Dyna-Tek’s SlickShield ES coating takes Nylon 11’s already strong performance properties and enhances Nylon 11’s cleanability, stain and chemical resistance, surface hardness (without making it brittle), and non-stick performance.

Enhancing the Performance Properties of Nylon 11 with SlickShield ES

Comparisons between Nylon 11 and Nylon 11 + SlickShield ES

Performance Properties Comparisons Nylon 11 Powder Coating (ONLY) Nylon 11 + SlickShield ES
Base coating type Thermoplastic polyamide Thermoplastic polyamide with activated functional topcoat
Topcoat adhesion potential N/A High; plasma improves wetting and creates a more reactive surface
Surface hardness Medium Improved; harder, more ceramic-like surface
Abrasion resistance Very good to excellent Excellent for fine abrasion, cleaning wear, and surface marring
Impact resistance Excellent Mostly retained; controlled by Nylon 11 base layer
Flexibility Very good Slightly reduced at the surface
Chemical resistance Good to excellent Improved surface resistance to acids, alkalis, detergents, salts, oils, and staining
Salt / corrosion resistance Excellent at sufficient film build Improved performance due to enhanced corrosion resistance and permeation resistance
Water resistance Very good Improved surface water repellency
Resistance to both high & low pH solutions in Truck wash chemicals Good Improved resistance to acidic/alkaline cleaners and staining
Cleanability Moderate to good Excellent; lower dirt, brake dust, and residue retention
Non-stick / release behavior Moderate to good Higher
UV / weathering behavior Moderate unless stabilized Improved surface protection, depending on SlickShield ES formulation
Continuous Thermal stability 212 – 257 deg. F 240 – 275 deg. F
Long-term durability confidence High Higher
Best use case Severe-duty corrosion, abrasion, impact, and chip resistance Premium severe-duty system requiring cleanability, chemical resistance, and non-stick surface
Primary limitations Surface can stain, weather, or lose cleanability over time Thin-film SlickShield ES doesn’t sacrifice the flexibility of Nylon

For more information, email us at info@ecs-ww.com or call us at 816.381.9900

Engineers: When to Specify Non-Stick, Hydrophobic, High-Slip and/or High-Release Properties Related to Surface EnergyIn the industry of advanced coatings and engineered surfaces, terms such as non-stick, hydrophobic, high-slip, and high-release are often used interchangeably. Although these properties can be related and can be formulated to be achieved in the same coating system, they describe different aspects of surface performance.

The common thread connecting these properties is surface energy, a fundamental material characteristic that governs how a surface interacts with liquids, solids, contaminants, adhesives, and even ice. Understanding these distinctions is critical when selecting a coating for a specific application.

What Is Surface Energy?

Surface energy can be thought of as a measure of a surface’s tendency to attract or repel other materials.

  • High surface energy surfaces attract liquids and promote wetting, spreading, and adhesion.
  • Low surface energy surfaces resist wetting and reduce adhesion, making them useful for release, repellency, and non-stick applications.

Clean glass and metals typically exhibit relatively high surface energy, while fluoropolymers such as PTFE and many silicone-based coatings exhibit very low surface energy.

As surface energy decreases, surfaces generally become more resistant to sticking, wetting, and contamination. However, different performance characteristics emerge depending on how the surface interacts with specific materials and conditions.

Categories of Surface Energy Performance

Engineers: When to Specify Non-Stick, Hydrophobic, High-Slip and/or High-Release Properties Related to Surface EnergySurface properties generally fall into four broad categories:

1. Wetting Behavior

These properties describe how liquids interact with a surface/substrate material.

Hydrophobic

Hydrophobic surfaces repel water, causing droplets to bead rather than spread. Hydrophobicity is typically characterized by a water contact angle greater than 90 degrees.

Examples include:

  • Waxed surfaces
  • Polyethylene and polypropylene
  • Fluoropolymer coatings

Superhydrophobic

Superhydrophobic surfaces take water repellency to the extreme, exhibiting contact angles greater than 150 degrees and very low roll-off angles.

Examples include:

  • Lotus leaf-inspired coatings
  • Self-cleaning architectural surfaces
  • Advanced anti-fouling coatings

Hydrophilic

Hydrophilic surfaces attract water and promote spreading. These surfaces exhibit high surface energy properties that become desirable as it can improve coating adhesion or liquid coverage.

Examples include:

  • Clean glass
  • Metal oxides
  • Plasma-treated polymers

Oleophobic

Oleophobic surfaces repel oils and other low-surface-tension liquids. Because oils wet surfaces more readily than water, oleophobicity requires even lower surface energy than hydrophobicity.

Examples include:

  • Fingerprint-resistant smartphone screens
  • Anti-smudge coatings
  • Fluorinated surface treatments

Omniphobic

Omniphobic surfaces repel both water and oils, combining hydrophobic and oleophobic performance.

Examples include:

  • Advanced self-cleaning surfaces
  • Chemical-resistant protective coatings

2. Each of these can Impact Adhesion and Release Behavior

These properties describe how strongly materials bond to a surface and how easily they separate.

High-Release

High-release surfaces minimize adhesion and allow materials to separate easily after contact.

Examples include:

  • Mold-release coatings
  • Composite tooling surfaces
  • Release liners for pressure-sensitive adhesives

Non-Stick

Non-stick is a broader term describing resistance to material buildup or adhesion. While often associated with low surface energy, it does not specify the exact mechanism responsible for the behavior.

Examples include:

  • Cookware coatings
  • Food processing equipment
  • Anti-build-up industrial coatings

Iceophobic

Iceophobic surfaces reduce ice formation and/or the ability of the ice to adhere.

Unlike simple hydrophobicity, iceophobic performance often depends on a complementary combination of surface energy, elasticity, texture, and thermal behavior.

Examples include:

  • Aircraft surfaces
  • Wind turbine blades
  • Utility infrastructure

Adhesion-Promoting Surfaces

At the opposite end of the spectrum are surfaces engineered to maximize bonding by increasing surface energy.

Examples include:

  • Corona-treated films
  • Plasma-treated plastics
  • Primers and adhesion promoters

3. Friction and Slip Performance

These properties describe how easily materials move across a surface.

High-Slip

High-slip surfaces exhibit low friction, allowing materials to slide easily.

While high-slip coatings are often low in surface energy, friction and adhesion are not identical properties.

Examples include:

  • Conveyor surfaces
  • Low-friction liners
  • Lubricious industrial coatings

4. Surface Protection and Fouling Resistance

These properties focus on preventing contamination, staining, or material accumulation.

Anti-Fouling

Designed to resist contamination, biological growth, or deposit formation.

Examples include:

  • Marine coatings
  • Medical device coatings
  • Water treatment systems

Easy-Clean

Facilitates the removal of contaminants with minimal effort.

Examples include:

  • Architectural glass
  • Food processing equipment
  • Consumer products

Anti-Graffiti

Prevents paints, inks, and markers from strongly adhering.

Examples include:

  • Transportation infrastructure
  • Building facades
  • Public facilities

Anti-Fingerprint

Reduces the adhesion and visibility of skin oils.

Examples include:

  • Consumer electronics
  • Stainless steel appliances
  • Display screens

The Most Common Source of Confusion

Among engineers and manufacturers, perhaps the most common misunderstanding involves the terms high-slip, high-release, and non-stick.

Because many low-surface-energy coatings exhibit all three characteristics, the terms are often treated as synonyms. In practice, they frequently overlap—but they are not technically equivalent.

High-Slip: How Easily Does It Slide?

High-slip refers to friction. A high-slip surface has a low coefficient of friction, allowing materials to move across the surface with minimal resistance.

The key question is: “How easily does it slide?”

High-Release: How Easily Does It Let Go?

High-release refers to adhesion. A high-release surface minimizes bonding between two materials, allowing clean separation after contact.

The key question is: “How easily does it let go?”

Non-Stick: The General Outcome

Non-stick is a broader performance description.

A surface may be called non-stick because materials do not accumulate, adhere, or remain attached—but the underlying reason may involve release properties, friction reduction, liquid repellency, or a combination of factors.

Why Molding Engineers Often Use the Terms Interchangeably

In molding and tooling applications, high-slip and high-release often produce the same practical result: parts release from the mold more easily.

For example, PTFE-coated tooling surfaces exhibit both low friction and low adhesion.

As a result, molders commonly use terms such as:

  • High-slip
  • High-release
  • Non-stick

to describe essentially the same outcome.

However, the underlying mechanisms remain different.

A coating can be:

  • High-slip but not particularly high-release
  • High-release but not exceptionally low-friction
  • Hydrophobic without being an effective mold-release surface
  • Non-stick for certain materials while still allowing others to adhere

This distinction becomes increasingly important when selecting coatings for demanding manufacturing environments.

Surface Energy Is the Foundation—Not the Whole Story

Surface energy strongly influences wetting, adhesion, release, and contamination resistance. However, it is not the sole determinant of performance.

Properties such as:

  • Surface roughness
  • Elastic modulus
  • Surface texture
  • Coating chemistry
  • Environmental conditions
  • Temperature

can significantly affect how a surface behaves in real-world applications.

As a result, two coatings with similar surface energy values may perform very differently depending on the application.

Final Thoughts

Surface energy provides the foundation for understanding how engineered surfaces interact with their environment. However, terms such as hydrophobic, non-stick, high-slip, and high-release describe different performance outcomes rather than identical properties.

A simple way to remember the distinction is:

  • Hydrophobic: How does it interact with water?
  • High-Slip: How easily does it slide?
  • High-Release: How easily does it let go?
  • Non-Stick: Does material resist remaining attached?

While these properties often overlap, especially in low-surface-energy coating systems, understanding their differences enables more effective specification, testing, and selection of surface technologies for demanding industrial application.

If you would like assistance on choosing your coatings, please email us at info@ecs-ww.com or call us at 816.381.9900.

Introduction

How Non-Stick Properties Enhance Corrosion ResistanceA coating’s ability to resist corrosion is traditionally associated with its barrier properties, chemical stability, adhesion, and resistance to environmental degradation. However, the incorporation of non-stick (low surface energy) characteristics can significantly enhance corrosion protection by reducing the interaction between the coated surface and corrosive agents. While non-stick performance is often discussed in relation to cleanability and fouling resistance, it also plays an important role in extending coating life and improving long-term corrosion resistance.

Corrosion occurs when a metal substrate reacts with its surrounding environment, often in the presence of moisture, oxygen, salts, acids, or other aggressive chemicals. Protective coatings serve as a barrier between the substrate and these corrosive elements. The effectiveness of this barrier depends not only on its physical integrity but also on how readily contaminants can adhere to and remain on the surface.

Non-stick coatings, characterized by low surface energy and reduced adhesion to foreign materials, provide an additional mechanism of protection that complements traditional corrosion-resistant technologies.

1. Reduced Retention of Water and Corrosive Electrolytes

Water is one of the primary drivers of corrosion. Many corrosion processes require an electrolyte layer to facilitate electrochemical reactions at the metal surface.

Non-stick coatings reduce the wettability of the surface, causing water to bead up rather than spread into a continuous film.

This effect offers several benefits:

  • Minimizes contact time between water and the coating.
  • Reduces the likelihood of moisture permeating coating defects.
  • Limits the formation of conductive electrolyte layers.
  • Accelerates drying after exposure to rain, washing, or condensation.

By reducing the residence time of moisture on the surface, non-stick coatings decrease the opportunity for corrosion cells to develop.

2. Mitigation of Contaminant Accumulation

How Non-Stick Properties Enhance Corrosion ResistanceCorrosive contaminants such as road salts, marine salts (sea water/moisture), industrial pollutants, acidic residues, chemical process deposits can accumulate on coated surfaces and create localized corrosion sites.

While non-stick and hydrophobic surfaces don’t cause these variables to simply fall off surfaces on their own, because they don’t develop a foothold to the surfaces, when cleaned or natural rinsing (rain), these corrosive contaminants can be mitigated before they affect the coating.

This self-cleaning effect helps maintain the protective performance of the coating throughout its service life.

3. Mitigation of Crevice and Under-Deposit Corrosion

Deposits that remain attached to a surface can trap moisture and contaminants, creating localized environments that promote aggressive corrosion mechanisms.

Examples include salt deposits, mineral scale, biological growth, and manufacturing process residues. Each of these sources of corrosion can establish differential oxygen concentrations, leading to under-deposit or crevice corrosion. Non-stick coatings discourage deposit formation and facilitate contaminant release, they reduce the likelihood of these localized corrosion mechanisms developing.

NOTE: Always evaluate the chemistry of non-stick coating being chosen to ensure its own chemistry is capable of withstanding the corrosive mechanism(s) otherwise, non-stick properties alone may not be a good enough solution.

4. Reduced Biofouling and Microbiologically Influenced Corrosion

In marine, wastewater, and industrial environments, biological organisms can attach to surfaces and form biofilms. These biofilms often retain moisture and create microenvironments that accelerate corrosion.

Non-stick surfaces inhibit the initial attachment of bacteria, algae, fungi and marine organisms. As noted in the “Under-Deposit Corrosion” in point number 3 above, non-stick properties alone, are not enough. However, non-stick properties can definitely minimize biofilm formation, and Microbiologically Influenced Corrosion (MIC). This field is perhaps the most challenging type of corrosive contaminant.

5. Improved Chemical Resistance Through Surface Inertness

Without exception, fluoropolymer-based coatings offer the best chemical corrosion resistance within the world of “thin-film” coatings. Fluoropolymer coatings provide highly inert chemical structures, meaning these types of coatings do not adsorb or react with corrosive contaminants thus not allowing them to begin. Highly inert coatings such as fluoropolymers are often described as having strong chemical bonds, low (chemical) reactivity, excellent resistance to acids and alkalis, and highly resistance to solvent attacks.

The same molecular characteristics that provide non-stick behavior frequently contribute to superior chemical durability. This durability helps preserve the coating’s barrier properties even in harsh service environments.

6. Easier Cleanability means Less Deterioration to the Coating Due to more aggressive “tools” during maintenance.

Corrosion resistance depends heavily on maintaining an intact coating film. When contaminants strongly adhere to a surface, aggressive cleaning methods may be required to remove them. Mechanical cleaning can introduce scratches, abrasion, or coating damage that compromise corrosion protection.

Non-stick surfaces allow contaminants to be removed with less force, resulting in:

  • Reduced coating wear
  • Lower maintenance requirements
  • Longer coating service life
  • Improved retention of barrier performance

This indirect benefit can significantly improve long-term corrosion protection in demanding applications.

7. Synergy with Traditional Corrosion Protection Mechanisms

Non-stick properties should not be viewed as a replacement for conventional corrosion protection technologies. Instead, they function as an enhancement that works alongside established mechanisms such as:

  • Barrier protection
  • Corrosion-inhibiting pigments
  • Sacrificial protection
  • Chemical passivation
  • Advanced resin systems

When combined with these technologies, non-stick characteristics provide an additional defense layer by minimizing the exposure of the coating system to moisture, contaminants, and fouling.

Applications Benefiting from Non-Stick Corrosion Protection

Industries that can particularly benefit from the combination of non-stick and corrosion-resistant performance include:

  • Marine and offshore structures
  • Transportation equipment
  • Chemical processing facilities
  • Food processing equipment
  • Water and wastewater infrastructure
  • Architectural and building materials
  • Energy and power generation assets

In these environments, reducing contaminant adhesion often translates directly into improved corrosion resistance and lower maintenance costs.

Conclusion

There is no such thing as a “one size fits all” solution in coatings. Always start with the environmental and process-related corrosion variables so they are factored into the best solutions.

If you would like assistance on how to mitigate your corrosive challenges, please email us at info@ecs-ww.com or call us at 816.381.9900.