Cashew Nut Shell Liquid (CNSL): From Cashew Processing By-Product to Reactive Bio-Based Raw Material for Coating Resins
Cashew Nut Shell Liquid (CNSL): From Cashew Processing By-Product to Reactive Bio-Based Raw Material for Coating Resins
1 Material Positioning of Cashew Nut Shell Liquid (CNSL)
1.1 CNSL is a naturally derived reactive phenolic raw material
Cashew Nut Shell Liquid, abbreviated as CNSL, is a dark, viscous liquid extracted from cashew nut shells. It is derived from a non-edible by-product generated during cashew processing. Rich in phenolic compounds, it can be used as a raw material for coating resins, adhesives, friction materials, composites, and functional polymers.
CNSL differs from rosin, shellac, dammar resin, and natural lacquer in its role in coatings. The core value of CNSL lies in its ability to provide reactive phenolic hydroxyl groups, long-chain alkyl groups, and unsaturated bonds. As a naturally derived phenolic raw material, it can be incorporated into epoxy resins, polyurethane resins, phenolic resins, alkyd resins, and other systems to adjust resin hydrophobicity, flexibility, adhesion, and bio-based content.
Comparison Item | CNSL | Traditional Natural Varnish Resins |
Source | Cashew nut shell processing by-product | Plant exudates, animal secretions, or natural resin blocks |
Main composition | Phenolic compounds such as cardanol, cardol, anacardic acid, and 2-methylcardol | Resin acids, triterpenes, natural polyesters, etc. |
Main role | Reactive resin raw material, modifier, curing-agent raw material | Film formation, sealing, gloss enhancement, decoration |
Coating value | Improves hydrophobicity, flexibility, adhesion, and bio-based content | Provides transparency, gloss, sealing, or a traditional appearance |
Method of use | Mostly requires chemical conversion before use | Can be used directly or after simple dissolution |
Key limitations | Color, odor, purity, batch stability, and reaction control | Yellowing, brittleness, insufficient resistance, or aging |
1.2 Sources and types of CNSL
CNSL is present in the honeycomb-like structure of cashew nut shells. Its composition varies significantly depending on the extraction and processing method. It is generally classified into natural CNSL, technical CNSL, and distilled CNSL.
Type | Production Method | Compositional Characteristics | Application Characteristics |
Natural CNSL | Cold pressing or solvent extraction | High anacardic acid content; contains cardol, 2-methylcardol, and a small amount of cardanol | Suitable for further separation and chemical conversion |
Technical CNSL | Heat treatment, roasting, or hot extraction | Anacardic acid is decarboxylated to form cardanol, increasing the cardanol content | More commonly used in industrial applications |
Distilled CNSL | Distillation and refining of technical CNSL | Higher cardanol content and fewer impurities | Suitable for preparing high-performance resin raw materials |
Anacardic acid in natural CNSL readily decarboxylates into cardanol during heating. Therefore, technical CNSL and distilled CNSL often contain cardanol as the main component.
1.3 Main value of CNSL in coating resins
The value of CNSL in coatings comes from its unique structure. It contains phenolic hydroxyl groups, long-chain alkyl groups, and unsaturated bonds, allowing it both to participate in reactions and to improve resin hydrophobicity and flexibility.
Coating Value | Specific Contribution |
Natural origin | Derived from cashew processing by-products, helping increase the proportion of renewable content |
Phenolic hydroxyl reactivity | Can participate in the design of phenolic, epoxy, polyurethane, and other systems |
Long-chain alkyl groups | Provide hydrophobicity, flexibility, and an internal plasticizing effect |
Unsaturated bonds | Can participate in oxidation, addition, epoxidation, or crosslinking reactions |
Aromatic ring structure | Helps improve resin cohesion and heat resistance |
Chemical convertibility | Can be used to prepare polyols, epoxy diluents, curing agents, phenolic resins, and alkyd resin modifiers |
2 Core Structure–Property Relationships of CNSL
2.1 Main components: cardanol, cardol, anacardic acid, and 2-methylcardol
CNSL is a mixture of various substituted phenolic compounds, mainly including cardanol, cardol, anacardic acid, 2-methylcardol, and small amounts of other components. Cardanol is one of the important industrial derivatives of CNSL and is usually a mixture of monophenolic homologues containing C15 saturated side chains or side chains with different degrees of unsaturation.
Component | Structural Characteristics | Significance for Coating Resins |
Cardanol | Monophenolic structure, usually containing a C15 saturated side chain or side chains with different degrees of unsaturation | Moderate reactivity; suitable for preparing epoxy-, phenolic-, and polyurethane-related raw materials |
Cardol | Diphenolic structure with a C15 unsaturated long chain | Higher reactivity; can improve crosslinking or curing capability |
Anacardic acid | Contains both a carboxyl group and a phenolic hydroxyl group, with a C15 unsaturated long chain | High content in natural CNSL; can decarboxylate into cardanol upon heating |
2-Methylcardol | Substituted diphenolic structure with a long-chain alkyl group | Affects reactivity, color, and compositional stability |
Polymers and heavy components | Formed during heat treatment or storage | Affect color, viscosity, odor, and reaction stability |
2.2 Phenolic hydroxyl groups and reactivity
The phenolic hydroxyl groups in CNSL molecules are key structural units that allow CNSL to participate in resin synthesis. Phenolic hydroxyl groups can participate in phenolic condensation, epoxy ring-opening, and amination reactions. They can also serve as starting points for preparing curing agents, reactive diluents, and polyols.
Reaction Direction | Significance for Coating Resins |
Phenolic condensation | Can be used to prepare CNSL-modified phenolic resins |
Epoxidation reaction | Can be used to prepare cardanol-based epoxy diluents or epoxy resins |
Amination or Mannich reaction | Can be used to prepare epoxy curing agents or curing-accelerating structures |
Hydroxylation or polyol formation | Can be used to prepare bio-based polyols for polyurethane |
Salt formation or emulsification modification | Helps with the design of waterborne systems |
2.3 Long-chain alkyl groups, hydrophobicity, and flexibility
CNSL derivatives usually contain C15 long-chain alkyl groups. This long-chain structure is an important reason why CNSL differs from ordinary phenol. It can reduce resin polarity, improve hydrophobicity, and positively influence coating-film flexibility and impact resistance.
Structural Role | Effect on Coating-Film Performance |
Improved hydrophobicity | Reduces water sensitivity and improves water resistance and moisture resistance |
Improved flexibility | Reduces excessive resin rigidity and lowers the risk of brittleness and cracking |
Internal plasticizing effect | Improves coating-film toughness and application flow |
Improved substrate wetting | Helps wet metals, wood, and some low-polarity substrates |
Reduced brittleness from excessive crosslinking | Helps adjust toughness in epoxy and phenolic systems |
2.4 Unsaturated bonds and further modification
The side chains of CNSL contain different degrees of unsaturation. Naturally derived cardanol is usually a mixture of components with different degrees of unsaturation, including saturated, monoene, diene, and triene structures. Unsaturated bonds bring two types of effects:
Function | Positive Effect | Risk |
Oxidative crosslinking | Can improve film formation and curing capability | May cause color darkening or storage deterioration |
Epoxidation | Can be used to prepare epoxidized cardanol derivatives | Requires strict reaction control |
Addition reaction | Can introduce new functional groups | Product composition may become complex |
Polymerization | Can increase molecular weight and coating-film cohesion | May lead to viscosity increase or gelation |
Retention of hydrophobic side chains | Improves flexibility and water resistance | Excessive amounts may reduce hardness and heat resistance |
3 Main Modification Routes of CNSL
3.1 CNSL-modified phenolic resins
CNSL contains phenolic structures and can partially replace phenol in the synthesis of phenolic resins. Because CNSL molecules contain long-chain alkyl groups, CNSL-modified phenolic resins usually show better flexibility, hydrophobicity, and impact resistance.
Modification Effect | Significance for Coating Applications |
Improved hydrophobicity | Improves water resistance, moisture resistance, and corrosion-protection-related performance |
Improved flexibility | Reduces the brittleness of conventional phenolic resins |
Improved adhesion | Helps bonding to metals and porous substrates |
Improved chemical resistance | Aromatic phenolic structures and crosslinked structures provide a basis for resistance |
Use of renewable raw materials | Reduces partial dependence on petrochemical phenolic raw materials |
3.2 CNSL-modified epoxy resins
CNSL derivatives can be used in epoxy systems. Common approaches include preparing cardanol-based epoxy diluents, epoxy resin modifiers, epoxy curing agents, or curing accelerators. The long-chain structure of CNSL can improve the flexibility and impact resistance of conventional epoxy systems.
Application Form | Main Function |
Cardanol-based epoxy diluent | Reduces system viscosity and improves application properties |
CNSL-modified epoxy resin | Improves hydrophobicity, flexibility, and adhesion |
CNSL-based epoxy curing agent | Improves toughness, wet adhesion, and water resistance |
CNSL-based Mannich base | Improves low-temperature curing and applicability on damp surfaces |
Raw material for waterborne epoxy curing agents | Used in the design of waterborne protective coating systems |
3.3 CNSL-based polyurethane polyols
CNSL itself is not a typical polyol, but CNSL-based hydroxyl-containing polyols can be prepared through phenolic resin formation, hydroxylation, epoxide ring-opening, Mannich reaction, or other methods, and then used in polyurethane resins. Polyurethane, or PU, is an important resin system widely used in coatings, adhesives, sealants, and elastomers. Functionally modified CNSL-based polyols can be used in PU coatings, adhesives, and foam materials.
Note: Raw CNSL or cardanol usually cannot be directly regarded as equivalent to conventional polyether or polyester polyols. In actual PU systems, hydroxylation, epoxide ring-opening, phenolic resin formation, Mannich reaction, or other functionalization methods are generally required to increase hydroxyl functionality and improve reaction controllability.
CNSL Structural Contribution | Effect on PU Systems |
Long-chain alkyl groups | Improve flexibility and hydrophobicity |
Phenolic aromatic structure | Improves heat resistance and cohesion |
Adjustable hydroxyl value | Controls soft/hard segment structure and crosslink density |
Natural origin | Increases the proportion of renewable content |
Internal plasticizing effect | Improves low-temperature flexibility and coating-film toughness |
3.4 CNSL-modified alkyd resins
Alkyd resins are usually prepared from polyols, polyacids, and fatty acids, and are important film-forming resins in traditional coatings. CNSL or cardanol can be used to modify alkyd resins, using their phenolic hydroxyl groups, aromatic rings, and long-chain unsaturated structures to improve coating-film performance.
Modification Direction | Possible Effect |
Introduction of hydrophobic long chains | Improves water resistance and flexibility |
Introduction of phenolic structures | Improves adhesion and cohesive strength |
Use of unsaturated side chains | Participates in oxidative drying or subsequent crosslinking |
Partial replacement of oils or phenolic raw materials | Increases bio-based content |
Adjustment of drying and hardness | Affects surface drying, through drying, and final film properties |
4 Application Directions of CNSL in Coatings
4.1 Protective coatings, epoxy flooring, and industrial coatings
CNSL derivatives are widely used in protective coatings, epoxy flooring, and industrial coatings. The main reason is that their hydrophobic long chains, phenolic structures, and reactive groups help improve coating-film adhesion, water resistance, flexibility, and application properties.
Application Requirement | Role of CNSL Derivatives |
Application properties | CNSL-based reactive diluents can reduce viscosity and improve leveling and high-solids application |
Wet adhesion | CNSL-based curing agents help improve adhesion to complex substrates or damp surfaces |
Flexibility | C15 long chains can reduce brittleness in epoxy systems |
Water resistance | Hydrophobic side chains reduce water sensitivity |
Corrosion protection | Improves barrier properties, adhesion stability, and coating-film integrity |
Curing adjustment | CNSL-based curing agents can change curing speed and pot life |
Bio-based content | Increases the proportion of renewable content in the resin |
4.2 PU coatings, adhesives, and sealants
CNSL-based polyols can be used in PU coatings, adhesives, and sealants. Their long-chain structures help improve flexibility and hydrophobicity, making them suitable for systems that require water resistance, toughness, and adhesion. For CNSL-based PU materials, attention should also be paid to hydroxyl value, functionality, viscosity, isocyanate reactivity, and final crosslink density.
Application Direction | Key Performance Concerns |
PU coatings | Adhesion, flexibility, water resistance, abrasion resistance |
Adhesives | Initial tack, cohesive strength, water resistance, and flexibility |
Sealants | Low-temperature flexibility, water resistance, and durability |
Elastomeric coatings | Elongation, recovery, and crack resistance |
4.3 Applications in waterborne coatings
CNSL derivatives can also be used in waterborne coating systems, especially waterborne epoxy curing agents, waterborne polyurethane dispersions, and emulsified modified resins. Because CNSL itself is hydrophobic, direct use in waterborne systems usually leads to dispersion and stability issues. Hydrophilic modification, emulsification, or salt formation is therefore required.
Waterborne Application Direction | Key Requirements |
Waterborne epoxy curing agents | Water dispersibility, amine value, curing speed, and wet adhesion |
Waterborne PU dispersions | Hydroxyl value, hydrophilic groups, particle size, and stability |
Waterborne protective coatings | Flash-rust prevention, water resistance, adhesion, and coating-film integrity |
Waterborne wood coatings | Transparency, color tone, water resistance, and stain resistance |
5 Limitations and Risks in CNSL Applications
5.1 Color and odor
CNSL is usually dark in color and may have a distinctive odor. Even after distillation and refining, some derivatives may still affect light-colored coatings, transparent coatings, and indoor low-odor coatings. CNSL derivatives are more suitable for dark protective coatings, industrial coatings, or systems with less stringent color requirements. When used in light-colored systems, high-purity, low-color products should be selected, and yellowing resistance and odor should be evaluated.
Risk | Effect on Coatings |
Dark color | Not suitable for highly transparent, light-colored, or white systems |
Noticeable odor | Affects indoor coatings, furniture coatings, and consumer-product coatings |
Color darkening during heat treatment | Color may further darken during reaction or processing |
Impurity-related appearance issues | May cause darkening, gloss loss, or coating-film defects |
5.2 Composition and batch stability
The composition of CNSL is affected by extraction method, heat-treatment conditions, degree of distillation and refining, origin, and storage conditions. Natural CNSL, technical CNSL, and distilled CNSL have different compositions, which can lead to differences in reactivity, viscosity, color, and final resin performance.
Influencing Factor | Possible Result |
Extraction method | Different ratios of anacardic acid, cardanol, and cardol |
Degree of heat treatment | Changes in decarboxylation degree and polymerized by-product content |
Distillation and refining | Changes in cardanol content, color, and odor |
Storage conditions | Oxidation, viscosity increase, or color darkening |
Origin differences | Variations in side-chain unsaturation and impurity content |
5.3 Difficulty of reaction control
CNSL contains phenolic hydroxyl groups, unsaturated bonds, and long-chain structures, allowing it to undergo multiple types of reactions. However, this also makes reaction control more complex. If reaction conditions are not properly controlled, abnormal viscosity, gelation, color darkening, or functionality deviation may occur. When CNSL derivatives are used in reactive coatings, hydroxyl value, amine value, epoxy value, acid value, viscosity, color, volatile content, and active component content should be clearly defined.
Reaction Risk | Possible Effect |
Unstable functionality | Affects curing speed and crosslink density |
Side reactions | Cause color darkening, viscosity increase, or gelation |
Oxidation of unsaturated bonds | Affects storage stability and coating-film appearance |
Fluctuations in hydroxyl value or amine value | Affect PU or epoxy system formulation ratios |
Incomplete reaction | Causes residual free components and odor problems |
5.4 Performance balance issues
The long-chain structure of CNSL is usually beneficial for flexibility and hydrophobicity, but it may also reduce hardness, glass transition temperature, and heat resistance. The aromatic phenolic structure is beneficial for cohesive strength and reactivity, but it may also cause color and yellowing issues.
Improvement Direction | Possible Side Effect |
Improved flexibility | Hardness and heat resistance may decrease |
Improved hydrophobicity | Dispersion in waterborne systems becomes more difficult |
Reduced viscosity | Chemical resistance and crosslink density may change |
Increased bio-based content | Cost, color, and odor need to be reassessed |
Increased reactivity | Storage stability and pot life may become shorter |
6 Selection and Validation Methods for CNSL
6.1 Raw material indicators
Indicator | Evaluation Significance |
Cardanol content | Determines reactivity and product grade |
Anacardic acid content | Affects acid value, reaction route, and stability |
Cardol and 2-methylcardol content | Affects reactivity, color, and batch stability |
Color | Determines suitability for light-colored or transparent systems |
Viscosity | Affects application, reaction, and formulation processing |
Acid value | Affects water resistance, reactivity, and storage stability |
Hydroxyl value | Important for PU polyols and reactive resin design |
Amine value | Important for epoxy curing agent design |
Epoxy value | Important for epoxidized CNSL derivatives |
Moisture and volatile content | Affect curing, odor, and storage stability |
6.2 Formulation compatibility
Whether CNSL derivatives can be used in coatings depends mainly on their compatibility with the main resin, curing agent, pigments and fillers, solvent, or waterborne system.
Compatibility Item | Evaluation Criteria |
Compatibility with the main resin | Whether turbidity, precipitation, phase separation, or gloss reduction occurs |
Matching with the curing agent | Whether curing speed, pot life, and hardness development are appropriate |
Compatibility with pigments and fillers | Whether dispersion, settling, and anticorrosive pigment stability are affected |
Compatibility with solvents | Whether complete dissolution occurs and whether application viscosity is affected |
Compatibility with waterborne systems | Particle size, pH, freeze–thaw stability, heat-storage stability, and dilution stability |
Although the hydrophobic long chains of CNSL derivatives are beneficial for water resistance, they may also cause dispersion difficulties in waterborne systems. When CNSL derivatives are used in waterborne coatings, hydrophilic modification and emulsion stability are particularly important.
6.3 Coating-film performance validation
Whether CNSL derivatives are suitable for coatings ultimately needs to be confirmed through coating-film performance testing.
Test Item | Evaluation Purpose |
Drying or curing time | Evaluates application rhythm and complete curing |
Hardness | Evaluates crosslink density and surface scratch resistance |
Flexibility | Evaluates toughness improvement brought by long-chain structures |
Adhesion | Evaluates substrate bonding and intercoat bonding |
Water resistance | Evaluates whether the hydrophobic structure and film compactness are effective |
Salt-spray resistance | Evaluates corrosion resistance of protective coatings |
Chemical resistance | Evaluates resistance to acids, alkalis, solvents, and oils |
Yellowing resistance | Evaluates color and long-term appearance stability |
Storage stability | Evaluates whether thickening, phase separation, precipitation, or discoloration occurs |
6.4 Unsuitable application scenarios
CNSL offers advantages in natural origin and reactivity, but it is not suitable for all coating scenarios.
Unsuitable Scenario | Main Reason |
High-whiteness and colorless transparent coatings | CNSL has relatively high color and yellowing risks |
Extremely low-odor indoor coatings | Odor and residual components need to be strictly controlled |
Unmodified waterborne systems | CNSL is hydrophobic and has insufficient dispersion stability |
High-hardness and high-heat-resistance systems | Long-chain structures may reduce hardness and heat resistance |
High-standard electronic or optical coatings | Color, impurities, and ionic control are relatively difficult |
Mass production without sufficient quality control | Batch fluctuations may affect reaction behavior and coating-film performance |
7 Representative Chemical Products Related to Cashew Nut Shell Liquid (CNSL)
Note: Some products listed in the tables are high-purity reference standards, saturated homologues, or reaction model compounds representing typical CNSL components. They are suitable for structural studies, analytical comparison, and formulation validation. Natural CNSL is generally a complex mixture of homologues with different degrees of unsaturation and various phenolic components.
Table 1 Representative CNSL Components and Phenolic Reaction Raw Materials
Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Representative CNSL component | 16611-84-0 | Anacardic acid | Moligand™, ≥98% | Used for compositional analysis of cashew nut shell liquid, structural studies of anacardic acid, research on decarboxylation to cardanol, and studies of bio-based phenolic resins | |
Representative CNSL component | 3158-56-3 | 5-Pentadecylresorcinol, saturated homologue of cardol-type compounds | ≥95% | Used as a saturated structural reference for cardol-type compounds, for compositional analysis of cashew nut shell liquid, studies of phenolic reaction activity, and research on bio-based resin modification | |
Representative CNSL component | 501-24-6 | 3-Pentadecylphenol / Hydrogenated cardanol | ≥90% (mixture of isomers) | Used for structural studies of hydrogenated cardanol, modification with saturated hydrophobic phenolic compounds, epoxy resin modification, and research on phenolic resin and polyurethane raw materials | |
Phenolic resin raw material | 108-95-2 | Phenol | ≥99.5% (GC) | Used as a reference for CNSL-modified phenolic resins, phenolic condensation reactions, resin curing, and coating-film resistance studies | |
Phenolic / Mannich reaction raw material | 50-00-0 | Formaldehyde solution | ACS, 37 wt.% in H₂O, contains 10–15% methanol as stabilizer | Used for CNSL phenolic condensation, Mannich base preparation, epoxy curing-agent raw materials, and bio-based resin synthesis studies | |
Phenolic / Mannich reaction raw material | 30525-89-4 | Paraformaldehyde | AR | Used for CNSL phenolic resins, Mannich reactions, preparation of curing-agent intermediates, and reaction-condition studies | |
Amine raw material for Mannich reaction | 124-40-3 | Dimethylamine (DMA) | Moligand™, 30% solution in methanol | Used for CNSL-based Mannich bases, epoxy curing-agent intermediates, amination reactions, and low-temperature curing system studies | |
Amine raw material for Mannich reaction | 100-46-9 | Benzylamine | AR, ≥99% | Used for CNSL phenalkamine curing agents, Mannich reactions, epoxy curing systems, and wet-adhesion performance studies |
Table 2 Products Related to Epoxy Resins, Epoxidation, and Amine Curing Systems
Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Epoxidation reaction raw material | 106-89-8 | Epichlorohydrin | ≥99.5% (GC) | Used for cardanol glycidyl ether, CNSL-based epoxy diluents, epoxy resin synthesis, and reactive diluent studies | |
Epoxy resin reference raw material | 80-05-7 | Bisphenol A | Moligand™, ≥99% (GC) | Used as a reference for bisphenol A epoxy resins, performance comparison of CNSL-based epoxy materials, and resin structure studies | |
Epoxy resin reference standard | 1675-54-3 | Bisphenol A diglycidyl ether (BADGE) | Moligand™, ≥85% | Used as a reference for epoxy resin curing, evaluation of CNSL-based epoxy modification, crosslink density, and coating-film resistance studies | |
Epoxy curing-agent raw material | 107-15-3 | E112643 | Ethylenediamine, regulated explosive precursor | Rectified grade, ≥99.5% | Used for epoxy curing agents, CNSL-based phenalkamine systems, amine value comparison, and coating-film curing reaction studies |
Epoxy curing-agent raw material | 111-40-0 | Diethylenetriamine | ≥99% | Used for epoxy curing agents, CNSL-modified curing systems, low-temperature curing, and water-resistant adhesion studies | |
Epoxy curing-agent raw material | 112-24-3 | Triethylenetetramine (TETA) | Chemically pure (CP), ≥68% | Used for epoxy resin curing, CNSL-based curing-agent references, pot life, and hardness development studies | |
Epoxy curing-agent raw material | 2855-13-2 | Isophorone diamine, mixture of cis/trans isomers (IPDA) | ≥99% | Used for epoxy curing agents, CNSL-modified protective coatings, water resistance, chemical resistance, and low-color systems | |
Epoxy curing-agent raw material | 1477-55-0 | m-Xylylenediamine (MXDA) | ≥99% | Used for epoxy curing agents, CNSL-based protective coatings, wet adhesion, chemical resistance, and fast-curing systems |
Table 3 Products Related to Polyurethane and Waterborne Systems
Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Polyurethane polyol | 25322-69-4 | Polypropylene glycol (PPG) | Average molecular weight 4000 | Used for CNSL-based polyurethane blending, flexible coatings, adhesives, sealants, and elastomeric coating-film studies | |
Polyurethane chain extender | 110-63-4 | 1,4-Butanediol (BDO) | Anhydrous grade, ≥99% | Used for polyurethane chain extension, hard-segment adjustment in CNSL-based polyurethane, elastomeric coatings, and adhesive studies | |
Polyurethane chain extender | 107-21-1 | Ethylene glycol | ≥99% (GC) | Used for polyurethane chain extension, polyester polyol synthesis, structural adjustment of CNSL-based resins, and coating-film performance studies | |
Aliphatic cyclic isocyanate | 4098-71-9 | Isophorone diisocyanate, mixture of isomers (IPDI) | ≥99% | Used for CNSL-based polyurethane coatings, waterborne polyurethane dispersions, weather-resistant coatings, and low-yellowing systems | |
Aromatic isocyanate | 101-68-8 | 4,4′-Methylenebis(phenyl isocyanate) (MDI) | ≥98% | Used for CNSL-based polyurethane, adhesives, elastomeric materials, hard-segment structures, and mechanical performance studies | |
Internal emulsifying monomer for waterborne polyurethane | 4767-03-7 | 2,2-Bis(hydroxymethyl)propionic acid (DMPA) | ≥98% | Used for CNSL-based waterborne polyurethane, introduction of hydrophilic groups, emulsion stability, and waterborne coating-film studies | |
Neutralizing agent for waterborne systems | 121-44-8 | Triethylamine | Anhydrous grade, ≥99.5%, water ≤50 ppm | Used for DMPA neutralization, waterborne polyurethane dispersion, CNSL-based waterborne resins, and emulsion stability studies | |
Neutralizing agent / amino alcohol for waterborne systems | 108-01-0 | N,N-Dimethylethanolamine (DMEA) | Rectified grade, ≥99.5% | Used for neutralization of waterborne resins, CNSL-based waterborne epoxy or polyurethane systems, dispersion stability, and acid value adjustment | |
Amino alcohol for waterborne systems | 105-59-9 | N-Methyldiethanolamine | ≥99% | Used for waterborne polyurethane, cationic resins, CNSL-based waterborne systems, and neutralizable reactive resins |
Table 4 Products Related to Alkyd, Polyester, and Polyol Modification
Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Alkyd / polyester anhydride raw material | 85-44-9 | Phthalic anhydride | Guaranteed reagent, ≥99% | Used for CNSL-modified alkyd resins, polyester resins, and studies of coating-film hardness, gloss, and drying performance | |
Alkyd / polyester anhydride raw material | 108-31-6 | Maleic anhydride | AR, ≥99% (GC) | Used for CNSL-modified alkyd resins, introduction of unsaturated structures, waterborne modification, and reactive resin studies | |
Polyester / alkyd dibasic acid | 124-04-9 | Adipic acid | Ultra-pure grade, ≥99.5% (HPLC) | Used for polyester polyols, flexible alkyd resins, CNSL-based polyurethane, and coating-film toughness adjustment studies | |
Alkyd / polyester polyol | 56-81-5 | G358402 | Glycerol | ≥99% | Used for CNSL-modified alkyd resins, polyester polyols, esterification reactions, and structural adjustment of coating resins |
Alkyd / polyester polyol | 77-99-6 | Trimethylolpropane (TMP) | ≥98% | Used for CNSL-modified alkyd resins, polyurethane polyols, crosslink density adjustment, and coating-film hardness studies | |
Alkyd / polyester polyol | 115-77-5 | P103696 | Pentaerythritol, regulated explosive precursor | AR, ≥98% | Used for CNSL-modified alkyd resins, high-functionality polyester resins, and studies of hardness and water resistance |
Note: The products listed above are representative Aladdin products. For more product specifications, please search by “product name / CAS / catalog number” on the Aladdin website.
References
[1] Kyei S. K., Eke W. I., Nagre R. D., Mensah I., Akaranta O. A Comprehensive Review on Waste Valorization of Cashew Nutshell Liquid: Sustainable Development and Industrial Applications. Cleaner Waste Systems, 2023, 6, 100116.
[2] Kumar P. P., Paramashivappa R., Vithayathil P. J., Subba Rao P. V., Srinivasa Rao A. Process for Isolation of Cardanol from Technical Cashew (Anacardium occidentale L.) Nut Shell Liquid. Journal of Agricultural and Food Chemistry, 2002, 50(16), 4705–4708.
[3] Ocasio-Malavé C., et al. Isolation of Cardanol Fractions from Cashew Nutshell Liquid (CNSL): A Sustainable Approach. Sustainable Chemistry, 2024, 5(2), 6.
[4] Rojtman E., Denis M., Sirvent C., Lapinte V., Caillol S., Briou B. Polyols from Cashew Nut Shell Liquid (CNSL): Corner-Stone Building Blocks for Innovative Polyurethanes. Polymer Chemistry, 2024.
[5] Cardolite Corporation. Cashew Nutshell Liquid-Based Epoxy Products: Curing Agents, Diluents and Modifiers for Protective and Industrial Coatings. Technical Literature.
[6] Denis M., Totée C., Le Borgne D., Caillol S., Negrell C. Cardanol-Modified Alkyd Resins: Novel Route to Make Greener Alkyd Coatings. Progress in Organic Coatings, 2022, 172, 107087.
[7] Baroncini E. A., Yadav S. K., Palmese G. R., Stanzione J. F. Recent Advances in Bio-Based Epoxy Resins and Bio-Based Epoxy Curing Agents. Journal of Applied Polymer Science, 2016, 133(45), 44103.
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