High-surface-area processes are especially oxidation-sensitive; low-volatility antioxidants resist plate-out during extrusion.
Also used as an antioxidant additive in adhesive, sealant, and lubricant/oil formulations.
Sourcing SUNNOX® 1010 requires careful verification of manufacturers, compliance with export documentation, and proper logistics management. SUNCHEM supports global customers by connecting them with qualified Chinese producers and managing the key steps from sourcing to shipment.
We help customers identify suitable Chinese manufacturers based on product specifications, production scale, quality records, and export capability.
We coordinate documents including COA, SDS, TDS, product specifications, and other export-related documents required for international trade.
SUNCHEM works with experienced logistics partners to ensure safe and compliant shipment arrangements, including proper handling for regulated materials.
Whether you require regular commercial supply, trial orders, or long-term procurement support, we match suitable supply sources to your requirements.
We help manage supplier communication, quality follow-up, shipment schedules, and supply chain stability.
Hindered phenolic antioxidants are quality-sensitive inputs — small purity or consistency variation can measurably affect polymer processing results. This process gives Antioxidant 1010 buyers consistent, verified quality batch to batch, without managing supplier relationships in China directly.
Download the current SUNNOX® 1010 Technical Data Sheet and Safety Data Sheet below.
Download TDS Download SDSFor a batch-specific Certificate of Analysis matching your order, or customer-specific documentation, contact our team — we'll provide current documents for your shipment.
Request COA / DocumentsTypical packaging options are available for Antioxidant 1010. Contact SUNCHEM to confirm current packaging options for your order.
Minimum order quantities and lead times depend on current production and your specific requirements — contact SUNCHEM for a solution tailored to your order.
SUNCHEM manages export documentation and shipping coordination, arranged per order based on destination and customer requirements.
| Antioxidant 1010 (SUNNOX® 1010) | Antioxidant 168 | |
|---|---|---|
| CAS No. | 6683-19-8 | 31570-04-4 |
| Type | Primary antioxidant (hindered phenolic) | Secondary antioxidant (phosphite) |
| Mechanism | Free-radical scavenger | Hydroperoxide decomposer |
| Primary Role | Long-term thermo-oxidative protection | High-temperature processing stability |
| Often Combined With | Antioxidant 168 (see right) | Antioxidant 1010 (see left) |
Antioxidant 1010 and Antioxidant 168 act through different, complementary mechanisms — radical scavenging versus peroxide decomposition. Combining them provides broader protection across both the high-heat processing stage and the long-term service life of the finished polymer, a standard antioxidant system pairing in the plastics industry. View Antioxidant 168 →
Tell us your specification, application, and destination — SUNCHEM will manage supplier evaluation, quality verification, and export, from requirement to delivery.
See more answers on PA grades, petroleum resins, PVA, and other polymer material topics in our full FAQ.
Browse Plastic Additives FAQ →See more answers on accelerators, antidegradants, documentation and other plastic and rubber additive topics in our full FAQ.
Browse Plastic Additives FAQ →See more answers on halogen-free options, ATH vs magnesium hydroxide, RoHS/REACH compliance, and other plastic additive topics in our full FAQ.
Browse Plastic Additives FAQ →Find answers about antioxidants, UV stabilizers, flame retardants, sourcing, documentation and more in our Plastic Additives FAQ.
Browse Plastic Additives FAQ →Answers about antioxidants, UV stabilizers, flame retardants and polymer additives for global buyers sourcing from China.
Suitability depends on the exact additive grade, polymer, use level, food type, temperature and destination market. A general technical grade should not automatically be described as food-contact compliant. Buyers should define the applicable regulation and request supporting declarations, substance identity, purity data and migration or extraction information where required. SUNCHEM can check available documentation for a specific product and supplier, but the finished-material manufacturer remains responsible for confirming compliance of the final formulation and article.
Yes. UV absorbers and HALS are frequently used together because they protect the polymer through different mechanisms. The UV absorber reduces the amount of damaging radiation entering the material, while the HALS suppresses radical reactions caused by photo-oxidation. The optimum ratio depends on polymer type, article thickness, pigment system, outdoor exposure and service-life target. Compatibility must also be checked because acidic additives, certain pigments and some flame-retardant systems can reduce HALS effectiveness.
Yes. COA, SDS and TDS are available for suitable products. Availability depends on the exact product, manufacturer, destination market and order stage. Additional declarations or test reports can be checked case by case after the buyer provides the product, application and regulatory requirements.
SUNCHEM supplies selected branded product lines and can evaluate custom specifications or alternative grades through qualified manufacturing partners. Feasibility depends on chemistry, volume, test methods, regulatory requirements and development cost. Custom products require technical review and sample approval before commercial supply.
Yes. SUNCHEM can support scheduled deliveries, annual-volume planning, specification management, quality documentation and supply-risk coordination for approved products. Commercial terms depend on forecast accuracy, product availability, payment terms and destination logistics.
Sample support is available for qualified evaluation projects, subject to product type, supplier policy, quantity, destination and shipping restrictions. Please provide the product or CAS number, target application, required quantity and courier details. Hazardous or restricted products may require additional review.
Migration and blooming usually occur when an additive has limited compatibility with the polymer, is used above its solubility limit, or is exposed to heat over time. Plate-out may also result from volatility, decomposition or interaction with lubricants and other formulation components. These problems can often be reduced by choosing a higher-molecular-weight or polymeric grade, lowering dosage, improving dispersion and checking the complete additive package. Processing temperature, cooling conditions and storage tests should be included in the evaluation.
Start with the polymer, processing temperature, residence time, expected service temperature and required regulatory status. PP and PE commonly use a hindered phenolic antioxidant together with a phosphite, while long-term heat ageing may require a thioester synergist. ABS and engineering plastics may need additives with higher thermal stability, lower volatility or better colour control. Other formulation components, including pigments, fillers, recycled resin and flame retardants, can change the required package. The final formulation should therefore be validated by melt-flow, colour, oven-ageing and application-specific testing.
Send the product name or CAS number, required specification, quantity, application, destination port, preferred Incoterm and documentation requirements. These details allow SUNCHEM to confirm a suitable supply source, packaging, lead time and freight basis before issuing a quotation.
Selection begins with the polymer and the required fire standard, such as a target UL 94 rating, limiting oxygen index or smoke requirement. Phosphorus-based systems are commonly considered for PC/ABS, epoxy and intumescent polyolefin applications; melamine-based products are used in selected polyamides; and mineral flame retardants such as aluminum hydroxide or magnesium hydroxide require relatively high loadings. Mechanical properties, processing temperature, moisture sensitivity, electrical performance and colour must be evaluated together with flame resistance. A material described as halogen-free should also be checked against the customer's specific regulatory or test definition.
There is no universal dosage. Antioxidants, UV stabilizers and flame retardants have very different use levels, and the effective concentration depends on the polymer, processing history, product thickness, exposure conditions and performance target. Supplier starting ranges can be used for initial trials, but the lowest-cost formulation is not always the lowest dosage because synergistic combinations may perform better. Final dosage should be established through laboratory compounding and tests such as colour, melt-flow retention, oven ageing, weathering and the required flammability standard.
Plastic additives are selected according to the degradation or processing problem that must be controlled. Primary antioxidants interrupt oxidation reactions, while secondary antioxidants decompose hydroperoxides formed during processing. UV absorbers absorb harmful ultraviolet energy, and hindered amine light stabilizers (HALS) slow photo-oxidation. Flame retardants reduce ignition or flame spread, while processing aids, lubricants, nucleating agents and other specialty additives improve manufacturing or end-use performance. The correct package depends on the polymer, processing temperature, service environment and regulatory requirements.
Please provide the polymer type and grade, processing method and maximum processing temperature, existing formulation, problem to be solved, target service life, exposure conditions, required test standard and destination-market compliance needs. For replacement projects, include the current additive name, dosage and performance gap. This information allows a supplier to compare suitable antioxidant, light-stabilizer, UV-absorber or flame-retardant options and reduces unnecessary trial work.
UV absorbers protect polymers by absorbing ultraviolet radiation and converting it into less harmful energy. HALS do not mainly absorb UV light; instead, they interrupt the photo-oxidation cycle and regenerate during the stabilization process. UV absorbers are especially useful where sufficient material thickness allows effective absorption, while HALS are highly effective in many outdoor plastics, coatings and thin articles. In demanding applications, a UV absorber and a HALS are often combined to improve colour retention, gloss and mechanical-property retention.
A plastic additive is the functional chemical itself, while a masterbatch is a concentrated mixture of additives or pigments dispersed in a carrier resin. Masterbatch can simplify dosing, reduce dust and improve dispersion, but the carrier and active-content level must be compatible with the final polymer and process.
Primary antioxidants, commonly hindered phenols, donate hydrogen to free radicals and help stop the oxidation chain reaction during processing and service life. Secondary antioxidants, such as phosphites and thioesters, decompose hydroperoxides before they generate additional radicals. They are often used together because the combination provides better processing stability and longer-term heat ageing protection than either type alone. Selection and dosage should be confirmed through formulation trials because polymer type, temperature and exposure conditions strongly affect performance.
SUNCHEM supplies antioxidants, light stabilizers, UV absorbers, flame retardants, optical brighteners, polymerization inhibitors and selected processing additives from qualified Chinese manufacturers. Core product lines include SUNNOX® antioxidants, SUNLIGHT® HALS, SUNSORB® UV absorbers and SUNFR® flame retardants. Availability, specification and documentation depend on the exact grade and intended application.
SUNCHEM can help screen Chinese supply options against the buyer's target specification, application and documentation requirements. Equivalent-grade evaluation should compare chemical identity, active content, physical properties, impurity profile and performance in the customer's formulation. A proposed alternative should not be treated as automatically interchangeable; sampling and application testing remain necessary before commercial approval.
Compare product identity, test methods, batch consistency, impurity profile, colour, volatility, packaging, documentation, production capacity and change-control practices. Also evaluate whether the supplier understands the application, can support samples and complaints, and can maintain supply during raw-material or logistics disruptions. A lower unit price may create higher total cost if quality variation causes production loss or reformulation.
Most plastic additives should be kept in unopened original packaging in a cool, dry, well-ventilated area away from heat, direct sunlight and moisture. Liquid phosphites and hygroscopic products may require tighter moisture control, while powders should be protected from contamination and caking. Shelf life depends on the exact grade, packaging and storage conditions, so the supplier's product-specific recommendation should be followed.
Buyers should review the current specification, recent COA, SDS, TDS, manufacturing origin, packaging, shelf life and any required regulatory declarations. For sensitive applications, confirm test methods, impurity limits, registration status, food-contact support, RoHS or REACH information and change-control procedures. Documents should match the exact grade and manufacturer rather than a generic product name.
Yellowing can result from excessive processing temperature, long residence time, an unsuitable antioxidant package, interactions with pigments or flame retardants, or contamination in recycled resin. It can often be reduced by improving temperature control, using a more hydrolytically stable phosphite, balancing primary and secondary antioxidants, and checking additive purity and compatibility. Comparative colour testing after extrusion and heat ageing is essential before changing the formulation.
Antioxidant 1010 is a high-molecular-weight hindered phenolic antioxidant with very low volatility and is widely used in polyolefins, engineering plastics, elastomers and adhesives. Antioxidant 1076 is also a hindered phenol, but it has a lower molecular weight and can offer easier incorporation in some polymer systems. Both provide long-term thermal oxidation protection. The preferred grade depends on polymer type, processing temperature, volatility requirements, colour target and the other stabilizers in the package.
DSTDP and DLTDP are thioester secondary antioxidants used mainly when long-term heat-ageing performance is important. They are commonly combined with hindered phenolic antioxidants in polyolefins, wire and cable compounds, automotive parts and other applications exposed to elevated temperatures. They are less focused on initial colour than phosphites and more focused on extended thermal stability. Compatibility, odour, extraction resistance and regulatory requirements should be checked for the final application.
Antioxidant 1010 is a primary antioxidant that interrupts free-radical oxidation, while Antioxidant 168 is a phosphite secondary antioxidant that decomposes hydroperoxides formed during processing. Using them together provides complementary protection against melt-processing degradation and longer-term ageing. The ratio should be optimized for the polymer, processing temperature, recycled content, colour requirements and expected service life.
A properly selected UV absorber normally has limited effect on visible transparency at recommended use levels, but some grades can contribute a slight initial colour or haze, especially at higher dosages or in very clear articles. Dispersion, additive purity, polymer compatibility and processing temperature all influence appearance. Transparent applications should be evaluated using haze, yellowness index and light-transmission measurements.
Both are benzotriazole UV absorbers used to protect polymers from ultraviolet degradation. Their differences in molecular structure affect absorption profile, volatility, thermal stability, compatibility and performance in specific polymers. UV 326 is commonly used in polyolefins, PVC, ABS and coatings, while UV 327 may be selected where lower volatility or different compatibility is required. Direct substitution should be confirmed through formulation and weathering tests.
The choice depends on polymer type, film thickness, required service life, processing temperature and the presence of pigments or fillers. Benzotriazole UV absorbers are widely used because of their broad UV absorption and thermal stability. Thin films often benefit from a combined package containing both a UV absorber and a HALS. Final selection should be validated through accelerated weathering and outdoor exposure testing.
Low-molecular-weight HALS generally disperse easily and can provide rapid stabilization, but they may be more prone to migration or extraction. High-molecular-weight or oligomeric HALS usually offer lower volatility, better extraction resistance and longer service life, which is valuable in films, fibres and outdoor articles. The best choice depends on polymer compatibility, article thickness, exposure conditions and contact with water, detergents or chemicals.
Agricultural film requires strong UV protection together with resistance to pesticides, sulfur-containing chemicals and repeated outdoor exposure. High-molecular-weight HALS are commonly considered for long service life, but the final grade must be compatible with the film resin, thickness and agrochemical environment. Sulfur-resistant or less basic HALS may be needed in demanding greenhouse applications. Validation should include accelerated weathering and chemical-exposure testing.
Conventional HALS contain basic amine functionality. Acidic pigments, halogenated flame-retardant systems, acidic fillers or certain catalyst residues can interact with or deactivate the HALS, reducing light-stabilization efficiency. In such formulations, formulators may consider less basic or NOR-type HALS, adjust the additive package, or use acid scavengers where appropriate. Compatibility testing is necessary because the interaction depends on the full formulation.
Yes. High flame-retardant loading can reduce impact strength, elongation, flow or surface quality, while some products may be moisture-sensitive or thermally unstable at the polymer processing temperature. Proper particle size, surface treatment, dispersing conditions and synergists can reduce these effects. Flame performance must be balanced with mechanical, electrical and processing requirements rather than optimized in isolation.
Both are halogen-free mineral flame retardants that release water endothermically and can reduce smoke. Aluminum hydroxide decomposes at a lower temperature and is commonly used in EVA, thermosets, cable compounds and construction materials processed below its decomposition range. Magnesium hydroxide has higher thermal stability and is more suitable for polymers processed at higher temperatures. Both often require relatively high loading, so particle size, surface treatment and mechanical-property retention are important.
Available halogen-free options may include phosphate esters such as BDP and RDP, ammonium polyphosphate, melamine-based systems, DOPO derivatives, aluminum hydroxide and magnesium hydroxide. Selection depends on the polymer, processing temperature, target fire rating, smoke requirements and mechanical-property limits. Regulatory status must be confirmed for the exact product and supply chain.
Provide the polymer and grade, target UL 94 rating, test thickness, processing temperature, colour, mechanical-property requirements, electrical requirements and any halogen-free or smoke restrictions. It is also important to identify fillers, pigments, glass fibre and other additives because they can change flame performance. A supplier can suggest a starting system, but the finished compound must be tested by the responsible manufacturer or an accredited laboratory.
DOPO is a reactive phosphorus-containing flame-retardant intermediate used in epoxy resins and other thermosetting systems, including selected electronic laminates, encapsulants and composite applications. It is often used to introduce phosphorus into the polymer structure, but formulation and curing performance must be validated in the final resin system.
TBBPA, or tetrabromobisphenol A, is a brominated flame retardant used mainly as a reactive component in epoxy resins for printed circuit board laminates and, in some applications, as an additive in polymers such as ABS. The suitable grade and use level depend on the resin system, target fire standard and destination-market requirements.
Reactive flame retardants chemically bond into the polymer or resin network during manufacture, which can reduce migration and improve permanence. Additive flame retardants are physically blended into the polymer and are generally easier to formulate across different materials. Reactive systems are common in selected epoxy, polyurethane and unsaturated polyester applications, while additive systems are widely used in thermoplastics. The choice affects processing, mechanical properties, recyclability and regulatory performance.
Yes. Excessive dosage may produce a bluish or greenish cast, uneven colour, fluorescence saturation or migration. The optimum level is often low and depends on the base resin, pigments, fillers and article thickness. Dosage should be established by colour measurement and visual comparison under relevant lighting.
Selection depends on polymer compatibility, processing temperature, colour target, migration resistance and required transparency. A brightener suitable for PVC may not be ideal for high-temperature engineering plastics. Comparative trials should evaluate dosage, whiteness, hue, thermal stability and long-term colour retention.
An optical brightener absorbs ultraviolet light and re-emits part of it as blue visible light, reducing the visual effect of yellowing and making white or light-coloured plastics appear brighter. It does not remove the underlying cause of degradation, so antioxidant and light-stabilizer packages may still be required.
Nucleating agents promote faster and more uniform crystallization in polypropylene. They can shorten moulding cycles and improve stiffness, dimensional stability or clarity depending on the grade. Performance depends on resin type, cooling conditions, dosage and dispersion.
Processing aids can improve melt flow, fusion, dispersion, surface finish, release or throughput. Their function depends on the polymer and process. They may reduce melt fracture in extrusion, improve PVC fusion, assist filler dispersion or lower equipment deposits. Selection must consider downstream properties and possible migration.
Internal lubricants reduce friction within the polymer melt and can improve flow, while external lubricants reduce adhesion between the polymer and metal processing surfaces. Many formulations require a balance of both. Excess lubricant can reduce fusion, printing, bonding or mechanical properties, so dosage should be optimized experimentally.
Yes. Inhibitors can be consumed by oxygen, radicals, contaminants, heat or light over time. Long storage, elevated temperature and poor circulation may create uneven inhibitor levels. Users should follow product-specific monitoring, temperature-control and replenishment procedures and should not rely only on the original loading concentration.
Selection starts with the monomer chemistry, process temperature, oxygen availability, storage duration and downstream polymerization method. Some inhibitors require dissolved oxygen to work effectively, while others are used for high-temperature processing or emergency protection. Removal or residual-inhibitor requirements must also be considered.
A polymerization inhibitor slows or prevents unwanted polymerization during manufacture, storage and transport of reactive monomers. It helps reduce heat generation, viscosity increase, gel formation and equipment fouling. The inhibitor type and concentration must match the monomer, oxygen level, storage temperature and expected holding time.
Yes. Recycled polymers often require restabilization because previous processing and service life have consumed part of the original additive package. Antioxidants, compatibilizers, odour-control products, chain extenders or light stabilizers may be considered. The correct package depends on contamination, degradation level and target application.
SUNCHEM supplies selected thiazole, sulfenamide, thiuram, dithiocarbamate and guanidine accelerators, including products such as MBT, MBTS, CBS, TBBS, TMTD and DPG. The correct accelerator or blend depends on elastomer type, cure rate, scorch safety, processing conditions and regulatory requirements.
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Answers about antioxidants, UV stabilizers, flame retardants and polymer additives.
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Browse FAQs →A quick look at the questions global buyers ask us most. Browse the categories above for the full knowledge base.
SUNCHEM supplies specialty chemicals across several categories, including pharmaceutical and fine chemical intermediates, plastic and polymer additives, agrochemical intermediates, organic solvents, food additives, and water treatment chemicals, sourced through self-operated production lines and a network of selected Chinese manufacturers.
Our quality inspection team works with a long-term cooperation GLP laboratory to verify test results. If a customer's test results differ from the supplier's, we arrange independent third-party testing to confirm accuracy, authenticity and reliability before the order moves forward.
Yes. Depending on the product and supplier, we can provide TDS, SDS/MSDS, COA, product specifications and other export-related documentation to support your import and quality-check requirements.
Yes. Every supplier we work with goes through a qualification audit, site visit and sample testing before approval, and we continue to evaluate factories on criteria such as production standards, environmental protection facilities and laboratory capability.
Yes. We support customization across catalysts, pharmaceutical intermediates, plastic and resin additives, and specialized chemical reactions, working with manufacturers to match your specific formulation or process requirements.
We support buyers worldwide from our offices in Yangzhou, Hong Kong, Osaka and Seoul. Import and export requirements vary by destination, so our team confirms applicable documentation, packaging and compliance requirements for each shipment.
Our team reviews your intended application, processing method and target performance requirements, then helps you compare suitable products or grades from our manufacturer network before you commit to an order.
Yes. Many of our customer relationships are built on repeat sourcing and long-term supply arrangements, supported by consistent quality control, supplier management and logistics coordination on every order.
Common questions from global buyers about sourcing, quality and working with SUNCHEM.
SUNCHEM supplies specialty chemicals across several categories, including pharmaceutical and fine chemical intermediates, plastic and polymer additives, agrochemical intermediates, organic solvents, food additives, and water treatment chemicals, sourced through self-operated production lines and a network of selected Chinese manufacturers.
Our quality inspection team works with a long-term cooperation GLP laboratory to verify test results. If a customer's test results differ from the supplier's, we arrange independent third-party testing to confirm accuracy, authenticity and reliability before the order moves forward.
Yes. Depending on the product and supplier, we can provide TDS, SDS/MSDS, COA, product specifications and other export-related documentation to support your import and quality-check requirements.
Yes. Every supplier we work with goes through a qualification audit, site visit and sample testing before approval, and we continue to evaluate factories on criteria such as production standards, environmental protection facilities and laboratory capability.
Yes. We support customization across catalysts, pharmaceutical intermediates, plastic and resin additives, and specialized chemical reactions, working with manufacturers to match your specific formulation or process requirements.
We support buyers worldwide from our offices in Yangzhou, Hong Kong, Osaka and Seoul. Import and export requirements vary by destination, so our team confirms applicable documentation, packaging and compliance requirements for each shipment.
Our team reviews your intended application, processing method and target performance requirements, then helps you compare suitable products or grades from our manufacturer network before you commit to an order.
Yes. Many of our customer relationships are built on repeat sourcing and long-term supply arrangements, supported by consistent quality control, supplier management and logistics coordination on every order.



